Stapler, post-processing apparatus and image forming system
10654190 ยท 2020-05-19
Assignee
Inventors
- Toshio SHIMIZU (Tokyo, JP)
- Futoshi Kameda (Tokyo, JP)
- Yoshio CHIGIRA (Tokyo, JP)
- Shinpei SUGIHARA (Tokyo, JP)
Cpc classification
B25C5/0207
PERFORMING OPERATIONS; TRANSPORTING
B42B5/00
PERFORMING OPERATIONS; TRANSPORTING
B27F7/21
PERFORMING OPERATIONS; TRANSPORTING
B27F7/006
PERFORMING OPERATIONS; TRANSPORTING
International classification
B27F7/19
PERFORMING OPERATIONS; TRANSPORTING
B27F7/21
PERFORMING OPERATIONS; TRANSPORTING
B42B5/00
PERFORMING OPERATIONS; TRANSPORTING
B25C5/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A stapler includes a staple cartridge in which a staple is stored, a storage unit to which the staple cartridge is detachably attached, a staple ejecting unit which ejects the staple to penetrate a paper sheet, a cutting unit which cuts a staple leg of the staple penetrating the paper sheet, a binding unit which bends the staple leg of the staple penetrating the paper sheet to bind the paper sheet, a cut staple storage unit which stores a cut staple that is cut by the cutting unit, a cut staple quantity detection unit which detects a quantity of the cut staple stored in the cut staple storage unit, and a discharge unit through which the cutting unit and the cut staple storage unit communicate with each other to guide the cut staple to the cut staple storage unit. The cut staple storage unit is attachable to and detachable from the stapler.
Claims
1. A stapler comprising: a staple cartridge in which a staple is stored; a storage unit to which the staple cartridge is detachably attached; a staple ejecting unit which ejects the staple to penetrate a paper sheet; a cutting unit which cuts a staple leg of the staple penetrating the paper sheet; a binding unit which bends the staple leg of the staple penetrating the paper sheet to bind the paper sheet; a cut staple storage unit which stores a cut staple that is cut by the cutting unit; a cut staple quantity detection unit which detects a quantity of the cut staple stored in the cut staple storage unit; and a discharge unit through which the cutting unit and the cut staple storage unit communicate with each other to guide the cut staple to the cut staple storage unit, wherein the cut staple storage unit is attachable to and detachable from the stapler, and wherein the cut staple quantity detection unit detects the presence or absence of a predetermined quantity of the cut staple stored in the cut staple storage unit, based on the presence or absence of light transmission, and the cut staple quantity detection device comprises: a light emitting unit which emits light, a light receiving unit which detects the presence or absence of light which is emitted from the light emitting unit and passes through the cut staple storage unit, and an optical waveguide which forms an optical path that guides light emitted from the light emitting unit to the light receiving unit.
2. The stapler according to claim 1, wherein the cut staple quantity detection unit detects the quantity of the cut staple in accordance with a loading height of the cut staple displaced in a direction of the cut staple storage unit.
3. The stapler according to claim 1, wherein the cut staple quantity detection unit detects that the quantity of the cut staple stored in the cut staple storage unit is full, and performs detachment detection of the cut staple storage unit.
4. The stapler according to claim 1, wherein the cut staple quantity detection unit detects the presence or absence of the cut staple at a plurality of places along a stacking direction of the cut staples stored in the cut staple storage unit.
5. The stapler according to claim 1, wherein the quantity of the cut staple detected by the cut staple quantity detection unit is reported to a post-processing apparatus.
6. The stapler according to claim 1, wherein the cut staple storage unit includes a first recovery passage and a second recovery passage, the light emitting unit emits light which passes through the first recovery passage to the optical waveguide, and light from the optical waveguide passes through the second recovery passage to the light receiving unit.
7. The stapler according to claim 6, wherein the first recovery passage includes a first window and light from the light emitting device passes through the first window to the optical waveguide, and wherein the second recovery passage includes a second window and light passes from the optical waveguide through the second window to the light receiving unit.
8. The stapler according to claim 1, wherein light passes through the cut staple storage unit between at least one of: the light emitting unit and the optical waveguide, or the optical waveguide and the light receiving unit.
9. The stapler according to claim 8, wherein the cut staple storage unit includes a first window on an upstream side of the optical waveguide and a second window on a downstream side of the optical waveguide, such that light passes through the cut staple storage unit both between the light emitting unit and the optical waveguide by way of the first window, and the optical waveguide and the light receiving unit by way of the second window.
10. A post-processing apparatus comprising a stapler, the post-processing apparatus performing post-processing on a paper sheet on which an image is formed, the stapler including: a staple cartridge in which a staple is stored; a storage unit to which the staple cartridge is detachably attached; a staple ejecting unit which ejects a staple to penetrate a paper sheet; a cutting unit which cuts a staple leg of the staple penetrating the paper sheet; a binding unit which bends the staple leg of the staple penetrating the paper sheet to bind the paper sheet; a cut staple storage unit which stores a cut staple that is cut by the cutting unit; and a discharge unit through which the cutting unit and the cut staple storage unit communicate with each other to guide a cut staple to a cut staple storage unit, wherein the cut staple storage unit is attachable to and detachable from the stapler, and wherein the post-processing apparatus further comprises a cut staple quantity detection unit which detects a quantity of the cut staple stored in the cut staple storage unit, and wherein the cut staple quantity detection unit comprises: a light emitting unit which emits light, a light receiving unit which detects the presence or absence of light which is emitted from the light emitting unit and passes through the cut staple storage unit, and an optical waveguide which forms an optical path that guides light emitted from the light emitting unit to the light receiving unit.
11. The post-processing apparatus according to claim 10, wherein the cut staple quantity detection unit is provided in the stapler.
12. An image forming system comprising: an image forming apparatus which forms an image on a paper sheet and outputs the image; and the post-processing apparatus according to claim 10 which is connected to the image forming apparatus and performs post-processing on the paper sheet.
13. The post-processing apparatus according to claim 10, wherein the cut staple storage unit includes a first recovery passage and a second recovery passage, the light emitting unit emits light which passes through the first recovery passage to the optical waveguide, and light from the optical waveguide passes through the second recovery passage to the light receiving unit.
14. The post-processing apparatus according to claim 13, wherein the first recovery passage includes a first window and light from the light emitting device passes through the first window to the optical waveguide, and wherein the second recovery passage includes a second window and light passes from the optical waveguide through the second window to the light receiving unit.
15. The post-processing apparatus according to claim 10, wherein light passes through the cut staple storage unit between at least one of: the light emitting unit and the optical waveguide, or the optical waveguide and the light receiving unit.
16. The post-processing apparatus according to claim 15, wherein the cut staple storage unit includes a first window on an upstream side of the optical waveguide and a second window on a downstream side of the optical waveguide, such that light passes through the cut staple storage unit both between the light emitting unit and the optical waveguide by way of the first window, and the optical waveguide and the light receiving unit by way of the second window.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(170) Embodiments of a stapler of the present disclosure, a post-processing apparatus on which a stapler is mounted, and an image forming system equipped with the post-processing apparatus will be described below with reference to the drawings.
(171) <Configuration Example of Image Forming System and Post-Processing Apparatus>
(172)
(173) The image forming system 500A according to the present embodiment includes an image forming apparatus 501A, and a post-processing apparatus 502A which is connected to the image forming apparatus 501A and is capable performing of at least one type of processing. The image forming apparatus 501A forms and outputs an image on a sheet P that is fed from a sheet feeding unit (not illustrated) inside or outside the apparatus. In this example, the image forming apparatus 501A forms an image on the sheet P, by forming an electrostatic latent image by scanning exposure, by developing an electrostatic latent image with toner, and by transferring and fixing the toner to sheet and the like.
(174) The post-processing apparatus 502A of the present embodiment includes any one of the stapler 1 of each embodiment to be described later in a binding unit 503A. The binding unit 503A includes a loading unit 504A that stacks the sheet P output from the image forming apparatus 501A.
(175)
(176) <Operational Example of Binding Sheet with Staple>
(177)
(178) As the staple crown 11A is pressed, as illustrated in
(179) As illustrated in
(180) <Configuration Example of Stapler of First Embodiment>
(181)
(182) The stapler 1A of the first embodiment is equipped with a staple ejecting unit 2A which supplies and ejects the staple 10A, and a binding unit 3A which cuts the staple leg 12A of the staple 10A illustrated in
(183) The staple ejecting unit 2A is an example of a staple ejecting unit and includes a storage unit 20A to which a staple cartridge 100A as a staple storage unit in which the staple 10A is stored is detachably attached, a feeding unit 21A which feeds the staple 10A from the staple cartridge 100A, and a ejecting unit 22A which ejects the staple 10A into the sheet P.
(184) In the present example, the staple 10A is provided as a staple sheet 101A in which a plurality of linear staples 10A are integrated by adhesion, and the plurality of staple sheets 101A are stacked and stored in the staple cartridge 100A. The ejecting unit 22A forms the second or third staple 10A in conjunction with the operation of ejecting the one staple 10A of the foremost end in the conveying direction of the staple sheet 101A. The staple cartridge 100A may be supplied in a form in which the staple sheet 101A is stored in a detachable refill.
(185) The binding unit 3A is an example of a binding unit, and includes a cut unit 30A that cuts the staple leg 12A of the staple 10A penetrating the sheet P at a predetermined length, and a clinch unit 31A which folds the staple leg 12A of the staple 10A that passes through the sheet P and is cut to a predetermined length in the direction of the sheet P.
(186) The stapler 1A is provided with a sheet pinching unit 4A which pinches the sheet P between the staple ejecting unit 2A and the binding unit 3A. The sheet pinching unit 4A is provided on one side of the stapler 1A provided with the ejecting unit 22A of the staple ejecting unit 2A and the clincher unit 31A of the binding unit 3A.
(187) As illustrated in
(188) As illustrated in
(189) In order to enable the binding position of the sheet P by the staple 10A to be positioned between the ejecting unit 22A and the clincher unit 31a, the sheet pinching unit 4A has a shape in which three directions of the front side of the stapler 1A and both side surfaces of the stapler 1A are open.
(190) The stapler 1A includes a feeding unit 21A and an ejecting unit 22A of the staple ejecting unit 2A, a binding unit 3A, and a driving unit 5A that drives the cut unit 30A of the binding unit 3A, and the clincher unit 31A.
(191) The ejecting unit 5A includes a cam 51A that is driven by a motor 50A provided in the staple ejecting unit 2A, and a link unit 52A that transmits the operation of the cam 51A to each unit.
(192) When the operation of the cam 51A is transmitted to the binding unit 3A via the link unit 52A or the like, the stapler 1A relatively moves in a direction in which the staple ejecting unit 2A and the binding unit 3A come into contact with and separate from each other. In this example, the binding unit 3A moves in a direction in which the binding unit 3A moves in the direction of coming into contact with and separating from the staple ejecting unit 2A with a rotational operation about the shaft 32A as a fulcrum.
(193) In the operation of the cam 51A rotating in one direction, the stapler 1A moves in a direction in which the binding unit 3A approaches the staple ejecting unit 2A, and pinches the sheet P with the sheet pinching unit 4A at a predetermined timing. In addition, in the operation in which the cam 51A further rotates in one direction, the stapler 1A moves in a direction in which the binding unit 3A moves away from the staple ejecting unit 2A at a predetermined timing, thereby releasing the pinching of the sheet P by the sheet pinching unit 4A.
(194) In addition, in the operation in which the operation of the cam 51A is transmitted to the feeding unit 21A and the ejecting unit 22A via the link unit 52A and the like, and the cam 51A rotates in one direction, the stapler 1A feeds the staple 10A stored in the staple cartridge 100A by the feeding unit 21A, and drives the foremost tip of the fed staple 10A into the sheet P pinched by the sheet pinching unit 4A by the ejecting section 22A, so that the staple leg 12A of the staple 10A penetrates the sheet P. Also, the second or third staple 10A is molded.
(195) Furthermore, in the operation in which the operation of the cam 51A is transmitted to the cut unit 30A and the clincher unit 31A via the link unit 52A and the like, and the cam 51A rotates in one direction, in the stapler 1A cuts the staple leg 12A of the staple 10A penetrating the sheet P by the cut unit 30A at a predetermined length, and folds the staple leg 12A of the staple 10A cut to a predetermined length with the clincher unit 31A.
(196) The stapler 1A has a cut staple storage unit 6A which stores the cut staple 13A that is cut by the cut unit 30A. The cut staple storage unit 6A is detachably attached to the stapler 1A on the back side of the stapler 1A opposite to the side on which the sheet pinching unit 4A is provided.
(197) The cut staple storage unit 6A includes two recovery passages 60A.sub.L and 60A.sub.R. When attached to the stapler 1A, the two recovery passages 60A.sub.L and 60A.sub.R are disposed on both sides of the storage unit 20A to block the attachment and detachment path of the staple cartridge 100A to be attached to and detached from the storage unit 20A.
(198) The cut staple storage unit 6A has a size capable of storing all of the cut staples 13A even when the staple leg 12A of the number of staples 10A capable of being stored in the staple cartridge 100A is cut with the maximum length.
(199) Further, regardless of the position of the stapler 1A in the post-processing apparatus 502A, the cut staple storage unit 6A is configured so that the main body of the cut staple storage unit 6A is located below one or both of the recovery passage 60A.sub.L or the recovery passage 60A.sub.R, regardless of the position of the stapler 1A in the post-processing apparatus 502A.
(200) The stapler 1A includes a discharge passage 33A which guides the cut staple 13A cut by the cut unit 30A to the cut staple storage unit 6A in the binding unit 3A. In the present embodiment, one discharge passage 33A communicating with the cut unit 30A is divided into two discharge passages 33A.sub.L and 33A.sub.R and are disposed on both left and right sides of the storage unit 20A to block the attachment and detachment path of the stable cartridge 100A attached to and detached from the storage unit 20A.
(201) In the stapler 1A, the discharge port 34A.sub.L of one discharge passage 33A.sub.L communicates with the recovery port 61A.sub.L of one recovery passage 60A.sub.L of the cut staple storage unit 6A, and the discharge port 34A.sub.R of the other discharge passage 33A.sub.R communicates with the recovery port 61A.sub.R of the other recovery passage 60A.sub.R of the cut staple storage unit 6A.
(202) As a result, the cut staple 13A passing through one discharge passage 33A.sub.L from the cut unit 30A is stored in the cut staple storage unit 6A from the recovery port 61A.sub.L through the recovery passage 60A.sub.L. The cut stable 13A passing through the other discharge passage 33A.sub.R from the cut unit 30A is stored in the cut staple storage unit 6A through the recovery passage 60A.sub.R from the recovery port 61A.sub.R.
(203) In the discharge passage 33A, at least one of the discharge passage 33A.sub.L and the discharge passage 33A.sub.R is configured such that the discharge ports 34A.sub.L and 34A.sub.R are lower than the cut unit 30A, regardless of the position of the stapler 1A in the post-processing apparatus 502A.
(204) By providing the discharge passages 33A (33A.sub.L, 33A.sub.R) in the binding unit 3A, the discharge passage 33A (33A.sub.L, 33A.sub.R) moves by the rotational operation of the binding unit 3A with the shaft 32A as a fulcrum. In contrast, the cut staple storage unit 6A does not move with respect to the binding unit 3A when attached to the staple ejecting unit 2A.
(205) Therefore, the discharge port 34A.sub.L of one discharge passage 33A.sub.L and the discharge port 34A.sub.R of the other discharge passage 33A.sub.R are disposed in the vicinity of the shaft 32A, thereby suppressing the quantity of movement of the discharge port 34A.sub.L and 34A.sub.R in the rotational operation of the binding unit 3A with the shaft 32A as a fulcrum to be small level.
(206) Further, the discharge port 34A.sub.L of one discharge passage 33A.sub.L enters one recovery port 61A.sub.L of the cut staple storage unit 6A, and the discharge port 34A.sub.L can move within the range of opening of the recovery port 61A.sub.L. Similarly, the discharge port 34A.sub.R of the other discharge passage 33A.sub.R enters the other recovery port 61A.sub.R of the cut staple storage unit 6A, and the discharge port 34A.sub.R can move within the range of opening of the recovery port 61A.sub.R.
(207) <Example of Operational Effect of Stapler of First Embodiment>
(208) In the conventional stapler mounted on the post-processing apparatus, the cut staple storage unit is provided on the side of the post-processing apparatus, the cut staple is temporarily stored in the discharge passage of the cut staple provided in the stapler, and the stapler is moved to the position of the cut staple storage unit, and the cut staple is discharged from the stapler to the cut staple storage unit.
(209) As described above, in the related art, in order to recover the cut staple, since it is necessary to move the stapler to the position of the cut staple storage unit provided on the side of the post-processing apparatus, the productivity of the booklet for binding the sheet with the staple decreases. When the number of cut staples temporarily stored in the discharge passage provided in the stapler is large, in a state in which the stapler is not moved to the position of the cut staple storage unit, there was a possibility that the cut staple from the discharge passage may leak into the post-processing apparatus.
(210) In contrast, in the stapler 1A according to the first embodiment, by providing the cut staple storage unit 6A in the stapler 1A, it is possible to store the cut staple 13A in the storage unit 6A, regardless of the position of the stapler 1A in the post-processing apparatus 502A. Therefore, there is no need to move the stapler 1A to a specific position in order to recover the cut staple, and the productivity of the booklet for binding the sheet with the staple is improved.
(211) Further, even when the staple leg 12A of the number of staples 10A that can be stored in the staple cartridge 100A is cut with the maximum length, the cut staple storage unit 6A is large enough to store all the cut staples 13A and has a sufficient capacity, and it is unnecessary to recover the staple 13A until the timing of replenishing the staple 10A. Therefore, it is possible to reduce the number of times of recovering the cut staple 13A from the stapler 1A, and it is possible to reduce the number of times of stopping the operation of the image forming system 500A for recovering the cut staple 13A, the productivity of the booklet for binding the sheet with the stable is improved.
(212)
(213) In the present example, attachment and detachment of the cut staple storage unit 6A are performed by moving the stapler 1A to the first position Pp1 illustrated in
(214) In the stapler 1A, the staple cartridge 100A can be attached and detached with the cut staple storage unit 6A attached. Thus, by moving the stapler 1A to the first position Pp1 illustrated in
(215) Further, since the cut staple storage unit 6A is attached to the back side of the stapler 1A, even if the capacity of the cut staple storage unit 6A increases, restriction on the size of the staple cartridge 100A is restrained, it is possible to maintain or increase the number of stored staples 10A, as compared with a configuration not provided with the cut staple storage unit 6A.
(216) As illustrated in
(217) There is a possibility that erroneous detection may occur that the cut staple 13A is full if the bulk increases due to the inclination of the stored cut staple 13A. In the configuration in which the processing is stopped by full load of the cut staple 13A, even if there is still a remaining capacity in the cut staple storage unit 6A, the cut staple 13A cannot be stored and the cut staple storage unit 6A cannot be effectively used. In contrast, since it is possible to suppress the deviation of the cut staple 13A and store the cut staple 13A flattened to a substantially uniform height, erroneous detection or the like caused by offset of the stored cut staple 13A can be suppressed, which makes it possible to effectively use the cut staple storage unit 6A.
(218) As illustrated in
(219) Therefore, even if the stapler 1A moves to any one of the first position Pp1, the second position Pp2 or the third position Pp3 illustrated in
(220) As a result, even if the stapler 1A moves to one of the first position Pp1, the second position Pp2 or the third position Pp3 in the binding operation, it is possible to suppress the cut staple 13A cut by the cut unit 30A from staying in the discharge passage 33A.sub.L and the discharge passage 33A.sub.R. Further, it is possible to suppress the cut staples 13A discharged from the discharge passage 33A.sub.L and the discharge passage 33A.sub.R from staying in the recovery passage 60A.sub.L and the recovery passage 60A.sub.R. Therefore, the cut staple 13A cut with the cut unit 30A can be stored in the cut staple storage unit 6A.
(221) In the operation of binding the sheet P with the stapler 1A, the discharge unit 33A.sub.L and the discharge unit 33A.sub.R are moved when the binding unit 3A moves by the rotational operation about the shaft 32A as a fulcrum. When the movement quantity of the discharge port of the discharge passage increases, since the recovery port of the cut staple storage unit to which the discharge port is connected needs to be sized to match the movement range of the discharge port, the size of the stapler increase.
(222) In contrast, by arranging the discharge port 34A.sub.L of one discharge passage 33A.sub.L and the discharge port 34A.sub.R of the other discharge passage 33A.sub.R in the vicinity of the shaft 32A, it is possible to suppress the movement quantity of the discharge port 34A.sub.L and the discharge port 34A.sub.R, and it is possible to reduce the size of the stapler 1A.
(223) In addition, the discharge port 34A.sub.L of one discharge passage 33A.sub.L enters one recovery port 61A.sub.L of the cut staple storage unit 6A, and the discharge port 34A.sub.L can move within the range of opening of the recovery port 61A.sub.L. Similarly, the discharge port 34A.sub.R of the other discharge passage 33A.sub.R enters the other recovery port 61A.sub.R of the cut staple storage unit 6A, and the discharge port 34A.sub.R can move within the range of the opening of the recovery port 61A.sub.R. As a result, it is possible to suppress leakage of the cut staple 13A to the outside at the connecting portion between the cut staple storage unit 6A and the discharge passage 33A.
(224) <Configuration Example of Stapler According to Second Embodiment>
(225)
(226) As illustrated in
(227) The stapler 1B includes a sheet pinching unit 4B that pinches the sheet P between the staple ejecting unit 2B and the binding unit 3B. The stapler 1B moves in a direction in which the binding unit 3B moves away from and comes into contact with the staple ejecting unit 2B in a rotational operation about the shaft 32B as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4B.
(228) The stapler 1B includes a cut unit 30B that cuts the staple leg 12A of the staple 10A penetrating the sheet P at a predetermined length, a cut staple storage unit 6B which stores the cut staple 13A cut with the cut unit 30B, and a discharge passage 33B which guides the cut staple 13A cut with the cut unit 30B to the cut staple storage unit 6B. In the stapler 1B according to the second embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1B may have the same configuration as the stapler 1A of the first embodiment.
(229) The cut staple storage unit 6B is detachably attached to the stapler 1B on the back side of the stapler 1B. When attached to the stapler 1B, the cut staple storage unit 6B has a shape that closes the attachment/detachment path of the staple cartridge 100 B attached to and detached from the storage unit 20B as illustrated in
(230) As illustrated in
(231) In the stapler 1B, the discharge port 34B.sub.L of one discharge passage 33B.sub.L and one recovery port 61B.sub.L of the cut staple storage unit 6B communicate with each other, and the discharge port 34B.sub.R of the other discharge passage 33B.sub.R and the other recovery port 61B.sub.R of the cut staple storage unit 6B communicate with each other.
(232) As a result, the cut staple 13A passing through the one discharge passage 33B.sub.L from the cut unit 30B is stored in the cut staple storage unit 6B from the recovery port 61B.sub.L. Further, the cut staple 13A passing from the cut unit 30B through the other discharge passage 33B.sub.R is stored in the cut staple storage unit 6B from the recovery port 61B.sub.R.
(233) At least one of the discharge passage 33B.sub.L and the discharge passage 33B.sub.R of the discharge passage 33B is configured such that the discharge ports 34B.sub.L and 34B.sub.R are lower than the cut unit 30B, regardless of the position of the stapler 1B in the post-processing apparatus 502A. Therefore, the cut staple 13A cut with the cut unit 30B is suppressed from staying in the cut unit 30B, the discharge passage 33B.sub.L, and the discharge passage 33B.sub.R, and is configured to be stored in the cut staple storage unit 6B.
(234) In the discharge passage 33B, the discharge port 34B.sub.L of one discharge passage 33B.sub.L and the discharge port 34B.sub.R of the other discharge passage 33B.sub.R are arranged in the vicinity of the shaft 32B. As a result, the quantity of movement of the discharge ports 34B.sub.L and 34B.sub.R in the rotational operation of the binding unit 3B with the shaft 32B as the fulcrum is suppressed, and it is possible to reduce the size of the plow 1B.
(235) Further, the discharge port 34B.sub.L of one discharge passage 33B.sub.L enters one recovery port 61B.sub.L of the cut staple storage unit 6B, and the discharge port 34B.sub.L is disposed within the range of the opening of the recovery port 61B.sub.L. Similarly, the discharge port 34B.sub.R of the other discharge passage 33B.sub.R enters the other recovery port 61B.sub.R of the cut staple storage unit 6B, and the discharge port 34B.sub.R is movable within the range of the opening of the recovery port 61B.sub.R. As a result, it is possible to suppress the leakage of the cut staple 13A to the outside at the connecting portion between the cut staple storage unit 6B and the discharge passage 33B.
(236) <Example of Operational Effect of Stapler of Second Embodiment>
(237) In the stapler 1B according to the second embodiment, the attachment and detachment of the staple cartridge 100B is performed in a state in which the cut staple storage unit 6B is detached from the stapler 1B. Therefore, when replenishing the staple 10A, an operation of attaching and detaching the cut staple storage unit 6B is indispensable, and the recovery of the cut staple 13A can be performed reliably at the timing of replenishing the staple 10A when there is no staple 10A.
(238) <Configuration Example of Stapler of Third Embodiment>
(239)
(240) As illustrated in
(241) The stapler 1C includes a sheet pinching unit 4C which pinches the sheet P between the staple ejecting unit 2C and the binding unit 3C. The stapler 1C moves in a direction in which the binding unit 3C comes into contact with and separates from the staple ejecting unit 2C in a rotational operation about the shaft 32 C as a fulcrum, and pinches and releases the sheet P by the sheet pinching unit 4C.
(242) The stapler 1C includes a cut unit 30C which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6C which stores the cut staple 13A cut by the cut unit 30C, and a discharge passage 33C which guides the cut staple 13A cut by the cut unit 30C to the cut staple storage unit 6C. In the stapler 1C according to the third embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1C may have the same configuration as the stapler 1A of the first embodiment.
(243) The cut staple storage unit 6C is detachably attached to the stapler 1C on the upper surface side of the stapler 1C. The cut staple storage unit 6C may be detachably attached to the binding unit 3C or may be detachably attached to the staple ejecting unit 2C. In addition, the cut staple storage unit 6C may be attached to the staple cartridge 100C, or may be configured to detach the cut staple storage unit 6C from the stapler 1C by attaching and detaching the staple cartridge 100C.
(244) The discharge passage 33C is provided in the binding unit 3C and communicates with the cut unit 30C, and the recovery port 61C of the cut staple storage unit 6C communicates with the discharge port 34C. As a result, the cut staple 13A passing from the cut unit 30C through the discharge passage 33C is stored in the cut staple storage unit 6C from the recovery port 61C.
(245) <Example of Operational Effect of Stapler of Third Embodiment>
(246) As illustrated in
(247) <Configuration Example of Stapler of Fourth Embodiment>
(248)
(249) As illustrated in
(250) The stapler 1D is provided with a sheet pinching unit 4D which pinches the sheet P between the staple ejecting unit 2D and the binding unit 3D. The stapler 1D moves in a direction in which the binding unit 3D comes into contact with and separates from the staple ejecting unit 2D in a rotational operation about the shaft 32D as a fulcrum, and pinches and releases the sheet P by the sheet pinching unit 4D.
(251) The stapler 1D includes a cut unit 30D which cuts the staple leg 12A of the staple 10A penetrating the sheet P at a predetermined length, a cut staple storage unit 6D which stores the cut staple 13A cut with the cut unit 30D, and a discharge passage 33D which guides the cut staple 13A cut by the cut unit 30D to the cut staple storage unit 6D. In the stapler 1D of the fourth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1D may have the same configuration as the stapler 1A of the first embodiment.
(252) The cut staple storage unit 6D is detachably attached to the stapler 1D on the lower surface side of the stapler 1D. In the present example, the cut staple storage unit 6D is attached to the staple ejecting unit 2D.
(253) The discharge passage 33D is provided in the binding unit 3D and communicates with the cut unit 30D. In the discharge passage 33D, one discharge passage 33D communicating with the cut unit 30D is divided into two discharge passages 33D.sub.L and 33D.sub.R so as not to block the attachment and detachment paths of the staple cartridge 100D attached to and detached from the storage unit 20D, and is arranged on both the left and right sides of the storage unit 20D. In the discharge passage 33D, the two discharge passages 33D.sub.L and 33D.sub.R extend from the upper surface to the lower surface side through the back surface of the stapler 1D.
(254) In the stapler 1D, the discharge port 34D.sub.L of one discharge passage 33D.sub.L and one recovery port 61D.sub.L of the cut staple storage unit 6D communicate with each other, and the discharge port 34D.sub.R of the other discharge passage 33D.sub.R and the other recovery port 61D.sub.R of the cut staple storage unit 6D communicate with each other.
(255) As a result, the cut staple 13A passing through the one discharge passage 33D.sub.L from the cut unit 30D is stored in the cut staple storage unit 6D from the recovery port 61D.sub.L. Further, the cut staple 13A passing from the cut unit 30D through the other discharge passage 33D.sub.R is stored in the cut staple storage unit 6D from the recovery port 61D.sub.R.
(256) <Example of Operational Effect of Stapler of Fourth Embodiment>
(257) The lower surface side of the stapler 1D deviates from the attachment and detachment paths of the staple cartridge 100D, and no movable unit is also provided. As a result, the cut staple storage unit 6D can be configured to have a shape that covers the entire lower surface of the stapler 1D, so that it is easy to increase the capacity of the cut staple storage unit 6D.
(258) <Configuration Example of Stapler of Fifth Embodiment>
(259)
(260) As illustrated in
(261) The stapler 1E includes a sheet pinching unit 4E which pinches the sheet P between the staple ejecting unit 2E and the binding unit 3E. The stapler 1E moves in a direction in which the binding unit 3E comes into contact with and separates from the staple ejecting unit 2E in a rotational operation about the shaft 32 E as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4E.
(262) The stapler 1E includes a cut unit 30E which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6E which stores the cut staple 13A cut by the cut unit 30E, and a discharge passage 33E which guides the cut staple 13A cut by the cut unit 30E to the cut staple storage unit 6E. In the stapler 1E according to the fourth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1E may have the same configuration as the stapler 1A of the first embodiment.
(263) The cut staple storage unit 6E is detachably attached to the stapler 1E on the front side of the stapler 1E. In the present example, the cut staple storage unit 6E is attached to the staple ejecting unit 2E.
(264) The discharge passage 33E communicates with the cut unit 30E, and the discharge port 34E of the discharge passage 33E and the recovery port 61E of the cut staple storage unit 6E communicate with each other through the side surface of the stapler 1E. As a result, the cut staple 13A passing through the discharge passage 33E from the cut unit 30E is stored in the cut staple storage unit 6E from the recovery port 61E.
(265) <Example of Operational Effect of Stapler of Fifth Embodiment>
(266) A lower side of a sheet guide 506A constituting a loading unit 504A of a post-processing apparatus 502A illustrated in
(267) <Configuration Example of Stapler of Sixth Embodiment>
(268)
(269) As illustrated in
(270) The stapler 1F includes a sheet pinching unit 4F which pinches the sheet P between the staple ejecting unit 2F and the binding unit 3F. The stapler 1F moves in a direction in which the binding unit 3F comes into contact with and separates from the staple ejecting unit 2F, in a rotational operation about the shaft 32F as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4F.
(271) The stapler 1F includes a cut unit 30F which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6F which stores the cut staple 13A cut by the cut unit 30F, and a discharge passage 33F which guides the cut staple 13A cut by the cut unit 30F to the cut staple storage unit 6F. In the stapler 1F according to the sixth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1F may have the same configuration as the stapler 1A of the first embodiment.
(272) The cut staple storage unit 6F is detachably attached to the stapler 1F on the back side of the stapler 1F. When the cut staple storage unit 6F is attached to the stapler 1F, the two recovery passages 60F.sub.L and 60F.sub.R are arranged on both sides of the storage unit 20F.
(273) The discharge passage 33F is provided in the binding unit 3F and communicates with the cut unit 30F. In the discharge passage 33F, a single discharge passage 33F communicating with the cut unit 30F is divided into two discharge passages 33F.sub.L and 33F.sub.R and is arranged on both the left and right sides of the storage unit 20F so as not to block the attachment and detachment paths detachably attached to the staple cartridge 100F.
(274) In the stapler 1F, the discharge port 34F.sub.L of one discharge passage 33F.sub.L and one recovery port 61F.sub.L of the cut staple storage unit 6B communicate with each other, and the discharge port 34F.sub.R of the other discharge passage 33F.sub.R and the other recovery port 61F.sub.R of the cut staple storage unit 6F communicate with each other.
(275) Thus, the cut staple 13A passing through the one discharge passage 33F.sub.L from the cut unit 30F is stored in the cut staple storage unit 6F from the recovery port 61F.sub.L. Further, the cut staple 13A passing from the cut unit 30F through the other discharge passage 33F.sub.R is stored in the cut staple storage unit 6F from the recovery port 61F.sub.R.
(276) The cut staple storage unit 6F includes a fitting portion 62F to be fitted with the staple cartridge 100F. The fitting portion 62F extends between one recovery passage 60F.sub.L and the other recovery passage 60F.sub.R and is provided at a position which blocks the attachment and detachment paths of the staple cartridge 100F to be attached to and detached from the storage unit 20F. In a state in which the staple cartridge 10F is attached to the storage unit 20F of the stapler 1F, when the cut staple storage unit 6F is attached, the fitting portion 62F is fitted to a fitted portion 103F provided on the handle unit 102F of the staple cartridge 100F.
(277) <Example of Operational Effect of Stapler of Sixth Embodiment>
(278) In the stapler 1F of the sixth embodiment, in the state in which the cut staple storage unit 6F is attached, when the fitting portion 62F is fitted to the fitted portion 103F provided in the handle unit 102F of the staple cartridge 100F, the detachment of the staple cartridge 100F is restricted. Therefore, as illustrated in
(279) <Configuration Example of Stapler of Seventh Embodiment>
(280)
(281) As illustrated in
(282) The stapler 1G includes a sheet pinching unit 4G that pinches the sheet P between the staple ejecting unit 2G and the binding unit 3G. The stapler 1G moves in a direction in which the binding unit 3G comes into contact with and separates from the staple ejecting unit 2G in a rotational operation about the shaft 32G as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4G.
(283) The stapler 1G includes a cut unit 30G which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6G which stores the cut staple 13A cut by the cut unit 30C and a discharge passage 33 G which guides the cut staple 13A cut by the cut unit 30G to the cut staple storage unit 6G. In the stapler 1G of the third embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1G may have the same configuration as the stapler 1A of the first embodiment.
(284) The cut staple storage unit 6G is provided in the staple cartridge 100G, and the cut staple storage unit 6G is detached from the stapler 1G by attachment and detachment of the staple cartridge 100G to the storage unit 20G. The cut staple storage unit 6G is provided in the handle unit 102G used when the staple cartridge 100G is attached and detached, and the cut staple storage unit 6G also serves as the handle unit 102G.
(285) The discharge passage 33G is provided in the binding unit 3G to communicate with the cut unit 30G and the discharge port 34G communicates with the recovery port 61G of the cut staple storage unit 6G. Therefore, the cut staple 13A passing from the cut unit 30G through the discharge passage 33G is stored in the cut staple storage unit 6G from the recovery port 61G.
(286) <Example of Operational Effect of Stapler of Seventh Embodiment>
(287) In the stapler 1G according to the seventh embodiment, when replenishing the staple 10A or the like, the staple cartridge storage unit 6G is attached and detached together by the operation of attaching and detaching the staple cartridge 100G. This makes it possible to reliably perform the recovery of the cut staple 13A at the timing of replenishing the staple 10A when the staple 10A disappears. In addition, since the cut staple storage unit 6G also serves as the handle unit 102G a space for newly providing the cut staple storage unit 6G is unnecessary, and it is possible to suppress an increase in size of the stapler 1G. Further, the entire staple storage unit 6G or at least the upper surface thereof is made transparent so that the inside of the staple storage unit 6G can be visually confirmed, whereby the quantity of the cut staple 13A stored can be easily confirmed.
(288) <Configuration Example of Stapler of Eighth Embodiment>
(289)
(290) As illustrated in
(291) The stapler 1H is provided with a sheet pinching unit 4H that pinches the sheet P between the staple ejecting unit 2H and the binding unit 3H. The stapler 1H moves in a direction in which the binding unit 3H moves away from the staple ejecting unit 2H in a rotational operation about the shaft 32 H as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4H.
(292) The stapler 1H includes a cut unit 30H which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6Ha which stores the cut staple 13A cut by the cut unit 30H, and a discharge passage 33H which guides the cut staple 13A cut by the cut unit 30H to the cut staple storage unit 6Ha. In the stapler 1H according to the eighth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1H may have the same configuration as the stapler 1A of the first embodiment.
(293) The cut staple storage unit 6Ha is detachably attached to the stapler 1H on the upper surface side of the stapler 1H. In the present example, the cut staple storage unit 6Ha is attached to the staple cartridge 100H, and the cut staple storage unit 6Ha is attached to and detached from the stapler 1H by attaching and detaching the staple cartridge 100H.
(294) The discharge passage 33H is provided in the binding unit 3H to communicate with the cut unit 30H, and communicates with the recovery port 61Ha of the cut staple storage unit 6Ha. As a result, the cut staple 13A passing from the cut unit 30H through the discharge passage 33H is stored in the cut staple storage unit 6Ha from the recovery port 61Ha.
(295) The staple cartridge 100H is configured such that a refill 104Ha in which the staple sheet 101A is stored is detachable, and the cut staple storage unit 6Ha is provided in the refill 104Ha. The refill 104Ha includes a staple storage unit 105Ha in which the staple sheet 101A is stored so as to be fed, and is divided into the cut staple storage unit 105Ha and the partition 106Ha to form a cut staple storage unit 6Ha.
(296) The staple storage unit 105Ha is provided with a staple sheet pressing part 107Ha and a spring 108Ha which press the staple sheet 101A along the stacking direction. The cut staple storage unit 6Ha is provided with a recovery port 61Ha on the upper surface of the refill 104Ha, and a lid 63Ha which opens and closes the recovery port 61Ha. The lid 63Ha is urged by the spring 64Ha in a direction which closes the recovery port 61Ha.
(297) As a result, as illustrated in
(298) In contrast, as illustrated in
(299) The cut staple storage unit 6Ha is provided with a recovery cover 65Ha that allows the entire upper surface of the refill 104Ha to be opened and closed. In this example, the recovery cover 65Ha opens and closes the cut staple storage unit 6Ha by rotational operation about the shaft 66Ha as a fulcrum. Therefore, by opening the recovery cover 65Ha in a state in which the staple cartridge 100H is detached from the stapler 1H, and in a state in which the refill 104Ha is detached from the staple cartridge 100H as necessary, the cut staple 13A stored in the cut staple storage unit 6Ha can be discharged. In the configuration in which the refill 104H is exchanged by replenishing the staple 10A, the recovery lid 65Ha may not be provided.
(300) <Example of Operational Effect of Stapler of Eighth Embodiment>
(301) In the stapler 1H of the eighth embodiment, when replenishing the staple 10A or the like, the cut staple storage unit 6Ha is attached and detached together by an operation of attaching and detaching the staple cartridge 100H. This makes it possible to reliably perform the recovery of the cut staple 13A at the timing of replenishing the staple 10A when the staple 10A disappears. Further, since the cut staple storage unit 6Ha is attached together by the operation of attaching the staple cartridge 100H to the stapler 1H, it is possible to suppress the forgetting to attach the cut staple storage unit 6Ha.
(302) <Modified Example of Refill of Present Embodiment>
(303)
(304) The cut staple storage unit 6Hb is provided with a recovery port 61Hb on the upper surface of the refill 104Hb and a lid 63Hb which opens and closes the recovery port 61Hb. The lid 63Hb is biased in a direction of closing the recovery port 61Hb by a spring (not illustrated).
(305) The cut staple storage unit 6Hb is provided with a recovery cover 65Hb that allows the entire upper surface of the refill 104Hb to be opened and closed. In the present embodiment, the recovery lid 65Hb opens and closes the cut staple storage unit 6Hb by rotational operation about the shaft 66Hb as a fulcrum.
(306)
(307) The refill 104Ha.sub.2 is provided with a recovery port 61Ha on the upper surface of the cut staple storage unit 6Ha.sub.2, and a lid 63Ha that opens and closes the recovery port 61Ha. The lid 63Ha is biased in a direction of closing the recovery port 61Ha by a spring (not illustrated).
(308) The refill 104Ha.sub.2 is provided with a recovery lid 65Ha that allows the entire upper surface of the cut staple storage unit 6Ha.sub.2 to be opened and closed. In the present example, the recovery cover 65Ha opens and closes the cut staple storage unit 6Ha.sub.2 by rotational operation about the shaft 66Ha as a fulcrum.
(309) In the refill 6Hb.sub.2 illustrated in
(310) The refill 104Hb.sub.2 is provided with a recovery port 61Hb on the upper surface of the cut staple storage unit 6Hb.sub.2, and a lid 63Hb which opens and closes the recovery port 61Hb. The lid 63Hb is biased in a direction of closing the recovery port 61Hb by a spring (not illustrated).
(311) The refill 104Hb.sub.2 is provided with a recovery lid 65Hb that can open and close the entire upper surface of the cut staple storage unit 6Hb.sub.2. In the present embodiment, the recovery lid 65Hb opens and closes the cut staple storage unit 6Hb.sub.2 by rotational operation about the shaft 66Hb as a fulcrum.
(312)
(313) The refill 104Ha.sub.3 is provided with a recovery port 61Ha on the upper surface of the cut staple storage unit 6Ha.sub.3, and a lid 63Ha that opens and closes the recovery port 61Ha. The lid 63Ha is biased in a direction of closing the recovery port 61Ha by a spring (not illustrated).
(314) The refill 104Ha.sub.3 is provided with a recovery lid 65Ha that can open and close the entire upper surface of the cut staple storage unit 6Ha.sub.3. In the present embodiment, the recovery lid 65Ha opens and closes the cut staple storage unit 6Ha.sub.3 by rotational operation about the shaft 66Ha as a fulcrum.
(315) In the refill 6Hb.sub.3 illustrated in
(316) The refill 104Hb.sub.3 is provided with a recovery port 61Hb on the upper surface of the cut staple storage unit 6Hb.sub.3, and a lid 63Hb which opens and closes the recovery port 61Hb. The lid 63Hb is biased in a direction of closing the recovery port 61Hb by a spring (not illustrated).
(317) The refill 104Hb.sub.3 is provided with a recovery lid 65Hb that allows the entire upper surface of the cut staple storage unit 6Hb.sub.3 to be opened and closed. In the present example, the recovery cover 65Hb opens and closes the cut staple storage unit 6Hb.sub.3 by rotational operation about the shaft 66Hb as a fulcrum.
(318)
(319) The refill 104H.sub.4 is provided with a recovery port 61H.sub.4 provided on the upper surfaces of one recovery passage 60H.sub.M and the other recovery passage 60HR.sub.4, and a lid 63H.sub.4 Which opens and closes the recovery port 61H.sub.4. The lid 63H.sub.4 is urged in a direction of closing the recovery port 61H.sub.4 by the spring 64H.sub.4.
(320) The refill 104H.sub.4 is formed with a recovery lid 65H.sub.4 that allows the entire upper surfaces of one recovery passage 60HL.sub.4 and the other recovery passage 60H.sub.R4 to be opened and closed is provided. In the present embodiment, the recovery lid 65H.sub.4 opens and closes the cut staple storage unit 6H.sub.4 by rotational operation about the shaft 66H4 as a fulcrum.
(321)
(322) The refill 104H.sub.5 is provided with a recovery port 61H on the upper surfaces of one cut staple storage unit 6HL.sub.5 and the other cut staple storage unit 6HR.sub.5, and a lid 63H.sub.5 Which opens and closes the recovery port 61H.sub.5. The lid 63H.sub.5 is biased in the direction of closing the recovery port 61H by the spring 64H.sub.5.
(323) The refill 104H is provided with a recovery lid 65H.sub.5 which is capable of opening and closing the entire upper surfaces of one cut staple storage unit 6HL.sub.5 and the other cut staple storage unit 6HR.sub.5. In the present embodiment, the recovery lid 65H.sub.5 opens and closes the cut staple storage units 6HL.sub.5, 6HR.sub.5 by the rotational operation about the shaft 66H.sub.5 as a fulcrum.
(324) <Configuration Example of Stapler of Ninth Embodiment>
(325)
(326) As illustrated in
(327) The stapler 1J is provided with a sheet pinching unit 4J that pinches the sheet P between the staple ejecting unit 2J and the binding unit 3J. The stapler 1J moves in a direction in which the binding unit 3J moves away from the staple ejecting unit 2J in a rotational operation about the shaft 32J as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4J.
(328) The stapler 1J has a cut unit 30J which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6Ja which stores the cut staple 13A cut by the cut unit 30J, and a discharge passage 33J which guides the cut staple 13A cut by the cut unit 30J to the cut staple storage unit 6Ja. In the stapler 1J according to the ninth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1J have the same configuration as the stapler 1A of the fast embodiment.
(329) The cut staple storage unit 6Ja is detachably attached to the stapler 1J. In the present example, the cut staple storage unit 6Ja is attached to the staple cartridge 100J, and the cut staple storage unit 6Ja is detached from the stapler 1J by attaching and detaching the staple cartridge 100J.
(330) The discharge passage 33J is provided in the binding unit 3J and communicates with the cut unit 30J, and the discharge port 34Ja communicates with the recovery port 61Ja of the cut staple storage unit 6Ja. As a result, the cut staple 13A passing from the cut unit 30J through the discharge passage 33J is stored in the cut staple storage unit 6Ja from the recovery port 61Ja.
(331) In the staple cartridge 100J, the cut staple storage unit 6Ja is attached so as to be vertically movable. The cut staple storage unit 6Ja is suspended from the staple cartridge 100J by the spring 67Ja and is moved up and down by a change in weight due to a change in the quantity of the stored cut staple 13A.
(332) The cut staple storage unit 6Ja has a fitting portion 68J at a lower portion thereof. The fitting portion 68Ja is configured so that a surface that is located on the front side in the movement direction in the operation of moving the staple cartridge 100J in the direction of attaching to the storage unit 20J of the stapler 1J is substantially perpendicular to the movement direction. Further, the fitting portion 68Ja is configured so that the surface located on the front side in the movement direction in the movement of moving the staple cartridge 100J away from the storage unit 20J of the stapler 1J is inclined with respect to the movement direction.
(333) When the staple cartridge 100J is attached to the storage unit 20J, the stapler 1J has a fitted portion 109Ja at a position facing the fitting portion 68Ja. The fitted portion 109Ja has a shape that matches the fitting portion 68Ja. When the quantity of the cut staple stored in the cut staple storage unit 6Ja increases and the cut staple storage unit 6Ja is lowered, the fitting portion 68Ja is engaged.
(334) <Example of Operational Effect of Stapler of Ninth Embodiment>
(335) In the stapler 1J according to the ninth embodiment, when the cut staple 13A is not stored in the cut staple storage unit 6Ja, as illustrated in
(336) In a state in which a predetermined quantity of the cut staple 13A is stored in the cut staple storage unit 6Ja, as illustrated in
(337) In the operation of detaching the staple 13A or removing the staple cartridge 100J by replenishing the staple 10A, in order to detach the staple cartridge 100J from the stapler 1J, as illustrated in
(338) When the staple cartridge 100J is moved in the direction of pulling out from the storage unit 20J, depending on the shape of the inclined surface of the fitting portion 68Ja and the shape of the inclined surface of the fitted portion 109Ja, while the fitting portion 68Ja runs over the fitted portion 109Ja, the cut staple storage unit 6Ja is raised and the fitting portion 68Ja escapes from the fitted portion 109Ja. Therefore, the staple cartridge 100J can be detached from the stapler 1J.
(339) When the staple cartridge 100J is detached from the stapler 1J, unless the cut staple 13a is discharged from the cut staple storage unit 6Ja, the cut staple storage unit 6Ja descends to the fitting position by the weight of the cut staple 13A. Therefore, when trying to attach the staple cartridge 100J to the stapler 1J again without discharging the cut staple 13a from the cut staple storage unit 6Ja, the fitting portion 68Ja abuts against the fitted portion 109Ja as illustrated in
(340) In the operation of moving the staple cartridge 100J in the direction of attaching the staple cartridge 100J to the stapler 1J, the cut staple storage unit 6Ja cannot be raised due to the shape of the fitting section 68Ja. Accordingly, the staple cartridge 100J cannot be attached to the stapler 1J unless the cut staple 13A is discharged from the cut staple storage unit 6Ja. Therefore, it is possible to reliably discharge the cut staple 13A from the cut staple storage unit 6Ja and to recover the cut staple 13A.
(341) <Modified Example of Stapler of Ninth Embodiment>
(342)
(343) Like the stapler 1J according to the ninth embodiment, a stapler 1Jb according to the modified example of the ninth embodiment is provided with the staple ejecting unit 2J and the binding unit 3J, and a sheet pinching unit 4J which pinches the sheet P between the staple ejecting unit 2J and the binding unit 3J.
(344) The stapler 1Jb includes a cut staple storage unit 6Jb which stores the cut staple 13A cut by the cut unit 30J. The cut staple storage unit 6Jb is detachably attached to the stapler 1Jb. The cut staple storage unit 6Jb is attached to the staple cartridge 100Jb, and the cut staple storage unit 6Jb is detached from the stapler 1Jb by attaching and detaching the staple cartridge 100Jb.
(345) The staple cartridge 100Jb includes a cut staple full load detection actuator 110Jb and a locking unit 111Jb interlocked with the cut staple full load detection actuator 110Jb. Further, the stapler 1Jb is provided with a locked portion 112Jb with which the locking unit 111Jb abuts. The cut staple full load detection actuator 110Jb moves in a direction in which the cut staple full load detection actuator 110Jb protrudes into the cut staple storage unit 6Jb and in a retreating direction. The cut staple full load detection actuator 110Jb may be configured to be retracted from the inside of the cut staple storage unit 6Jb by being pushed against the cut staple 13A when the cut staple 13A is stored in the cut staple storage unit 6Jb, and cut staple full load detection actuator 110Jb may be configured to move in the direction of protruding and retracting into the inside of the cut staple storage unit 6Jb at a predetermined timing.
(346) In the present embodiment, the locking unit 111Jb is interlocked with the cut staple full load detection actuator 110Jb, and in this example, moves by rotating operation between the initial position where the locking unit 111Jb retreats from the lower surface of the staple cartridge 1Jb into the inside and the locked position projecting from the lower surface of the staple cartridge 1Jb. The shaft 113Jb of the rotational operation of the locking unit 111Jb is located on the front side in the movement direction in the operation of moving the staple cartridge 100Jb in the direction of detaching the staple cartridge 100Jb from the storage unit 20Jb of the stapler 1Jb.
(347) The locked portion 112Jb protrudes from the lower surface of the storage unit 20Jb into the movement path of the locking unit 111Jb that has moved to the locking position.
(348) <Example of Operational Effect of Stapler of Modified Example of Ninth Embodiment>
(349) In the stapler 1Jb according to the modified example of the ninth embodiment, as illustrated in
(350) In the state in which a predetermined quantity of the cut staple 13A is stored in the cut staple storage unit 6Jb, as illustrated in
(351) In the operation of detaching the staple 13A or detaching the staple cartridge 100Jb by replenishing the staple 10A, in order to remove the staple cartridge 100Jb from the stapler 1Jb, the staple cartridge 100Jb is moved in the direction of pulling the staple cartridge 100Jb out of the storage unit 20Jb.
(352) When the staple cartridge 100Jb is moved in the direction of pulled out of the storage unit 20Jb, the locking unit 111Jb rides over the locked portion 112Jb. Therefore, the staple cartridge 100Jb can be detached from the stapler 1Jb.
(353) When the staple cartridge 100Jb is attempted to be attached to the stapler 1Jb again without discharging the cut staple 13A from the cut staple storage unit 6Jb, the locking unit 111Jb abuts against the locked portion 112Jb, as illustrated in
(354) In the operation of moving the staple cartridge 100Jb in the direction of attaching the staple cartridge 100Jb to the stapler 1Jb, the locking unit 111Jb cannot ride over the locked portion 112Jb due to the shape of the locking unit 111Jb. As a result, the staple cartridge 100Jb cannot be attached to the stapler 1Jb unless the cut staple 13A is discharged from the cut staple storage unit 6Jb. Therefore, it is possible to reliably discharge the cut staple 13A from the cut staple storage unit 6Jb and to recover the cut staple 13A.
(355) <Configuration Example of Stapler of Tenth Embodiment>
(356)
(357) As illustrated in
(358) The stapler 1K includes a sheet pinching unit 4K that pinches the sheet P between the staple ejecting unit 2K and the binding unit 3K. The stapler 1K moves in a direction in which the binding unit 3K comes into contact with and separates from the staple ejecting unit 2K in a rotational operation about the shaft 32K as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4K.
(359) The stapler 1K includes a cut unit 30K which cuts the staple leg 12A of the staple 10A penetrating the sheet P at a predetermined length, a cut staple storage unit 6Ka which stores the cut staple 13A cut by the cut unit 30K, and a discharge passage 33K which guides the cut staple 13A cut by the cut unit 30K to the cut staple storage unit 6Ka. In the stapler 1K according to the tenth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1K may have the same configuration as the stapler 1A of the first embodiment.
(360) The cut staple storage unit 6Ka is detachably attached to the stapler 1K. In this example, the cut staple storage unit 6Ka is detachably attached to the staple ejecting unit 2K. The discharge passage 33K is provided in the binding unit 3K and communicates with the cut unit 30K, and communicates with the cut staple storage unit 6Ka. As a result, the cut staple 13A passing from the cut unit 30K through the discharge passage 33K is stored in the cut staple storage unit 6Ka.
(361) The cut staple storage unit 6Ka includes an engagement portion 68Ka. The engagement portion 68Ka moves up and down by the change in the quantity of the cut staple 13A stored in the cut staple storage unit 6Ka. The engagement portion 68Ka is configured so that the surface facing the staple cartridge 100L in the operation of moving the staple cartridge 100K in the direction of attaching to the storage unit 20K of the stapler 1K is substantially perpendicular. Further, the fitting portion 68Ka is configured so that the surface facing the staple cartridge 100K in the operation of moving the staple cartridge 100K in the direction of detaching the staple cartridge 100K from the storage unit 20K of the stapler 1K is inclined with respect to the movement direction.
(362) The stapler 1K includes a locking pin 115K locked to a locking protrusion 114K provided on the staple cartridge 100K, and a spring 116K which urges the locking pin 115K in the direction of the locking protrusion 114K.
(363) <Example of Operational Effect of Stapler of Tenth Embodiment>
(364) In the stapler 1K of the tenth embodiment, as illustrated in
(365) In a state in which a predetermined quantity of the cut staple 13A is stored in the cut staple storage unit 6Ka, as illustrated in
(366) In the operation of recovering the staple 13A or detaching the staple cartridge 100K by replenishing the staple 10A, in order to remove the staple cartridge 100K from the stapler 1K, as illustrated in
(367) When the staple cartridge 100K is moved in the direction of pulled out of the storage unit 20K, the staple cartridge 100K rides over the engagement portion 68Ka, while compressing the spring 116K and pushing up the engagement pin 115K, by the shape of the inclined surface of the engagement portion 68Ka. Therefore, the staple cartridge 100K can be detached from the stapler 1K.
(368) When the staple cartridge 100K is attempted to be attached to the stapler 1K again without discharging the cut staple 13A from the cut staple storage unit 6Ka, the staple cartridge 100K abuts against the engagement portion 68Ka as illustrated in
(369) In the operation of moving the staple cartridge 100K in the direction of attaching the staple cartridge 100K to the stapler 1K, the staple cartridge 100K cannot ride over the engagement portion 68Ka due to the shape of the engagement portion 68Ka. As a result, the staple cartridge 100K cannot be attached to the stapler 1K unless the cut staple 13A is discharged from the cut staple storage unit 6Ka. Therefore, it is possible to reliably discharge the cut staple 13A from the cut staple storage unit 6Ka and to recover the cut staple 13A.
(370) <Modified Example of Stapler of Tenth Embodiment>
(371)
(372) Like the stapler 1K of the tenth embodiment, a stapler 1Kb of the modified example of the tenth embodiment includes the staple ejecting unit 2K and the binding unit 3K, and a sheet pinching unit 4K which pinches the sheet P between the staple ejecting unit 2K and the binding unit 3K.
(373) The stapler 1Kb is provided with a cut staple storage unit 6Kb which stores the cut staple 13A cut by the cut unit 30K. The cut staple storage unit 6Kb is detachably attached to the staple ejecting unit 2K.
(374) The cut staple storage unit 6Kb is provided with an engagement portion 68Kb. The engagement portion 68Kb moves up and down by the change in the quantity of the cut staple 13A stored in the cut staple storage unit 6Kb. The engagement portion 68Kb is configured so that the surface facing the locking pin 117Kb in the operation of moving the cut staple storage unit 6Kb in the direction of attached to the stapler 1Kb is substantially perpendicular. Further, the fitting portion 68Ka is configured so that the surface facing the engaging pin 117Kb in the operation of moving the cut staple storage unit 6Kb in the direction of detached from the stapler 1K is inclined with respect to the movement direction.
(375) The stapler 1Kb is provided with a locking pin 115K locked to the locking protrusion 114K provided on the staple cartridge 100K, and a spring 116K which urges the locking pin 115K in the direction of the locking protrusion 114K. The stapler 1Kb is provided with a locking pin 117Kb to which the engagement portion 68Kb is locked, and a spring 118Kb which urges the locking pin 117Kb in the direction of the engagement portion 68Kb.
(376) <Example of Operational Effect of Stapler of Modified Example of Tenth Embodiment>
(377) In the stapler 1Kb of the modified example of the tenth embodiment, as illustrated in
(378) In the state in which a predetermined quantity of the cut staple 13A is stored in the cut staple storage unit 6Kb, as illustrated in
(379) When the cut staple storage unit 6Kb is moved in the direction of pulled out of the stapler 1Kb, the engagement portion 68Kb rides over the locking pin 117Kb, while compressing the spring 118Kb and pushing up the locking pin 117Kb by the shape of the slope of the engagement portion 68K. Therefore, the cut staple storage unit 6Kb can be detached from the stapler 1Kb.
(380) When trying to attach the cut staple storage unit 6Kb to the stapler 1Kb again without discharging the cut staple 13A from the cut staple storage unit 6Kb, as illustrated in
(381) In the operation of moving the cut staple storage unit 6Kb in the direction of attached to the stapler 1Kb, the engagement portion 68Kb cannot ride over the locking pin 117Kb due to the shape of the engagement portion 68Kb. Accordingly, unless the cut staple 13A is discharged from the cut staple storage unit 6Kb, the cut staple storage unit 6Kb cannot be attached to the stapler 1Kb. Therefore, it is possible to reliably discharge the cut staple 13A from the cut staple storage unit 6Kb and to recover the cut staple 13A.
(382) <Configuration Example of Stapler of Eleventh Embodiment>
(383)
(384) As illustrated in
(385) The stapler 1L is provided with a sheet pinching unit 4L which pinches the sheet P between the staple ejecting unit 2L and the binding unit 3L. The stapler 1L moves in a direction in which the binding unit 3L comes into contact with and separates from the staple ejecting unit 2L in a rotational operation about the shaft 32L as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4L.
(386) The stapler 1L includes a cut unit 30L which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6L which stores the cut staple 13A cut by the cut unit 30L, and a discharge passage 33L which guides the cut staple 13A cut by the cut unit 30L to the cut staple storage unit 6L. In the stapler 1L according to the eleventh embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1L may have the same configuration as the stapler 1A of the first embodiment.
(387) The cut staple storage unit 6L is detachably attached to the stapler 1L. In the present example, the cut staple storage unit 6L is detachably attached to the back surface of the staple ejecting unit 2L. The staple cartridge 100L is configured to be attachable to and detachable from the stapler 1L by attaching and detaching the cut staple storage unit 6L. The discharge passage 33L is provided in the binding unit 3L, communicates with the cut unit 30L, and communicates with the cut staple storage unit 6L. As a result, the cut staple 13A passing from the cut unit 30L through the discharge passage 33L is stored in the cut staple storage unit 6L.
(388) The cut staple storage unit 6L includes an expansion unit 69L. The expansion unit 69L is movable in a direction of being drawn out and stored in the cut staple storage unit 6L, and is provided so that the volume of the cut staple storage unit 6L can be adjusted.
(389) <Example of Operational Effect of Stapler of Eleventh Embodiment>
(390) In the stapler 1L according to the eleventh embodiment, as illustrated in
(391) <Configuration Example of Stapler of Twelfth Embodiment>
(392)
(393) As illustrated in
(394) The stapler 1M includes a sheet pinching unit 4M which pinches the sheet P between the staple ejecting unit 2M and the binding unit 3M. The stapler 1M moves in a direction in which the binding unit 3M comes into contact with and separates from the staple ejecting unit 2M in a rotational operation about the shaft 32M as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4M.
(395) The stapler 1M includes a cut unit 30M that cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6Ma that stores the cut staple 13A cut by the cut unit 30M, and a discharge passage 33M which guides the cut staple 13A cut by the cut unit 30M to the cut staple storage unit 6Ma. In the stapler 1M of the twelfth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1M have the same configuration as the stapler 1A of the first embodiment.
(396) The cut staple storage unit 6Ma is detachably attached to the stapler 1M. The cut staple storage unit 6Ma is detachably attached to the back surface of the staple ejecting unit 2M. The shaft protrusion 70Ma is inserted into a receiving unit (not illustrated) of the stapler 1M, and in the operation of attaching and detaching the cut staple storage unit 6Ma to and from the stapler 1M is performed by the rotational operation around the shaft protrusion 70Ma as the shaft. The cut staple storage unit 6Ma is detached from the stapler 1M by removing the shaft projection portion 70Ma from the stapler 1M. The cut staple storage unit 6Ma includes an locking claw 71Ma locked with the stapler 1M, and an manipulation unit 72Ma provided on the locking claw 71Ma to release the locking of the locking claw 71Ma.
(397) The staple cartridge 100M is configured to be attachable to and detachable from the stapler 1M in a state in which the cut staple storage unit 6Ma is attached to the stapler 1M. The discharge passage 33M is provided in the binding unit 3M, communicates with the cut unit 30M, and communicates with the cut staple storage unit 6Ma. As a result, the cut staple 13A passing from the cut unit 30L through the discharge passage 33L is stored in the cut staple storage unit 6Ma.
(398) <Example of Operational Effect of Stapler of Twelfth Embodiment>
(399) In the stapler 1M according to the twelfth embodiment, when attaching the cut staple storage unit 6Ma, by inserting the shaft protrusion 70Ma into a storage unit (not illustrated) of the stapler 1M and by pushing the cut staple storage unit 6Ma toward the stapler 1M, as illustrated in
(400) When detaching the cut staple storage unit 6Ma, by manipulating the manipulation unit 72Ma, the locking of the locking claw 71Ma is released and the cut staple storage unit 6Ma is moved in a direction of separating from the staple 1M. Thus, the shaft protrusion 70Ma is disengaged from the stapler 1M by the rotational operation about the shaft protrusion 70Ma as a shaft, and the cut staple receiving unit 6Ma is detached from the stapler 1M.
(401) <Modified Example of Stapler of Twelfth Embodiment>
(402)
(403) Like the stapler 1M of the twelfth embodiment, a stapler 1Mb of the modified example of the twelfth embodiment includes the staple ejecting unit 2M and the binding unit 3M, and a sheet pinching unit 4M which pinches the sheet P between the staple ejecting unit 2M and the binding unit 3M.
(404) The stapler 1Mb includes a cut staple storage unit 6Mb which stores the cut staple 13A cut by the cut unit 30M, and a discharge passage 33M which guides the cut staple 13A cut by the cut unit 30M to the cut staple storage unit 6Mb. The staple cartridge 100M is configured to be attachable to and detachable from the stapler 1M in a state in which the cut staple storage unit 6Mb is attached to the stapler 1M.
(405) The cut staple storage unit 6Mb is detachably attached to the back surface of the staple ejecting unit 2M. The cut staple storage unit 6Mb is attached to and detached from the stapler 1M in a rotational operation about the shaft protrusion (not illustrated) as a fulcrum.
(406) The cut staple storage unit 6Mb is provided with a locking claw 71Mb locked with the stapler 1Mb, and a manipulation unit 72Mb which releases the locking of the locking claw 71Mb. The manipulation unit 72Mb is provided on one or both side surfaces of the cut staple storage unit 6Mb, and moves the locking claw 71Mb provided on the lower surface of the cut staple storage unit 6Mb.
(407) <Example of Operational Effect of Stapler of Modified Example of Twelfth Embodiment>
(408) In the stapler 1Mb according to the modified example of the twelfth embodiment, when the cut staple storage unit 6Mb is attached, by pushing the cut staple storage unit 6Mb in the direction of the stapler 1Mb, as illustrated in
(409) In the case of detaching the cut staple storage unit 6Mb, by manipulating the manipulation unit 72Mb, the locking claw 71Mb is retracted to release the locking, and the cut staple storage unit 6Mb is moved in a direction of separating from the stapler 1Mb. Thus, as illustrated in
(410) <Another Modified Example of Stapler of Twelfth Embodiment>
(411)
(412) As with the stapler 1M of the twelfth embodiment, the stapler 1Mc of the other modified example of the twelfth embodiment is provided with the staple ejecting unit 2M and the binding unit 3M, and a sheet pinching unit 4M which pinches the sheet P between the staple ejecting unit 2M and the binding unit 3M.
(413) The stapler 1Mc includes a cut staple storage unit 6Mc which stores the cut staple 13A cut by the cut unit 30M, and a discharge passage 33M which guides the cut staple 13A cut by the cut unit 30M to the cut staple storage unit 6Mc. The staple cartridge 100M is configured to be attachable to and detachable from the stapler 1M in a state in which the cut staple storage unit 6Mc is attached to the stapler 1M.
(414) The cut staple storage unit 6Mc is detachably attached to the back surface of the staple ejecting unit 2M. The shaft protrusion 70Mc enters a receiving unit 119Mc provided in the lower portion of the stapler 1Mc, and the operation of attaching and detaching the cut staple storage unit 6Mc to and from the stapler 1Mc is performed by the rotational operation around the shaft protrusion 70Mc as a shaft.
(415) The cut staple storage unit 6Mc is detached from the stapler 1Mc by removing the shaft protrusion 70Mc from the receiving unit 119Mc. The cut staple storage unit 6Mc includes a locking claw 71Mc locked to the stapler 1Mc, and a manipulation unit 72Mc provided on the locking claw 71Mc to release locking of the locking claw 71Mc.
(416) In the stapler 1Mc according to another modified example of the twelfth embodiment, when attaching the cut staple storage unit 6Mc, the shaft protrusion 70Mc is inserted into the receiving unit 119Mc of the stapler 1Mc and the cut staple storage unit 6Mc is moved in the direction of the stapler 1Mc.
(417) Then, as illustrated in
(418) When detaching the cut staple storage unit 6Mc, by manipulating the manipulation unit 72Mc, the locking of the locking claw 71Mc is released, and by moving the cut staple storage unit 6Mc in the direction separating from the stapler 1Mc, the shaft protrusion 70Mc is disengaged from the stapler 1Mc by the rotational operation around the shaft protrusion 70Mc as illustrated in
(419)
(420) The stapler 1Md includes a cut staple storage unit 6Md which stores the cut staple 13A cut by the cut unit 30M, and a discharge passage 33M which guides the cut staple 13A cut by the cut unit 30M to the cut staple storage unit 6Md. The staple cartridge 100M is configured to be attachable to and detachable from the stapler 1M in a state in which the cut staple storage unit 6Md is attached to the stapler 1M.
(421) The cut staple storage unit 6Md is detachably attached to the back surface of the staple ejecting unit 2M. The cut staple storage unit 6Md is moved in the direction of pulled out to the back side of the stapler 1Md, and the operation of being attached to and detached from the stapler 1Md is performed.
(422) The cut staple storage unit 6Md has a manipulation unit 72Md which releases the locking of a locking claw (not illustrated) locked with the stapler 1Md on both left and right side surfaces.
(423) In the stapler 1Md according to another modified example of the twelfth embodiment, when the cut staple storage unit 6Md is attached, by pushing the cut staple storage unit 6Md from the back side into the attachment part on the back side of the stapler 1Md, the cut staple storage unit 6Md is attached to the stapler 1Md as illustrated in
(424) In the case of detaching the cut staple storage unit 6Md, the locking of the locking claw (not illustrated) is released by manipulating the manipulation unit 72Md, and by moving the cut staple storage unit 6Md in the direction of separating from the stapler 1Md, as illustrated in
(425)
(426) The stapler 1Me includes a cut staple storage unit 6Me which stores the cut staple 13A cut by the cut unit 30M, and a discharge passage 33M which guides the cut staple 13A cut by the cut unit 30M to the cut staple storage unit 6Md. The staple cartridge 100M is configured to be attachable to and detachable from the stapler 1M in a state in which the cut staple storage unit 6Md is attached to the stapler 1M.
(427) The cut staple storage unit 6Me is detachably attached to the back surface of the staple ejecting unit 2M. The operation of attaching and detaching the cut staple storage unit 6Me with respect to the stapler 1Me by the movement in the vertical direction is performed.
(428) The stapler 1Me has manipulation units 72Me which releases the locking of the locking claw 71Me locked with the cut staple storage unit 6Me on both of the left and right side surfaces.
(429) In the stapler 1Me according to another modified example of the twelfth embodiment, when the cut staple storage unit 6Me is attached, by moving the cut staple storage unit 6Me downward from the upper side to the attachment site on the back side of the stapler 1Me, as illustrated in
(430) When detaching the cut staple storage unit 6Me, by manipulating the manipulation unit 72Me, the locking of the locking claw 71Me is released and the cut staple storage unit 6Me is moved upward away from the stapler 1Me. Thus, as illustrated in
(431) <Configuration Example of Stapler of Thirteenth Embodiment>
(432)
(433) As illustrated in
(434) The stapler 1N is provided with a sheet pinching unit 4N which pinches the sheet P between the staple ejecting unit 2N and the binding unit 3N. The stapler 1N moves in a direction in which the binding unit 3N separates from the staple ejecting unit 2N in a rotational operation about the shaft 32N as a fulcrum, and pinches and releases the sheet P with the sheet pinching unit 4N.
(435) The stapler 1N includes a cut unit 30N which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6N which stores the cut staple 13A cut by the cut unit 30N, and a discharge passage 33N which guides the cut staple 13A cut by the cut unit 30N to the cut staple storage unit 6N. In the stapler 1N according to the thirteenth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1N may have the same configuration as the stapler 1A of the first embodiment.
(436) The cut staple storage unit 6N is detachably attached to the stapler 1N. The cut staple storage unit 6N is detachably attached to the back surface of the staple ejecting unit 2N. The staple cartridge 100N is configured to be attachable to and detachable from the stapler 1N in a state in which the cut staple storage unit 6N is attached to the stapler 1N.
(437) The discharge passage 33N is provided in the binding unit 3N, communicates with the cut unit 30N and the discharge port 34N, and communicates with the recovery port 61N of the cut staple storage unit 6N. As a result, the cut staple 13A passing from the cut unit 30N through the discharge passage 33N is stored in the cut staple storage unit 6N from the recovery port 61N.
(438) The stapler 1N is provided with a lid 80N in the discharge port 34N of the discharge passage 33N. The lid 80N is biased in a direction of closing the discharge port 34N with a spring (not illustrated) by opening and closing the discharge port 34N in a rotational operation about the shaft 81N as a fulcrum. The lid 80N is provided with a pressed section 82N that is pressed by the cut staple storage unit 6N on the opposite side across the shaft 81N.
(439) The cut staple storage unit 6N includes a lid 83N in the recovery port 61N. The lid 83N is biased in a direction of closing the recovery port 61N with a spring (not illustrated) by opening and closing the recovery port 61N with a rotational operation about the shaft 84N as a fulcrum.
(440) The cut staple storage unit 6N includes a pressing section 85N that presses the pressed section 82N of the lid 80N. The pressing section 85N is provided at a position of pressing the pressed section 82N of the lid 80N when the cut staple storage unit 6N is attached to the stapler 1N.
(441) <Example of Operational Effect of Stapler of Thirteenth Embodiment>
(442) In the stapler 1N according to the thirteenth embodiment, as illustrated in
(443) Therefore, the lid 80N of the discharge port 34N and the lid 83N of the recovery port 61N are opened by the operation of attaching the cut staple storage unit 6N to the stapler 1N, and the discharge passage 33N and the cut staple storage unit 6N communicate with each other.
(444) As illustrated in
(445) As a result, the lid 80N of the discharge port 34N and the lid 83N of the recovery port 61N are closed by the operation of detaching the cut staple storage unit 6N from the stapler 1N, and even if the cut staple remains in the discharge passage 33N, it is possible to prevent the staple from being discharged to the outside of the stapler 1N.
(446) <Modified Example of Stapler of Thirteenth Embodiment>
(447)
(448) The stapler 1N is provided with a lid 80N in the discharge port 34N of the discharge passage 33N. The lid 80N is biased in a direction of closing the discharge port 34N with a spring (not illustrated) by opening and closing the discharge port 34N in a rotational operation about the shaft 81N as a fulcrum. The lid 80N is provided with a pressed section 82N that is pressed against the cut staple storage unit 6N on the opposite side across the shaft 81N.
(449) The cut staple storage unit 6N includes a pressing section 85N that presses the pressed section 82N of the lid 80N. The pressing section 85N is provided at a position of pressing the pressed section 82N of the lid 80N when the cut staple storage unit 6N is attached to the stapler 1N.
(450) <Example of Operational Effect of Stapler of Modified Example of Thirteenth Embodiment>
(451) In the stapler 1N of the modified example of the thirteenth embodiment, when the cut staple storage unit 6N is attached to the stapler 1N, the pressing section 85N presses the pressed section 82N of the lid 80N. As the pressed section 82N is pressed, the lid 80N opens the discharge port 34N as illustrated in
(452) When the cut staple storage unit 6N is detached from the stapler 1N, the pressing section 85N is separated from the pressed section 82N, and thus, the lid 80N is closed by the force of a spring (not illustrated) as illustrated in
(453) Therefore, the lid 80N of the discharge port 34N is closed by the operation of detaching the cut staple storage unit 6N from the stapler 1N, and even if the cut staple remains in the discharge passage 33N, it is possible to suppress the cut staple from being discharged to the outside of the stapler 1N. Since the lid is not provided in the recovery port 61N of the cut staple storage unit 6N, the stored staple can be discharged from the recovery port 61N.
(454) <Configuration Example of Stapler of Fourteenth Embodiment>
(455)
(456) As illustrated in
(457) The stapler 1P is provided with a sheet pinching unit 4P which pinches the sheet P between the staple ejecting unit 2P and the binding unit 3P. In the stapler 1P, the binding unit 3P moves in a direction in which the binding unit 3P moves toward or away from the staple ejecting unit 2P by the rotational operation, and pinches and releases the sheet P with the sheet pinching unit 4P.
(458) The stapler 1P includes a cut unit 30P that cuts the staple leg 12A of the staple 10A penetrating the sheet P at a predetermined length, a cut staple storage unit 6P that stores the cut staple 13A cut by the cut unit 30P, and a discharge passage 33P which guides the cut staple 13A cut by the cut unit 30P to the cut staple storage unit 6P. In the stapler 1P of the fourteenth embodiment, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1P may have the same configuration as the stapler 1A of the first embodiment.
(459) The cut staple storage unit 6P is detachably attached to the stapler 1P. The cut staple storage unit 6P is detachably attached to the back surface of the staple ejecting unit 2P. The staple cartridge 100P is configured to be attachable to and detachable from the stapler 1P in a state in which the cut staple storage unit 6P is attached to the stapler 1P.
(460) The discharge passage 33P is provided in the binding unit 3P, communicates with the cut unit 30P, and the discharge port 34P communicates with the recovery port 61P of the cut staple storage unit 6P. As a result, the cut staple 13A passing from the cut unit 30P through the discharge passage 33P is stored in the cut staple storage unit 6P from the recovery port 61P.
(461) The stapler 1P includes a lid 80P in the discharge port 34P of the discharge passage 33P. The lid 80P opens and closes the discharge port 34P by rotational operation about the shaft 81P as a fulcrum. The lid 80P includes a pressed section 82P.sub.1 on the other side across the shaft 81P. The operation of a cam 51P constituting a driving unit for performing pinching of the sheet, ejecting the staple and clinching is transmitted to the pressed section 82P.sub.1 via the link unit 53P, and the lid 80P is opened and closed by the operation of the cam 51P.
(462) The cut staple storage unit 6P includes a lid 83P in the recovery port 61P. The lid 83P is biased in a direction of closing the recovery port 61P with a spring (not illustrated) by opening and closing the recovery port 61P by the rotational operation about the shaft 84P as a fulcrum. The stapler 1P includes a pressing section 34P.sub.2 which opens the lid 83P of the cut staple storage unit 6P at the opening end of the discharge port 34P of the discharge passage 33P. When the cut staple storage unit 6P is attached to the stapler 1P, the discharge port 34P of the discharge passage 33P enters the recovery port 61P of the cut staple storage unit 6P, and the pressing section 34P.sub.2 projects downward from the shaft 84P of the lid 83P of the cut staple storage unit 6P. As a result, the lid 83P is pressed by the pressing section 34P.sub.2 by the operation of attaching the cut staple storage unit 6P to the stapler 1P, the recovery port 61P of the cut staple storage unit 6P is opened, and the lid 83P is held in the open state.
(463) <Example of Operational Effect of Stapler of Fourteenth Embodiment>
(464) In the stapler 1P according to the fourteenth embodiment, as illustrated in
(465) As illustrated in
(466) Therefore, the lid 83P of the recovery port 61P is opened by the operation of attaching the cut staple storage unit 6P to the stapler 1P, the lid 80P of the discharge port 34P is opened by the operation of binding the sheet with the staple, and the discharge passage 33P and the cut staple storage unit 6P communicate with each other.
(467) When the operation of binding the sheet with the staple is completed and the cam 51P rotates as illustrated in
(468) As a result, the lid 80P of the discharge port 34P and the lid 83P of the recovery port 61P are closed, and even if the cut staple remains in the discharge passage 33P, it is possible to suppress the staple from being discharged to the outside of the stapler 1P.
(469) <Modified Example of Stapler of Fourteenth Embodiment>
(470)
(471) The stapler 1P includes a lid 80P in the discharge port 34P of the discharge passage 33P. The lid 80P opens and closes the discharge port 34P by rotational operation about the shaft 81P as a fulcrum. The lid 80P includes a pressed section 82P.sub.1 on the other side of the shaft 81P. The operation of the cam 51P illustrated in
(472) <Example of Operational Effect of Stapler of Modified Example of Fourteenth Embodiment>
(473) In the stapler 1P according to the modified example of the fourteenth embodiment, the cut staple storage unit 6P is attached to the stapler 1P, and when the cam 51P rotates, as illustrated in
(474) Therefore, the lid 80P of the discharge port 34P is opened by the operation of binding the sheet with the staple, and the discharge passage 33P and the cut staple storage unit 6P communicate with each other.
(475) When the operation of binding the sheet with the staple is completed and the cam 51P rotates as illustrated in
(476) In the stapler 1P of the fourteenth embodiment, the lid 80P of the discharge port 34P can be brought into the closed state at the stage in which the cut staple storage unit 6P is attached to the stapler 1P. Thus, in a state in which the stapler 1P is moved to a home position illustrated in
(477) As a result, since the lid 80P of the discharge port 34P is closed at the stage of detaching the cut staple storage unit 6P from the stapler 1P moved to the home position, an occurrence of event of pinching the cut staple remaining in the discharge passage 33 by the lid 80P is suppressed. As a result, a gap is generated between the discharge port 34P and the lid 80P, so that it is possible to prevent the cut staple from unintentionally being discharged to the outside of the stapler 1P.
(478) Even in the configuration in which the recovery port 61P is provided with the lid 83P, and even the configuration in which the lid is not provided, it is preferable that the lid 80P of the discharge port 34P be closed except at the time of the binding operation. This is to prevent the cut staple from being unintentionally discharged from the discharge port 34P in a state in which the cut staple storage unit 6P is not attached to the stapler 1P.
(479) <Modified Example of Cut Staple Storage Unit>
(480)
(481)
(482)
(483) Therefore, a charging brush 88 is provided in each of the aforementioned cut staple storage units 6 (A to P). In the charging brush 88, a ground section 88a is in contact with the staplers 1 (A to P) and is grounded via the staplers 1 (A to N). In
(484)
(485) <Configuration Example of Post-Processing Apparatus of Present Embodiment>
(486)
(487) Therefore, as illustrated in
(488) As an example, when the first position Pp1 is set to the home position, the cut staple storage unit 6 is attached to and detached from the stapler 1 at the first position Pp1. In this case, the first position Pp1 also serves as an operation position for performing an operation of attaching/detaching the cut staple storage unit 6 to/from the stapler 1. As another example, when a position different from the first position Pp1 is set as a home position, attachment and detachment of the cut staple storage unit 6 to and from the stapler 1 is performed at the first position Pp1 as the operation position. Further, as another example, even if the first staple storage unit 6 may be attached to and detached from the stapler 1 with the first position Pp1 as the home position and with another position different from the first position Pp1 as the operation position. In this example, the home position is a position at which the stapler 1 stands by in preparation for the next job. The home position may be the same as and may be different from the manipulation position at which the attachment and detachment of the staple cartridge, and the attachment and detachment of the cut staple storage unit 6 are performed.
(489) Before the operation of binding the sheet with the stapler 1 is started, for example, when performing the operation of closing the lid 505 illustrated in
(490) As a result, even when the attachment of the cut staple storage unit 6 is insufficient, when the stapler 1 moves to the second position Pp2 in the initial operation, the cut staple storage unit 6 is pressed in the direction of the stapler 1 by the pressing guide 90A, and it is attached at the regular position. Therefore, even when there is an erroneous operation in which the cut staple storage unit 6 is not attached to the regular position, the cut staple storage unit 6 can be attached to the regular position in the initial operation before performing the binding operation. Therefore, it is possible to reliably store the cut staple in the cut staple storage unit 6.
(491)
(492) As illustrated in
(493)
(494) The regulating unit 92A is displaced by the rotational operation about the shaft 93A as a fulcrum. When the first position Pp1 is set to the home position of the stapler 1, if the cut staple storage unit 6 is attached to the regular position, as illustrated in
(495) As illustrated in
(496) Therefore, if the attachment of the cut staple storage unit 6 is insufficient or is not attached, when the lid 505A cannot be closed and there is an erroneous operation in which the cut staple storage unit 6 is not attached to the regular position, it is possible to prevent erroneous operation of the post-processing apparatus 502A.
(497)
(498)
(499) Thus, as illustrated in
(500) <Configuration Example of Stapler of First Embodiment for Detecting Cut Staple Full Load>
(501)
(502) As illustrated in
(503) The stapler 1Ra is provided with a sheet pinching unit 4R which pinches the sheet P between the staple ejecting unit 2R and the binding unit 3R. In the stapler 1Ra, the binding unit 3R moves in a direction in which the binding unit 3R comes into contact with and separates from the staple ejecting unit 2R by the rotational operation, and pinches and releases the sheet P by the sheet pinching unit 4R.
(504) The stapler 1Ra includes a cut unit 30R which cuts the staple leg 12A of the staple 10A penetrating the sheet P with a predetermined length, a cut staple storage unit 6R which stores the cut staple 13A cut by the cut unit 30R, and a discharge passage 33R (a discharge unit) which guides the cut staple 13A cut by the cut unit 30R to the cut staple storage unit 6R. In the stapler 1Ra, the feeding unit, the ejecting unit, the clincher unit, and the driving unit of the staple 10A are not illustrated, but the stapler 1Ra may have the same configuration as the stapler 1A of the first embodiment.
(505) The cut staple storage unit 6R is detachably attached to the stapler 1Ra. The cut staple storage unit 6R is detachably attached to the back surface of the staple ejecting unit 2R. The staple cartridge 100R is configured to be attachable to and detachable from the stapler 1Ra in a state in which the cut staple storage unit 6R is attached to the stapler 1Ra.
(506) The discharge passage 33R is provided in the binding unit 3R, communicates with the cut unit 30R, and communicates with the recovery port 61R of the cut staple storage unit 6R. As a result, the cut staple 13A passing from the cut unit 30R through the discharge passage 33R is stored in the cut staple storage unit 6R.
(507) The stapler 1Ra and the post-processing apparatus 502A include a cut staple quantity detection unit 94R. The cut staple quantity detection unit 94R is an example of the cut staple full load detection unit, and includes contact movable units 95Ra.sub.L and 95Ra.sub.R, sensors 96R.sub.L and 96R.sub.R for detecting the contact movable units 95Ra.sub.L and 95Ra.sub.R, and springs 97Ra.sub.L and 97Ra.sub.R for urging the contact movable units 95Ra.sub.L and 95Ra.sub.R.
(508) The contact movable unit 95Ra.sub.L protrudes to one recovery passage 60R.sub.L of the cut staple storage unit 6R from the side, and is provided so as to be movable in the vertical direction along the stacking direction of the cut staple 13A. The contact movable unit 95Ra.sub.L is pressed downward by the spring 97Ra.sub.L. The sensor 96R.sub.L detects whether or not the quantity of the cut staple 13A is full, by detecting the presence or absence of the contact movable unit 95Ra.sub.L. In this example, the sensor 96R.sub.L is located at a position of detecting the contact movable unit 95Ra.sub.L moved to the non-full load position.
(509) The contact movable unit 95Ra.sub.R projects laterally from the other recovery passage 60R.sub.R of the cut staple storage unit 6R, and is provided so as to be movable in the vertical direction along the stacking direction of the cut staple 13A. The contact movable unit 95Ra.sub.R is pressed downward by the spring 97Ra.sub.R. The sensor 96R detects whether or not the quantity of the cut staple 13A is full, by detecting the presence or absence of the contact movable unit 95Ra.sub.R. In this example, the sensor 96R is provided at a position of detecting the contact movable unit 95Ra.sub.R moved to the non-full load position.
(510) The operation of the cam 51R forming the driving unit for pinching the sheet, driving the staple, and clinching is transmitted via the link unit 53R.sub.L, and the contact movable unit 95Ra.sub.L is raised by the operation of the cam 51R. The operation of the cam 51R forming the driving unit for pinching the sheet, driving the staple, and clinching is transmitted via the link unit 53R.sub.R, and the contact movable unit 95Ra.sub.R is raised by the operation of the cam 51R.
(511) <Example of Operational Effect of Stapler of First Embodiment Performing Detection of Cut Staple Full Load Detection>
(512) In the stapler 1Ra, when the cam 51R is rotated by the operation of binding the sheet with the staple, the contact movable unit 95Ra.sub.L moves up and down by the operation of the link unit 53R.sub.L, and the contact movable unit 95Ra.sub.R moves up and down by the operation of the link unit 53R.sub.R.
(513) When the quantity of the cut staple 13A stored in the cut staple storage unit 6R is small, the contact movable unit 95Ra.sub.L is pressed downward by the spring 97Ra.sub.L, is moved to the non-full load detection position, and is detected by the sensor 96R.sub.L. The contact movable unit 95Ra.sub.R is pressed downward by a spring 97Ra.sub.R, is moved to the non-full load detection position, and is detected by the sensor 96R. Therefore, it is possible to detect that the quantity of the cut staple 13A is not full.
(514) When the quantity of the cut staple 13A stored in the cut staple storage unit 6R is full, the contact movable unit 95Ra.sub.L cannot descend to the non-full load detection position, stops at the raised position, and is not detected by the sensor 96R.sub.L. In addition, the contact movable unit 95Ra.sub.R cannot descend to the non-full load detection position, stops at the raised position and is not detected by the sensor 96R. Therefore, it is possible to detect that the quantity of the cut staple 13A is full. Upon detecting that the quantity of the cut staple 13A is full, the stapler 1Ra reports this situation to the post-processing apparatus 502A illustrated in
(515) In the post-processing apparatus 502A described with reference to
(516) By providing the sensors 96R.sub.L and 96R.sub.R in the post-processing apparatus 502A, unless the cut staple storage unit 6R is attached to the stapler 1Ra, the contact movable units 95Ra.sub.L and 95Ra.sub.R are not detected. This makes it possible to perform the full load detection of the cut staple, the presence or absence of the cut staple storage unit 6R, that is, the detection of attachment and detachment of the cut staple storage unit 6R by the same detection unit.
(517) <Modified Example of Stapler of First Embodiment for Detecting Cut Staple Full Load>
(518)
(519) Similarly to the stapler 1Ra, the stapler 1Rb of the modified example includes the staple ejecting unit 2R and the binding unit 3R, and has a sheet pinching unit 4R that pinches the sheet P between the staple ejecting unit 2R and the binding unit 3R.
(520) The stapler 1Rb includes a cut staple quantity detection unit 94R. The cut staple quantity detection unit 94R is an example of a cut staple full load detection unit, and includes contact movable units 95Rb.sub.L and 95Rb.sub.R, sensors 96R.sub.L and 96R.sub.R for detecting the contact movable units 95Rb.sub.L and 95Rb.sub.R, and springs 97Rb.sub.L and 97Rb.sub.R for urging the contact movable units 95Rb.sub.L and 95Rb.sub.R.
(521) The contact movable unit 95Rb.sub.L enters from the one recovery passages 60R.sub.L of the cut staple storage unit 6R from the recovery port 61R and protrudes from above, and is movable in the vertical direction along the stacking direction of the cut staple 13A. The contact movable unit 95Rb.sub.L is pressed downward by the spring 97Rb.sub.L. The sensor 96R.sub.L detects whether or not the quantity of the cut staple 13A is full by detecting the presence or absence of the contact movable unit 95Rb.sub.L. In this example, the sensor 96R.sub.L is provided at a position for detecting the contact movable unit 95Rb.sub.L that has moved to the non-full load position.
(522) The contact movable unit 95Rb.sub.R enters the other recovery passage 60R.sub.R of the cut staple storage unit 6R from the recovery port 61R, protrudes from the upper side, and is movable in the vertical direction along the stacking direction of the cut staple 13A. The contact movable unit 95Rb.sub.R is pressed downward by the spring 97Rb.sub.R. The sensor 96R detects whether or not the quantity of the cut staple 13A is full by detecting the presence or absence of the contact movable unit 95Rb.sub.R. In this example, the sensor 96R is provided at a position for detecting the contact movable unit 95Rb.sub.R that has moved to the non-full load position.
(523) The operation of the cam 51R constituting the driving unit for pinching the sheet, driving the staple, and clinching is transmitted to the contact movable unit 95Rb.sub.L via the link unit 53R.sub.L, and the contact movable unit 95Rb.sub.L is moved up and down by the operation of the cam 51R. The operation of the cam 51R constituting the driving unit for pinching the sheet, driving the staple, and clinching is transmitted to the contact movable unit 95Rb.sub.R via the link unit 53R.sub.R, and the contact movable unit 95Rb.sub.R is moved up and down by the operation of the cam 51R.
(524) <Example of Operational Effect of Stapler of Modified Example of First Embodiment for Detecting Cut Staple Full Load>
(525) In the stapler 1Rb, when the cam 51R is rotated by the operation of binding the sheet with the staple, the contact movable unit 95Rb.sub.L moves up and down by the operation of the link unit 53R.sub.L and the contact movable unit 95Rb.sub.R moves up and down by the operation of the link unit 53R.sub.R.
(526) When the quantity of the cut staple 13A stored in the cut staple storage unit 6R is small, the contact movable unit 95Rb.sub.L is pressed downward by the spring 97Rb.sub.L, is and moved to the non-full load detection position, and is detected by the sensor 96R.sub.L. Further, the contact movable unit 95Rb.sub.R is formed by a spring 97Rb.sub.R, is moved to the non-full load detection position, and is detected by the sensor 96R. Therefore, it is possible to detect that the quantity of the cut staple 13A is not full.
(527) When the quantity of the cut staple 13A stored in the cut staple storage unit 6R is full, the contact movable unit 95Rb.sub.L cannot descend to the non-full load detection position, stops at the raised position, and is not detected by the sensor 96R.sub.L. Further, the contact movable unit 95Rb.sub.R cannot descend to the non-full load detection position, stops at the raised position, and is not detected by the sensor 96R. Therefore, it is possible to detect that the quantity of the cut staple 13A is full.
(528) In the post-processing apparatus 502A described with reference to
(529) <Another Modified Example of Stapler According to First Embodiment Performing Cut Staple Full Load Detection>
(530)
(531) Similarly to the stapler 1Ra, the stapler 1Rc of another modified example includes a staple ejecting unit 2R and a binding unit 3R, and a sheet pinching unit 4R which pinches the sheet P between the staple ejecting unit 2R and the binding unit 3R.
(532) The stapler 1Rc includes a cut staple quantity detection unit 94R. The cut staple quantity detection unit 94R is an example of a cut staple full load detection unit, and includes contact movable units 95Rc.sub.L and 95Rc.sub.R, sensors 96R.sub.L and 96R.sub.R for detecting the contact movable units 95Rc.sub.L and 95Rc.sub.R, links 98Rc.sub.L and 98Rc.sub.R for displacing the contact movable units 95Rc.sub.L and 95Rc.sub.R, and springs 97Rc.sub.L and 97Rc.sub.R for urging the contact movable units 95Rc.sub.L and 95Rc.sub.R via the links 98Rc.sub.L and 98Rc.sub.R.
(533) The contact movable unit 95Rc.sub.L protrudes from the side to from the one recovery passage 60R.sub.L of the cut staple storage unit 6R and is movable in the front-rear direction. The link 98Rc.sub.L rotates around the shaft 99Rc.sub.L as a fulcrum, and moves the contact movable unit 95Rc.sub.L in the front-rear direction. The contact movable unit 95Rc.sub.L is pushed rearward by the spring 97Rc.sub.L via the link 98Rc.sub.L. The sensor 96R.sub.L detects whether or not the quantity of the cut staple 13A is full, by detecting the presence or absence of the contact movable unit 95Rc.sub.L. In this example, the sensor 96R.sub.L is provided at a position which detects the contact movable unit 95Rc.sub.L that has moved to the non-full load position.
(534) The contact movable unit 95Rc.sub.R protrudes from the side of the other recovery passage 60R.sub.R of the cut staple storage unit 6R and is movable in the front-rear direction. The link 98Rc.sub.R rotates about the shaft 99Rc.sub.R as a fulcrum, and moves the contact movable unit 95Rc.sub.R in the front-rear direction. The contact movable unit 95Rc.sub.R is pressed rearward by the spring 97Rc.sub.R via the link 98Rc.sub.R. The sensor 96R detects whether or not the quantity of the cut staple 13A is full, by detecting the presence or absence of the contact movable unit 95Rc.sub.R. In this example, the sensor 96R detects the contact movable unit 95Rc.sub.R that has moved to the non-full load position.
(535) The operation of the cam 51R constituting the driving unit for pinching the sheet, driving the staple, and clinching is transmitted to the contact movable unit 95Rc.sub.L via the link unit 53R.sub.L and the link 98Rc.sub.L, and the contact movable unit 95Rc.sub.L is moved forward and backward by the operation of the cam 51R. That is, when the link 98Rc.sub.L is rotated by the cam 51R and the link unit 53R.sub.L, the contact movable unit 95Rc.sub.L moves by being pressed forward by the spring 100R.sub.L. The spring force of the spring 97Rc.sub.L is provided to be larger than the spring force of the spring 100R.sub.L. When the cam 51R returns to the standby position, the contact movable unit 95Rc.sub.L stands by in the rear part by the spring force of the spring 100R.sub.L. The operation of the cam 51R constituting the driving unit for pinching the sheet, driving up the staple, and clinching is transmitted to the contact movable unit 95Rc.sub.R via the link unit 53R.sub.R and the link 98Rc.sub.R, and the contact movable unit 95Rc.sub.R moves backward and forward by the operation of the cam 51R. That is, when the link 98Rc.sub.R is rotated by the cam 51R and the link unit 53R.sub.R, the contact movable unit 95Rc.sub.R moves by being is pressed forward by the spring 100R.sub.R. The spring force of the spring 97Rc.sub.R is provided to be larger than the spring force of the spring 100R.sub.R. When the cam 51R returns to the standby position, the contact movable unit 95Rc.sub.R stands by in the rear part by the spring force of the spring 100R.sub.R.
(536) <Example of Operational Effect of Stapler of Another Modified Example of First Embodiment that Performs Cut Staple Full Load Detection>
(537) In the stapler 1RC, when the cam 51R rotates in the operation of binding the sheet with the staple, the contact movable unit 95Rc.sub.L moves in the front-rear direction, and the contact movable unit 95Rc.sub.R moves in the front-rear direction by the operation of the link unit 53R.sub.R.
(538) When the quantity of the cut staple 13A stored in the cut staple storage unit 6R is small, the contact movable unit 95Rc.sub.L is pressed rearward by the spring 97Rc.sub.L, is moved to the non-full load detection position, and is detected by the sensor 96R.sub.L.
(539) The contact movable portion 95Rc.sub.R is pressed rearward by the spring 97Rc.sub.R, is moved to the non-full load detection position, and is detected by the sensor 96R. Therefore, it is possible to detect that the quantity of the cut staple 13A is not full.
(540) When the quantity of the cut staple 13A stored in the cut staple storage unit 6R is full, the contact movable unit 95Rc.sub.L cannot move to the non-full load detection position, stops at the position moved forward, and is not detected by the sensor 96R.sub.L. Further, the contact movable unit 95Rc.sub.R cannot move to the non-full load detection position, stops at the position moved forward, and is not detected by the sensor 96R. Therefore, it is possible to detect that the quantity of the cut staple 13A is full.
(541) In the post-processing apparatus 502A described with reference to
(542) <Configuration Example of Stapler of Second Embodiment for Detecting Cut Staple Full Load>
(543)
(544) Like the stapler 1Ra, the stapler 1Rd includes a staple ejecting unit 2R, a binding unit 3R, and a sheet pinching unit 4R which pinches the sheet P between the staple ejecting unit 2R and the binding unit 3R.
(545) The stapler 1Rd includes a cut staple quantity detection unit 94R. The cut staple quantity detection unit 94R is an example of the cut staple full load detection unit, and includes contact movable units 95Rd.sub.L and 95Rd.sub.R, a sensor 96R.sub.L for detecting the contact movable unit 95Rd.sub.L, links 98Rd.sub.L and 98Rd.sub.R for displacing the contact movable units 95Rd.sub.L and 95Rd.sub.R, and springs 97Rd.sub.L and 97Rd.sub.R for biasing the movable contact portions 95Rd.sub.L and 95Rd.sub.R.
(546) The contact movable unit 95Rd.sub.L protrudes from the side to from the one recovery passage 60R.sub.L of the cut staple storage unit 6R and is provided so as to be movable in the vertical direction along the stacking direction of the cut staple 13A. The link 98Rd.sub.L rotates about the shaft 99Rd.sub.L as a fulcrum, and moves the contact movable unit 95Rd.sub.L in the vertical direction. The contact movable unit 95Rd.sub.L is pressed downward by the spring 97Rd.sub.L. The sensor 96R.sub.L detects whether or not the quantity of the cut staple 13A is full by detecting the presence or absence of the contact movable unit 95Rd.sub.L. In this example, the sensor 96R.sub.L is provided at a position for detecting the contact movable unit 95Rd.sub.L moved to the non-full load position.
(547) The contact movable unit 95Rd.sub.R protrudes from the side to from the other recovery passage 60R.sub.R of the cut staple storage unit 6R and is movable in the vertical direction along the stacking direction of the cut staple 13A. The link 98Rd.sub.R rotates about the shaft 99Rd.sub.R as a fulcrum, and moves the contact movable unit 95Rd.sub.R in the vertical direction. The contact movable unit 95Rd.sub.R is pressed downward by the spring 97Rd.sub.R.
(548) The operation of the cam 51R constituting the driving unit for pinching the sheet, driving the staple, and clinching is transmitted to the contact movable unit 95Rd.sub.L via the link unit 53R.sub.L and the link 98Rd.sub.L, and the contact movable unit 95Rd.sub.L moves upward and downward by the operation of the cam 51R. The operation of the cam 51R constituting the driving unit for pinching the sheet, ejecting the staple, and clinching is transmitted to the contact movable unit 95Rd.sub.R via the link unit 53R.sub.R and the link 98Rd.sub.R, and moves upward and downward by the operation of the cam 51R. The link 98Rd.sub.L and the link 98Rd.sub.R are connected and linked by a shaft 98R.sub.1.
(549) <Example of Operational Effect of Stapler of Second Embodiment that Performs the Cut Staple Full Load Detection>
(550) In the stapler 1Rd, when the quantity of the cut staple 13A stored in the cut staple storage unit 6R is small, the contact movable unit 95Rd.sub.L is pressed downward by the spring 97Rd.sub.L, is moved to the non-full load detection position and is detected by the sensor 96R.sub.L. Further, since the link 98Rd.sub.L and the link 98Rd.sub.R are linked with each other by the shaft 98R.sub.1, the contact movable unit 95Rd.sub.R is pressed downward by the spring 97Rd.sub.R, and moves to the non-full load detection position. Therefore, it is possible to detect that the quantity of the cut staple 13A is not full.
(551) When the cam 51R is rotated by the operation of binding the sheet with the staple, as illustrated in
(552) When the cam 51R is further rotated by the operation of binding the sheet with the staple, if the quantity of the cut staple 13A stored in the cut staple storage unit 6R is full, as illustrated in
(553) In the post-processing apparatus 502A described with reference to
(554) In contrast, the loading height of the cut staple 13A decreases on the recovery passage 60R.sub.L side of the cut staple storage unit 6R. However, since the link 98Rd.sub.L and the link 98Rd.sub.R are connected and linked by the shaft 98R.sub.1, irrespective of the loading height of the cut staple 13A, the contact movable unit 95Rd.sub.L stops at the position moved upward without moving to the non-full load detection position, and is not detected by the sensor 96R.sub.L. This makes it possible to accurately detect whether or not the quantity of the cut staple 13A is full by a single sensor, regardless of the direction of the inclination of the stapler 1Rd.
(555) <Modified Example of Stapler of Second Embodiment for Detecting Cut Staple Full Load>
(556)
(557) Like the stapler 1Ra, the stapler 1Re includes a staple ejecting unit 2R and a binding unit 3R, and a sheet pinching unit 4R which pinches the sheet P between the staple ejecting unit 2R and the binding unit 3R.
(558) The stapler 1Rd includes a cut staple quantity detection unit 94R. The cut staple quantity detection unit 94R is an example of the cut staple full load detection unit, and includes contact movable units 95Re.sub.L and 95Re.sub.R, a sensor 96R.sub.L for detecting the contact movable unit 95Re.sub.L, links 98Re.sub.L and 98Re.sub.R for displacing the contact movable units 95Re.sub.L and 95Re.sub.R, and Springs 97Re.sub.L and 97Re.sub.R for biasing the contact movable units 95Re.sub.L and 95Re.sub.R via the links 98Re.sub.L and 98Re.sub.R.
(559) The contact movable unit 95Re.sub.L protrudes from the side to from one recovery passage 60R.sub.L of the cut staple storage unit 6R and is movable in the front-rear direction. The link 98R.sub.L rotates about the shaft 99Re.sub.L as a fulcrum, and moves the contact movable unit 95Re.sub.L in the front-rear direction. The contact movable unit 95Re.sub.L is pressed rearward by the spring 97Re.sub.L via the link 98Re.sub.L. The sensor 96R.sub.L detects whether or not the quantity of the cut staple 13A is full, by detecting the presence or absence of the contact movable unit 95Re.sub.L. In this example, the sensor 96R.sub.L is provided at a position that detects the contact movable unit 95Re.sub.L moved to the non-full load position.
(560) The contact movable unit 95Re.sub.R protrudes from the side to the other recovery passage 60R.sub.R of the cut staple storage unit 6R and is movable in the front-rear direction. The link 98Re.sub.R rotates about the shaft 99Re.sub.R as a fulcrum, and moves the contact movable unit 95Re.sub.R in the front-rear direction. The contact movable unit 95Re.sub.R is pressed rearward by the spring 97Re.sub.R via the link 98Re.sub.R.
(561) The operation of the cam 51R constituting the driving unit for pinching the sheet, ejecting the staple, and clinching is transmitted to the contact movable unit 95Re.sub.L via the link unit 53R.sub.L and the link 98Re.sub.L, and moves forward and backward by the operation of the cam 51R. That is, when the link 98Re.sub.L is rotated by the cam 51R and the link unit 53R.sub.L, the contact movable unit 95Re.sub.L moves by being pressed forward by the spring 100R.sub.L. The spring force of the spring 97Re.sub.L is larger than the spring force of the spring 100R.sub.L. When the cam 51R returns to the standby position, the contact movable unit 95Re.sub.L stands at the rear by the spring force of the spring 100R.sub.L. Further, the operation of the cam 51R constituting the drive unit for pinching the sheet, ejecting the staple and clinching is transmitted to the contact movable unit 95Re.sub.R via the link unit 53R.sub.R and the link 98Re.sub.R, and moves back and forth by the operation of the cam 51R. That is, when the link 98Re.sub.R is rotated by the cam 51R and the link unit 53R.sub.R, the contact movable unit 95Re.sub.R moves forward by being pressed forward by the spring 100R.sub.R. The spring force of the spring 97Re.sub.R is larger than the spring force of the spring 100R.sub.R. When the cam 51R returns to the standby position, the contact movable unit 95Re.sub.R stands by in the rear by the spring force of the spring 100R.sub.R. The link 98Re.sub.L and the link 98Re.sub.R are connected and linked with each other by the shaft 98R.sub.1.
(562) <Example of Operational Effect of Stapler of Modified Example of Second Embodiment for Detecting Full Cut Staple Load Detection>
(563) In the stapler 1Re, when the quantity of the cut staple 13A stored in the cut staple storage unit 6R is small, the contact movable unit 95Re.sub.L is pressed rearward by the spring 97Re.sub.L via the link 98Re.sub.L, moves to the non-full load detection position, and is detected by the sensor 96R.sub.L. Since the link 98Re.sub.L and the link 98Re.sub.R are connected and linked by the shaft 98R.sub.1, the contact movable unit 95Re.sub.R is pressed rearward by the spring 97Re.sub.R via the link 98Re.sub.R and moves to the non-full load detection position. Therefore, it is possible to detect that the quantity of the cut staple 13A is not full.
(564) When the cam 51R is rotated by the operation of binding the sheet with the staple, as illustrated in
(565) When the cam 51R is further rotated by the operation of binding the sheet with the staple, if the quantity of the cut staple 13A stored in the cut staple storage unit 6R is full, as illustrated in
(566) In the post-processing apparatus 502A described with reference to
(567) In contrast, the loading height of the cut staple 13A decreases on the recovery passage 60R.sub.L side of the cut staple storage unit 6R. However, the link 98Re.sub.L and the link 98Re.sub.R are connected and linked by the shaft 98R.sub.1. Therefore, irrespective of the loading height of the cut staple 13A, the contact movable unit 95Re.sub.L stops at a position moved forward without moving to the non-full load detection position, and is not detected by the sensor 96R.sub.L. This makes it possible to accurately detect whether or not the quantity of cut staples 13A is full by a single sensor, regardless of the direction of inclination of the stapler 1Re.
(568) <Example of Structure of Stapler of Another Embodiment for Detecting Cut Staple Full Load>
(569)
(570) In an example of
(571)
(572) In the example of
(573) In the example of
(574) In the example of
(575) In the example of
(576) In the example of
(577) In the example of
(578)
(579) Therefore, when the stapler 1 is at a specific position, the full load detection is performed. In this example, the lock portion 6Rm.sub.1 For regulating the lifting and lowering of the cut staple storage unit 6R and releasing the regulation, an induction unit 6Rm.sub.2 for operating the lock unit 6Rm.sub.1, and a guide unit 6Rm.sub.3 for operating the induction unit 6Rm.sub.2.
(580) When the stapler 1 moves to the home position HP, the induction unit 6Rm.sub.2 is pushed up by the shape of the guide unit 6Rm.sub.3 to release the regulation of ascending and descending at the locking unit 6Rm.sub.1 of the cut staple storage unit 6R as illustrated in
(581) When the stapler 1 moves to a predetermined binding position, in this example, the first position Pp1, the induction unit 6Rm.sub.2 descends due to the shape of the guide unit 6Rm.sub.3, and as illustrated in
(582)
(583) In the example of
(584)
(585) Therefore, in the example of
(586) As illustrated in
(587)
(588)
(589)
(590) <Example of Configuration of Stapler of Embodiment that Detects Full Load of Cut Staple by Optical Sensor>
(591) Next, an embodiment of a stapler for detecting full load of a cut staple with an optical sensor will be described.
(592) <Optical Waveguide; Configuration Example Using Prism>
(593)
(594) In the stapler of each embodiment described below, the configuration other than the cut staple quantity detection unit is the same as that of the stapler 1Ra illustrated in
(595) The stapler 1Rf.sub.1 is provided with a sheet pinching unit 4R which pinches the sheet P between the staple ejecting unit 2R and the binding unit 3R. When the binding unit 3R moves in a direction in which the binding unit 3R comes into contact with and separates from the staple ejecting unit 2R with the shaft 32R as a fulcrum by the rotational operation, the stapler 1Rf.sub.1 pinches and releases the sheet P with the sheet pinching unit 4R.
(596) The stapler 1Rf.sub.1 includes a cut staple storage unit 6Rf.sub.1 that stores the cut staple 13A illustrated in
(597) In the discharge path 33R, in this example, a single discharge path 33R communicating with the cut section 30R is divided into two discharge paths 33R.sub.L and 33R.sub.R so as not to block the attachment/detachment path of the staple cartridge 100 attached to the stapler 1Rf.sub.1, and is disposed on both left and right sides of the storage unit 20R to which the staple cartridge 100A is attached.
(598) The cut staple storage unit 6Rf.sub.1 is detachably attached to the back surface of the stapler 1Rf.sub.1. The cut staple storage unit 6Rf.sub.1 has two recovery passages 60R.sub.L and 60R.sub.R, and when attached to the stapler 1Rf.sub.1, the two recovery passages 60R.sub.L and 60R.sub.R are arranged on the left and right sides behind the storage unit 20R. Thus, the staple cartridge 100A is configured to be attachable to and detachable from the stapler 1Rf.sub.1 in a state in which the cut staple storage unit 6Rf.sub.1 is attached to the stapler 1Rf.sub.1.
(599) In the stapler 1Rf.sub.1, the discharge port 34R.sub.L of one discharge passage 33R.sub.L and the recovery port 61R.sub.L of one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.1 communicate with each other, and the discharge port 34R.sub.R of the other discharge passage 33R.sub.R and the discharge port 34R.sub.R of the cut staple storage unit 6Rf.sub.1 communicates with the recovery port 61R.sub.R of the other recovery passage 60R.sub.R.
(600) As a result, a cut staple passing through one discharge passages 33R.sub.L from the cut unit 30R is stored in the cut staple storage unit 6Rf.sub.1 through the recovery passage 60R.sub.L from the recovery port 61R.sub.L. In addition, the cut staple passing through the other discharge passage 33R.sub.R from the cut unit 30R is stored in the cut staple storage unit 6Rf.sub.1 through the recovery passage 61R.sub.R from the recovery passage 60R.sub.R.
(601) The stapler 1Rf.sub.1 and the cut staple storage unit 6Rf.sub.1 include an optical cut staple quantity detection unit 210R.sub.1 that detects the presence or absence of a predetermined quantity of a cut staple stored in the cut staple storage unit 6Rf.sub.1, using the presence or absence of light transmission. The cut staple quantity detection unit 210R.sub.1 is an example of a cut staple full load detection unit, and includes a light emitting unit 211R.sub.1 that emits light, and a light receiving unit 212.sub.R that detects light emitted from the light emitting unit 211R.sub.1. Further, the cut staple quantity detection unit 210R.sub.1 includes an optical waveguide 213R.sub.1 that guides the light emitted from the light emitting unit 211R.sub.1 to the light receiving unit 212R.sub.1 on a predetermined optical path.
(602) In the cut staple quantity detection unit 210R.sub.1, the light emitting unit 211R.sub.1 and the light receiving unit 212R.sub.1 are provided in the stapler 1Rf.sub.1. Further, in the cut staple quantity detection unit 210R.sub.1, the optical waveguide 213R.sub.1 is provided in the cut staple storage unit 6Rf.sub.1.
(603) The cut staple storage unit 6Rf.sub.1 includes a window 600.sub.L in one recovery passage 60R.sub.L, and a window 600.sub.R in the other recovery passage 60R.sub.R. The window 600.sub.L and the window 600.sub.R are made of; for example, a transparent material through which light emitted from the light source is transmitted. The cut staple storage unit 6Rf.sub.1 is provided with a pair of windows 600.sub.L on a wall surface opposed in the front-rear direction of the recovery route 60R.sub.L, and a pair of windows 600.sub.R are provided on wall surfaces opposed to the front-rear direction of the recovery passage 60R.sub.R.
(604) In the following description of each embodiment, the light emitting unit 211R.sub.(1 to n) and the light receiving unit 212R.sub.(1 to n) are an example of an optical sensor made up of a pair of light emitting and receiving units, and the light emitting unit and the light receiving unit may be configured independently, or may be unitized. The light emitting unit 211R.sub.1 and the light receiving unit 212R.sub.1 are independent configurations.
(605) The light emitting unit 211R.sub.1 is made up of a light emitting element such as a laser and a light emitting diode, and is provided on the back surface of the stapler 1Rf1 with the light emitting direction facing the back of the stapler 1Rf.sub.1. When the cut staple storage unit 6Rf.sub.1 is attached to the stapler 1Rf.sub.1, the light emitting unit 211R.sub.1 is provided at a position opposed to the window 600L provided in the one recovery passage 60RL.
(606) The light receiving unit 212R.sub.1 is constituted by a light receiving element such as a photodiode and is provided on the back surface of the stapler 1Rf1 with the incidence direction of the light facing the back of the stapler 1Rf.sub.1. When the cut staple storage unit 6Rf.sub.1 is attached to the stapler 1Rf.sub.1, the light receiving unit 212R.sub.1 is provided at a position facing the window 600.sub.R provided in the other recovery passage 60R.sub.R.
(607) As a result, the light emitted from the light emitting unit 211R.sub.1 passes through the window 600.sub.L and an optical path passing through the inside of the one recovery passage 60R.sub.L is formed, by the window 600.sub.L provided on the one recovery passage 60R.sub.L. Further, by the window 600.sub.R provided in the other recovery passage 60R.sub.R, an optical path is formed in which light passing through the inside of the other recovery passage 60R.sub.R by passing through the window 600.sub.R is incident on the light receiving unit 212R.sub.1.
(608) The optical waveguide 213R.sub.1 includes a prism 214R.sub.1, and a cover 215R.sub.1 that covers the prism 214R.sub.1. The prism 214R.sub.1 includes a first reflection surface 214R.sub.L opposed to the window 600.sub.L of one recovery passage 60R.sub.L, a second reflection surface 214R.sub.R opposed to the window 600.sub.R of the other recovery passage 60R.sub.R, and a light guide unit 214R.sub.C which guides light between the first reflection surface 214R.sub.L and the second reflection surface 214R.sub.R.
(609) As a result, the optical waveguide 213R.sub.1 forms an optical path which allows the light emitted from the light emitting unit 211.sub.R to enter the light receiving unit 212.sub.R through one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(610) In the cut staple quantity detection unit 210R.sub.1, when a quantity of cut staples reaching the window 600.sub.L of one recovery passage 60R.sub.L and the window 600.sub.R of the other recovery passage 60R.sub.R is not stored in the cut staple storage unit 6Rf.sub.1, the light emitted from the light emitting unit 211R.sub.1 is incident on the light receiving unit 212R.sub.1 through the one recovery passage 60R.sub.L, the optical waveguide 213R.sub.1, and the other recovery passage 60R.sub.R.
(611) In contrast, in the cut staple quantity detection unit 210R.sub.1, when the cut staple of a quantity that reaches one of the window 600.sub.L of the one recovery passage 60R.sub.L or the window 600.sub.R of the other recovery passage 60R.sub.R is stored in the cut staple storage unit 6Rf.sub.1, the optical path of the light emitted from the light emitting unit 211R.sub.1 is blocked by the cut staple and light is not incident on the light receiving unit 212R.sub.1.
(612) Accordingly, the position where the window 600.sub.L and the window 600.sub.R are provided becomes the full load detection position of the cut staple in the cut staple quantity detection portion 210R.sub.1. Further, the cut staple quantity detection unit 210R.sub.1 detects whether light emitted from the light emitting unit 211R.sub.1 is incident on the light receiving unit 212R.sub.1, and detects whether or not the quantity of the cut staple is full.
(613) Next, an example of operational effect of the cut staple quantity detection unit 210R.sub.1 will be described. In the cut staple quantity detection unit 210R.sub.1, in the case where the cut staple storage of a quantity enough to reach the full load detection position of one recovery passage 60R.sub.L and the full load detection position of the other recovery passage 60R.sub.R is not stored in the cut staple storage unit 6Rf.sub.1, the light emitted from the light emitting unit 211R.sub.1 is incident on the light receiving unit 212.sub.R through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(614) That is, the light emitted from the light emitting unit 211R.sub.1 passes through the window 600.sub.L and passes through the one recovery passage 60R.sub.L, and is incident on the prism 214R.sub.1. The light incident on the prism 214R.sub.L is reflected by the first reflection surface 214R.sub.L, passes through the light guide unit 214 R.sub.C, is reflected by the second reflection surface 214R.sub.R, and is emitted from the prism 214R.sub.1. The light emitted from the prism 214R.sub.1 passes through the window 600.sub.R, passes through the other recovery passage 60R.sub.R, and is incident on the light receiving unit 212R.sub.1.
(615) In contrast, when the cut staple storage unit 6Rf.sub.1 stores a cut staple in an quantity that reaches one of the full load detection position of the one recovery route 60R.sub.L or the full load detection position of the other recovery route 60R.sub.R, the light emitting unit 211R.sub.1 is blocked by the cut staple and does not enter the light receiving unit 212R.sub.1.
(616) As a result, the cut staple quantity detection unit 210R.sub.1 detects that the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.1 is not full by the light emitted from the light emitting unit 211R.sub.1 being detected by the light receiving unit 212R.sub.1. Further, when the light emitted from the light emitting unit 211R.sub.1 is not detected by the light receiving unit 212R.sub.1, the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.1 is detected to be full. Upon detecting that the quantity of the cut staple is full, the stapler 1Rf.sub.1 notifies this detection to the post-processing apparatus 502A described with reference to
(617) In the case where the stapler 1Rf.sub.1 is applied to the post-processing apparatus 502A illustrated in
(618) Therefore, in the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R, on the side where the loading height of the cut staple is high, the optical path passing through the window is shielded by the cut staple, and the light emitted from the light emitting unit 211R.sub.1 is not detected by the light receiving unit 212R.sub.1, it is detected that the quantity of cut staples stored in the cut staple storage unit 6Rf1 is full. Therefore, even when the stapler 1Rf1 is inclined, it is possible to accurately detect whether or not the quantity of the cut staple is full.
(619) Further, by providing the light emitting unit 211R.sub.1 and the light receiving unit 212R.sub.1 in the stapler 1Rf.sub.1 and by providing the optical waveguide 213R.sub.1 in the cut staple storage unit 6Rf.sub.1, when the cut staple storage unit 6Rf.sub.1 is not attached to the stapler 1Rf.sub.1, an optical path is not formed between the light emitting unit 211R.sub.1 and the light receiving unit 212R.sub.1, and the light emitted from the light emitting unit 211R.sub.1 is not detected by the light receiving unit 212R.sub.1. This makes it possible to perform the full load detection of the cut staple and detection of the presence or absence of the cut staple storage unit 6Rf.sub.1, that is, detection of attachment/detachment of the cut staple storage unit 6Rf1 by the same detection unit.
(620) <Optical Waveguide; Modified Example Using Prism>
(621)
(622) The stapler 1Rf.sub.2 and the cut staple storage unit 6Rf.sub.2 include an optical cut staple quantity detection unit 210R.sub.2 that detects the presence or absence of a predetermined quantity of a cut staple stored in the cut staple storage unit 6Rf.sub.2, using the presence or absence of light transmission. The cut staple quantity detection unit 210R.sub.2 is an example of a cut staple full load detection unit, and includes a light emitting unit 211R.sub.2 that emits light, and a light receiving unit 212R.sub.2 that detects light emitted from the light emitting unit 211R.sub.2. Further, the cut staple quantity detection unit 210R.sub.2 includes an optical waveguide 213R.sub.2 that guides the light emitted from the light emitting unit 211R.sub.2 to the light receiving unit 212R.sub.2 on a predetermined optical path.
(623) In the cut staple quantity detection unit 210R.sub.2, the light emitting unit 211R.sub.2 and the light receiving unit 212R.sub.2 are provided in the stapler 1Rf.sub.2. Further, the cut staple quantity detection unit 210R.sub.2 is provided with the optical waveguide 213R.sub.2 in the cut staple storage unit 6Rf.sub.2.
(624) The cut staple storage unit 6Rf.sub.2 has a window 600.sub.L in one recovery passage 60R.sub.L and a window 600.sub.R in the other recovery passage 60R.sub.R. When the cut staple storage unit 6Rf.sub.2 is attached to the stapler 1Rf.sub.2, the light emitting unit 211R.sub.2 is provided at a position opposed to the window 600.sub.L provided on the one recovery passage 60R.sub.L. When the cut staple storage unit 6Rf.sub.2 is attached to the stapler 1Rf.sub.2, the light receiving unit 212R.sub.2 is provided at a position opposed to the window 600.sub.R provided in the other recovery passage 60R.sub.R.
(625) The optical waveguide 213R.sub.2 includes a prism 214R.sub.2 and a cover 215R.sub.2 that covers the prism 214R.sub.2. The prism 214R.sub.2 includes a first reflection surface 217R.sub.L opposed to the window 600.sub.L of one recovery passage 60R.sub.L, and a first light guide unit 218R.sub.L which that guides the light reflected by the first reflection surface 217R.sub.L. The first light guide unit 218R.sub.L extends along the one recovery passage 60R.sub.L.
(626) The prism 214R.sub.2 includes a second reflection surface 219R.sub.L for reflecting the light guided by the second light guide unit 218R.sub.L, a second light guide unit 218R.sub.C that guides the light reflected by the second reflection surface 219R.sub.L, and a third reflection surface 219R.sub.R that reflects the light guided by the second light guide unit 218R.sub.C. The second light guide unit 218R.sub.C extends in a direction of connecting the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(627) Further, the prism 214R.sub.2 includes a third light guide unit 218R.sub.R which guides the light reflected by the third reflection surface 219R.sub.R. The third light guide unit 218R.sub.R is disposed along the other recovery passage 60R.sub.R. The prism 214R.sub.2 includes a fourth reflection surface 217R.sub.R which faces the window 600.sub.R of the other recovery passage 60R.sub.R and reflects the light guided by the third light guide unit 218R.sub.R.
(628) Therefore, the optical waveguide 213R.sub.2 forms an optical path that allows the light emitted from the light emitting unit 211R.sub.2 to enter the light receiving unit 212R.sub.2 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(629) Next, an example of operational effect of the cut staple quantity detection unit 210R.sub.2 will be described. When the cut staple storage unit 6Rf.sub.2 does not store the cut staple of the quantity that reaches the full staple detection position of one recovery passage 60R.sub.L and the full load detection position of the other recovery passage 60R.sub.R, in the cut staple quantity detection unit 210R.sub.2, the light emitted from the light emitting unit 211R.sub.2 is incident on the light receiving unit 212R.sub.2 through one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(630) That is, the light emitted from the light emitting portion 211R.sub.2 passes through the window portion 600.sub.L, passes through one recovery passage 60R.sub.L, and is incident on the prism 214R.sub.2. The light incident on the prism 214R.sub.2 is reflected by the first reflection surface 217R.sub.L, passes through the first light guide unit 218R.sub.L and is reflected by the second reflection surface 219R.sub.L. The light reflected by the second reflection surface 219R.sub.L passes through the second light guide unit 218R.sub.C and is reflected by the third reflection surface 219R.sub.R. The light reflected by the third reflection surface 219R.sub.R passes through the third light guide unit 218R.sub.R, is reflected by the fourth reflection surface 217R.sub.R, and exits from the prism 214R.sub.2. The light emitted from the prism 214R.sub.2 passes through the window 600.sub.R, passes through the other recovery passage 60R.sub.R, and is incident on the light receiving unit 212R.sub.2.
(631) In contrast, when the cut staple storage unit 6Rf.sub.2 stores a cut staple of a quantity that reaches one of the full load detection position of one recovery passage 60R.sub.L or the full load detection position of the other recovery passage 60R.sub.R, the optical path of light emitted from the light emitting unit 211R.sub.2 is blocked by the cut staple and is not incident on the light receiving unit 212R.sub.2.
(632) As a result, in the cut staple quantity detection unit 210R.sub.2, light emitted from the light emitting unit 211R.sub.2 is detected by the light receiving unit 212R.sub.2, so that the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.2 is detected not to be full. In addition, when the light emitted from the light emitting unit 211R.sub.2 is not detected by the light receiving unit 212R.sub.2, the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.2 is detected to be full.
(633) In the cut staple quantity detection unit 210R.sub.2, without raising the position of the second light guide section 218R.sub.C extending between the first recovery passage 60.sub.L and the second recovery passage 60R, it is possible to raise the positions of the first reflection surface 217R.sub.L opposed to the light emitting unit 211R.sub.2 and the second reflection surface 217R.sub.R opposed to the light receiving unit 212R.sub.2. Therefore, by raising the cut staple detection position of the window 600.sub.L and the window 600.sub.R, it is possible to increase the quantity of full load detection.
(634)
(635) The stapler 1Rf.sub.3 and the cut staple storage unit 6Rf.sub.3 include an optical cut staple quantity detection unit 210R.sub.3 that detects the presence or absence of a predetermined quantity of a cut staple stored in the cut staple storage unit 6Rf.sub.3, using the presence or absence of light transmission. The cut staple quantity detection unit 210R.sub.3 is an example of a cut staple full load detection unit, and includes a light emitting unit 211R.sub.3 that emits light, and a light receiving unit 212R.sub.3 that detects light emitted from the light emitting unit 211R.sub.3. Further, the cut staple quantity detection unit 210R.sub.3 includes an optical waveguide 213R.sub.3 that guides the light emitted from the light emitting unit 211R.sub.3 to the light receiving unit 212R.sub.3 on a predetermined optical path.
(636) In the cut staple quantity detection unit 210R.sub.3, the light emitting unit 211R.sub.3 and the light receiving unit 212R.sub.3 are provided in the stapler 1Rf.sub.3. Further, the cut staple quantity detection unit 210R.sub.3 is provided with the optical waveguide 213R.sub.3 in the cut staple storage unit 6Rf.sub.3.
(637) The cut staple storage unit 6Rf.sub.3 includes a window 600.sub.L in one recovery passage 60R.sub.L and a window 600.sub.R in the other recovery passage 60R.sub.R. The cut staple storage unit 6Rf.sub.3 is provided with a pair of windows 600.sub.L on the wall surface opposed in the left-right direction of the recovery route 60R.sub.L, and a pair of windows 600.sub.R are provided on the wall surface opposed in the left-right direction of the recovery passage 60R.sub.R.
(638) The light emitting unit 211R.sub.3 is provided on the back surface of the stapler 1Rf.sub.3 with the light emitting direction facing the lateral inside of the stapler 1Rf.sub.3. Further, when the cut staple storage unit 6Rf.sub.3 is attached to the stapler 1Rf.sub.3, the light emitting unit 211R.sub.3 is provided at a position facing the window 600.sub.L provided in the one recovery passage 60R.sub.L.
(639) The light receiving unit 212R.sub.3 is provided on the back surface of the stapler 1Rf.sub.3 with the incidence surface of light (not illustrated) facing the inside of the side of the stapler 1Rf.sub.3. When the cut staple storage unit 6Rf.sub.3 is attached to the stapler 1Rf.sub.3, the light receiving unit 212R.sub.3 is provided at a position facing the window 600.sub.R provided in the other recovery passage 60R.sub.R.
(640) The optical waveguide 213R.sub.3 includes a prism 214R.sub.3. The prism 214R.sub.3 has an incident surface 220R.sub.L opposed to the window 600.sub.L of one recovery passage 60R.sub.L, an emitting surface 220R.sub.R opposed to the window 600.sub.R of the other recovery passage 60R.sub.R, and a light guide unit 220R.sub.C for guiding the light between the incident surface 220R.sub.L and the emitting surface 220R.sub.R.
(641) As a result, the optical waveguide 213R.sub.3 forms an optical path that allows the light emitted from the light emitting unit 211R.sub.3 to enter the light receiving unit 212R.sub.3 through one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(642) Next, an example of operational effect of the cut staple quantity detection unit 210R.sub.3 will be described. When the cut staple storage unit 6Rf.sub.3 does not store the cut staple of the quantity that reaches the full staple detection position of one recovery passage 60R.sub.L and the full staple detection quantity of the other recovery passage 60R.sub.R, in the staple detection unit 210R.sub.3, the light emitted from the light emitting unit 211R.sub.3 passes through one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R and is incident on the light receiving unit 212R.sub.3.
(643) That is, the light emitted from the light emitting unit 211R.sub.3 passes through the window 600.sub.L, passes through the one recovery passage 60R.sub.L, and is incident on the prism 214R.sub.3 from the incident surface 220R.sub.L. The light incident on the prism 214R.sub.3 exits from the emitting surface 220R.sub.R, passes through the window 600.sub.R, passes through the other recovery passage 60R.sub.R, and is incident on the light receiving unit 212R.sub.3.
(644) In contrast, when the cut staple storage unit 6Rf3 stores a quantity of cut staple that reaches one of the full load detection position of one recovery route 60R.sub.L or the full load detection position of the other recovery route 60R.sub.R, the optical path of light emitted from the light emitting unit 211R.sub.3 is blocked by the cut staple, and does not enter the light receiving unit 212R.sub.3.
(645) Accordingly, in the cut staple quantity detection unit 210R.sub.3, when the light emitted from the light emitting unit 211R.sub.3 is detected by the light receiving unit 212R.sub.3, the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.3 is detected not to be full. Further, when the light emitted from the light emitting unit 211R.sub.3 is not detected by the light receiving unit 212R.sub.3, the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.3 is detected to be full.
(646) Since the optical waveguide 213R.sub.3 can be linearly formed in the cut staple quantity detection unit 210R.sub.3, it is possible to configure not only the prism but also an optical fiber.
(647) <Optical Waveguide; Modified Example Using Reflecting Mirror>
(648)
(649) The stapler 1Rf.sub.4 and the cut staple storage unit 6Rf.sub.4 include an optical cut staple quantity detection unit 210R.sub.4 that detects the presence or absence of a predetermined quantity of a cut staple stored in the cut staple storage unit 6Rf.sub.4, using the presence or absence of light transmission. The cut staple quantity detection unit 210R.sub.4 is an example of a cut staple full load detection unit, and includes a light emitting unit 211R.sub.4 that emits light, and a light receiving unit 212R.sub.4 that detects light emitted from the light emitting unit 211R.sub.4. Further, the cut staple quantity detection unit 210R.sub.4 includes an optical waveguide 213R.sub.4 that guides the light from the light emitting unit 211R.sub.4 to the light receiving unit 212R.sub.4 on a predetermined optical path.
(650) In the cut staple quantity detection unit 210R.sub.4, the light emitting unit 211R.sub.4 and the light receiving unit 212R.sub.4 are provided in the stapler 1Rf.sub.4. Further, the cut staple quantity detection unit 210R.sub.4 is provided with the optical waveguide 213R.sub.4 in the cut staple storage unit 6Rf.sub.4.
(651) The cut staple storage unit 6Rf.sub.4 has a window 600.sub.L in one recovery passage 60R.sub.L and a window 600.sub.R in the other recovery passage 60R.sub.R. When the cut staple storage unit 6Rf.sub.4 is attached to the stapler 1Rf.sub.4, the light emitting unit 211R.sub.4 is provided at a position facing the window 600.sub.L provided in the one recovery passage 60R.sub.L. When the cut staple storage unit 6Rf.sub.2 is attached to the stapler 1Rf.sub.2, the light receiving unit 212R.sub.4 is provided at a position facing the window 600.sub.R provided in the other recovery passage 60R.sub.R.
(652) The optical waveguide 213R.sub.4 includes a first reflection surface 221R.sub.L opposed to the window 600.sub.L of the one recovery passage 60R.sub.L, and a second reflection surface 222R.sub.L that reflects the light reflected by the first reflection surface 221R.sub.L. The first reflection surface 221R.sub.L forms an optical path along the one recovery passages 60R.sub.L, and the second reflection surface 222R.sub.L forms an optical path that connects the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(653) The optical waveguide 213R.sub.4 has a third reflection surface 222R.sub.R that reflects the light reflected by the second reflection surface 222R.sub.L, and a fourth reflection surface 221R.sub.R that faces the window 600.sub.R of the other recovery passage 60R.sub.R and reflects the light reflected by the third reflection surface 222R.sub.R. The third reflection surface 222R.sub.R forms an optical path along the other recovery passage 60R.sub.R. The first reflection surface 221R.sub.L, the second reflection surface 222R.sub.L, the third reflection surface 222R.sub.R, and the fourth reflection surface 221R.sub.R are made up of reflecting mirrors. Furthermore, the optical waveguide 213R.sub.4 includes a cover 215R.sub.4 that covers the optical path formed by the respective reflection surfaces.
(654) Therefore, the optical waveguide 213R.sub.4 forms an optical path through which light emitted from the light emitting unit 211R.sub.4 enters the light receiving unit 212R.sub.4 through one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(655) Next, an example of operational effect of the cut staple quantity detection unit 210R.sub.4 will be described. When the cut staple storage unit 6Rf.sub.4 does not store the cut staple of the quantity that reaches the full staple detection position of one recovery passage 60R.sub.L and the full staple detection quantity of the other recovery passage 60R.sub.R, in the staple detection unit 210R.sub.4, the light emitted from the light emitting unit 211R.sub.4 enters the light receiving unit 212R.sub.4 through one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(656) That is, the light emitted from the light emitting unit 211R.sub.4 passes through the window 600.sub.L, passes through the one recovery passage 60R.sub.L, is reflected by the first reflection surface 221R.sub.L, and is reflected by the second reflection surface 222R.sub.L. The light reflected by the second reflection surface 222R.sub.L is reflected by the third reflection surface 222R.sub.R and is reflected by the fourth reflection surface 221R.sub.R. The light reflected by the fourth reflection surface 221R.sub.R passes through the window 600.sub.R, passes through the other recovery passage 60R.sub.R, and is incident on the light receiving unit 212R.sub.4.
(657) In contrast, when the cut staple storage unit 6Rf.sub.4 stores a quantity of cut staple that reaches one of the full load detection position of one recovery route 60R.sub.L or the full load detection position of the other recovery route 60R.sub.R, the light emitting unit 211R.sub.4 is blocked by the cut staple and does not enter the light receiving unit 212R.sub.4.
(658) Accordingly, the cut staple quantity detection unit 210R.sub.4 detects that the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.4 is not full, when the light emitted from the light emitting unit 211R.sub.4 is detected by the light receiving unit 212R.sub.4. In addition, when the light emitted from the light emitting unit 211R.sub.4 is not detected by the light receiving unit 212R.sub.4, the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.4 is detected to be full.
(659) Since the optical waveguide is constituted by the reflection surface of the reflecting mirror or the like in the cut staple quantity detecting portion 210R.sub.4, it is unnecessary to provide a light guiding member such as a prism or an optical fiber between the reflection surface and the reflection surface.
(660) <Optical Waveguide; Modified Example in which Optical Path is Aligned with Inclination of Stapler>
(661)
(662) The stapler 1Rf.sub.5 and the cut staple storage unit 6Rf.sub.5 are provided with an optical cut staple quantity detection unit 210R.sub.5 which detects the presence or absence of a predetermined quantity of the cut staple 13A stored in the cut staple storage unit 6Rf.sub.5, using the presence or absence of light transmission. The cut staple quantity detection unit 210R.sub.5 is an example of a cut staple full load detection unit, and includes a light emitting unit 211R.sub.5 that emits light, and a light receiving unit 212R.sub.5 that detects light emitted from the light emitting unit 211R.sub.5. The cut staple quantity detection unit 210R.sub.5 detects an optical waveguide 213R.sub.5 that guides the light emitted from the light emitting unit 211R.sub.5 to the light receiving unit 212R.sub.5 on a predetermined optical path.
(663) In the cut staple quantity detection unit 210R.sub.5, the light emitting unit 211R.sub.5 and the light receiving unit 212R.sub.5 are provided on the stapler 1Rf.sub.5 by the support member 223. Further, in the cut staple quantity detection unit 210R.sub.5, the optical waveguide 213R.sub.5 is provided in the cut staple storage unit 6Rf.sub.5 by the support member 224.
(664) The support member 223 is configured such that the emission direction of the light emitting unit 211R.sub.5 and the incident direction of the light receiving unit 212R.sub.5 can be adjusted by rotation about the fulcrum 223a. Further, the support member 223 is maintained at an adjusted angle, by a screw and fixing member 223b such as a long hole along the rotation locus of the support member 223.
(665) The optical waveguide 213R.sub.5 includes a prism 214R.sub.5. The prism 214.sub.R has a first reflection surface 217R.sub.L opposed to the light emitting unit 211R.sub.5 through a window (not illustrated) of the one recovery passages 60R.sub.L, and a first light guide unit 218R.sub.L that guides the light reflected by the first reflection surface 217R.sub.L. The first light guide unit 218R.sub.L extends along one recovery passage 60R.sub.L.
(666) The prism 214R.sub.5 has a second reflection surface 219R.sub.L that reflects the light guided by the second light guide unit 218R.sub.L, and a second light guide unit 218 R.sub.C that guides light reflected by the second reflection surface 219R, and a third reflection surface 219R.sub.R that reflects the light guided by the second light guide unit 218R.sub.C. The second light guide unit 218R.sub.C extends in a direction of connecting the one recovery passage 60R.sub.L with the other recovery passage 60R.sub.R.
(667) Further, the prism 214R.sub.5 includes a third light guide unit 218R.sub.R which guides the light reflected by the third reflection surface 219R.sub.R. The third light guide unit 218R.sub.R is disposed along the other recovery passage 60R.sub.R. The prism 214R.sub.5 has a fourth reflection surface 217R.sub.R that faces the light receiving unit 212R.sub.5 through a window (not illustrated) of the other recovery passage 60R.sub.R, and reflects the light guided by the third light guide unit 218R.sub.R.
(668) Therefore, the optical waveguide 213R.sub.5 forms an optical path which allows the light emitted from the light emitting unit 211R.sub.5 to enter the light receiving unit 212R.sub.5 through one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(669) The support member 224 is configured so that the incident direction and the emission direction of the prism 214R.sub.5 can be adjusted by rotation about the fulcrum 224a. Further, the support member 224 is maintained at an adjusted angle by a screw and a first fixing member 224b such as an elongated hole along the locus of rotation of the support member 224. Further, the support member 224 is adjusted and held in the height direction of the fulcrum 224a by the second fixing member 224c having the screw or long holes and the like.
(670) Next, an example of operational effect of the cut staple quantity detection unit 210R.sub.5 will be described. In the case where the stapler 1Rf.sub.5 is applied to the post-processing apparatus 502A illustrated in
(671) Therefore, when the quantity of the cut staples 13A stored in the cut staple storage unit 6Rf.sub.5 increases and the cut staples 13A are stacked on the recovery passages 60R.sub.L and 60R.sub.R, the upper surface of the cut staple 13A is inclined in accordance with the inclination of the stapler 1Rf.sub.5.
(672) Therefore, the emission direction of the light emitting unit 211R.sub.5 and the incident direction of the light receiving unit 212R.sub.5 are adjusted by the support member 223 in accordance with the inclination of the stapler 1Rf.sub.5 to match the inclination of the upper surface of the cut staple 13A. Further, the incident direction and the emission direction of the prism 214R.sub.5 are adjusted by the support member 224 in accordance with the inclination of the stapler 1Rf.sub.5 to match the inclination of the upper surface of the cut staple 13A.
(673) When the cut staple storage unit 6Rf.sub.5 does not store the cut staple 13A of an quantity that reaches the full load detection position of one recovery route 60R.sub.L and the full load detection position of the other recovery route 60R.sub.R, in the cut staple quantity detection unit 210R.sub.5, light emitted from the light emitting unit 211R.sub.5 is incident on the light receiving unit 212R.sub.5 through the one recovery passage 60R.sub.L, the prism 214R.sub.2 and the other recovery passage 60R.sub.R.
(674) In contrast, in the case where the cut staple storage unit 6Rf.sub.5 stores the cut staple 13A of a quantity that reaches one of the full load detection position of the one recovery passage 60R.sub.L or the full load detection position of the other recovery passage 60R.sub.R, optical path of light emitted from the light emitting unit 211R.sub.5 is blocked by the cut staple and does not enter the light receiving unit 212R.sub.5.
(675) Thus, in the cut staple quantity detection unit 210R.sub.5, when the light emitted from the light emitting unit 211R.sub.2 is detected by the light receiving unit 212R.sub.5, the quantity of the cut staple 13A stored in the cut staple storage unit 6Rf.sub.5 is detected not to be full. In addition, when the light emitted from the light emitting unit 211R.sub.5 is not detected by the light receiving unit 212R.sub.5, the quantity of the cut staple 13A stored in the cut staple storage unit 6Rf.sub.5 is detected to be full.
(676) In the cut staple quantity detecting unit 210R.sub.5, by setting the emission direction of the light emitting unit 211R.sub.5 and the incident direction of the light receiving unit 212R.sub.5 and the incident direction and the emission direction of the prism 214R.sub.5 to match the inclination of the upper surface of the cut staple 13A according to the inclination of the stapler 1Rf.sub.5, it is possible to suppress erroneous detection of full load detection.
(677) <Optical Waveguide: Modified Example of Detecting Quantity Cut Staple Before Full Load Detection>
(678)
(679) The stapler 1Rf.sub.6 and the cut staple storage unit 6Rf.sub.6 include an optical cut staple quantity detection unit 210R.sub.6 that detects the presence or absence of a predetermined quantity of a cut staple stored in the cut staple storage unit 6Rf.sub.6, using the presence or absence of light transmission. The cut staple quantity detection unit 210R.sub.6 is an example of a cut staple full load detection unit, and includes a first light emitting unit 211R.sub.61 that emits light, and a first light receiving unit 212R.sub.61 that detects light emitted from the first light emitting unit 211R.sub.1. Further, the cut staple quantity detection unit 210R.sub.6 includes a second light emitting unit 211R.sub.62 which emits light, and a second light receiving unit 212R.sub.62 which detects light emitted from the second light emitting unit 211R.sub.62.
(680) Further, the cut staple quantity detection unit 210R.sub.6 includes an optical waveguide 213R.sub.6 which guides the light emitted from the first light emitting unit 211R.sub.61 to the second light receiving unit 212R.sub.61, and guides the light emitted from the second light emitting unit 211R.sub.62 to the second light receiving unit 212R.sub.62 on a predetermined optical path.
(681) In the cut staple quantity detection unit 210R.sub.6, the first light emitting unit 211R.sub.61 and the second light emitting unit 211R.sub.62, and the first light receiving unit 212R.sub.61 and the second light receiving unit 212R.sub.62 are provided in the stapler 1Rf.sub.6. Further, the cut staple quantity detection unit 210R.sub.6 is provided with an optical waveguide 213R.sub.6 in the cut staple storage unit 6Rf.sub.6.
(682) The optical waveguide 213R.sub.6 has a first prism 214R.sub.61 and a second prism 214 R.sub.62, and a cover 215R.sub.6 that covers the first prism 214R.sub.61 and the second prism 214R.sub.62.
(683) The first prism 214R.sub.61 includes a first reflection surface 214R.sub.L1 opposed to the first light emitting unit 211R.sub.61 through a window (not illustrated) of the one recovery passage 60R.sub.L, a second reflection surface 214R.sub.R1 opposed to the first light receiving unit 212R.sub.6 through a window (not illustrated) of the other recovery passage 60R.sub.R, and a light guide unit 214R.sub.C1 which guides light between the first reflection surface 214R.sub.L1 and the second reflection surface 214R.sub.R1.
(684) The second prism 214R.sub.62 includes a first reflection surface 214R.sub.L2 opposed to the second light emitting unit 211R.sub.62 through a window (not illustrated) of the one recovery passage 60R.sub.L, a second reflection surface 214R.sub.R2 opposed to the second light receiving unit 212R.sub.62 through a window (not illustrated) of the other recovery passage 60R.sub.R, and a light guide unit 214R.sub.2 which guides light between the first reflection surface 214R.sub.L2 and the second reflection surface 214R.sub.R2.
(685) Therefore, the optical waveguide 213R.sub.6 forms an optical path that allows the light emitted from the first light emitting unit 211R.sub.61 to enter the first light receiving unit 212R.sub.61 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R, at the first detection position of detecting that the cut staple stored in the cut staple storage unit 6Rf.sub.6 is the first quantity.
(686) The optical waveguide 213R.sub.6 forms an optical path that allows the light emitted from the second light emitting unit 211R.sub.62 to enter the second light receiving unit 212R.sub.62 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R, at the second detection position of detecting that the cut staple stored in the cut staple storage unit 6Rf.sub.6 is the second quantity.
(687) Here, the first detection position is a full load detection position. In contrast, the second detection position is a detection position with a predetermined quantity smaller than the full load.
(688) Next, an example of operational effect of the cut staple quantity detection unit 210R.sub.6 will be described. In the cut staple quantity detection unit 210R.sub.6, when the cut staple storage unit 6Rf.sub.6 does not store the cut staple having the quantity that reaches the second detection position of one recovery passage 60R.sub.L and the second detection position of the other recovery passage 60R.sub.R, the light emitted from the second light-emitting unit 211R.sub.62 is incident on the second light receiving unit 212R.sub.62 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R. In a state in which the loading height of the cut staple does not reach the second position, the cut staple does not reach the full detection position which is the first detection position.
(689) In contrast, in the case where a cut staple having an quantity that reaches one of the second detection position of one recovery passage 60R.sub.L or the second detection position of the other recovery passage 60R.sub.R is stored in the cut staple storage unit 6Rf.sub.6, the optical path of the light emitted from the second light emitting unit 211R.sub.62 is shielded by the cut staple and is not incident on the second light receiving unit 212R.sub.62. In the case where the storage quantity of the cut staple further increases and an quantity of the cut staple which reaches one of the full load detection position of one recovery passage 60R.sub.L or the full load detection position of the other recovery passage 60R.sub.R is stored, the optical path of the light emitted from the portion 211R.sub.61 is blocked by the cut staple and the light does not enter the first light receiving unit 212R.sub.61.
(690) As a result, when the light emitted from the first light emitting unit 211R.sub.61 is detected by the first light receiving unit 212R.sub.61, and the light emitted from the second light emitting unit 211R.sub.62 is detected by the second light receiving unit 212R.sub.62, the cut staple quantity detection unit 210R.sub.6 detects that the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.6 is not full.
(691) In addition, when the light emitted from the second light emitting unit 211R.sub.62 is not detected by the second light receiving unit 212R.sub.62, the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.6 is detected to approach the full load. Furthermore, when the light emitted from the first light emitting unit 211R.sub.61 is not detected by the first light receiving unit 212R.sub.61, the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.6 is detected to be full.
(692) The cut staple quantity detection unit 210R.sub.6 detects that the quantity of the cut staple stored in the cut staple storage unit 6Rf.sub.6 approaches the full load before the detection of full load of the cut staple, notifies the detection to the post-processing apparatus 502A illustrated in
(693) <Optical Waveguide: Modified Example Using Full Load Detection and Opening/Closing Detection of Lid of Cut Staple Storage Unit>
(694)
(695) The stapler 1Rf.sub.7 and a cut staple storage unit 6Rf.sub.7 are provided with the optical cut staple quantity detection unit 210R.sub.7 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.7 are present using whether or not the transmission of light is present. The cut staple quantity detection unit 210R.sub.7 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.7 that reflects light and a light receiving unit 212R.sub.7 that detects the light reflected from light emitting unit 211R.sub.7. The cut staple quantity detection unit 210R.sub.7 is provided with an optical waveguide 213R.sub.7 that guides the light emitted from the light emitting unit 211R.sub.7 to the light receiving unit 212R.sub.7 along a given optical path.
(696) The cut staple quantity detection unit 210R.sub.7 has the light emitting unit 211R.sub.7 and the light receiving unit 212R.sub.7 provided for the stapler 1Rf.sub.7. The cut staple quantity detection unit 210R.sub.7 has the optical waveguide 213R.sub.7 provided for the cut staple storage unit 6Rf.sub.7.
(697) The optical waveguide 213R.sub.7 is provided with a prism 214R.sub.7 and a cover 215R.sub.7 that covers the prism 214R.sub.7. The prism 214R.sub.7 is provided with a first reflection surface 214R.sub.L that faces the light emitting unit 211R.sub.7 through a window (not illustrated) of one recovery passage 60R.sub.L, a second reflection surface 214R.sub.R that faces the light receiving unit 212R.sub.7 through a window (not illustrated) of the other recovery passage 60R.sub.R, and a light guiding unit 214R.sub.C that guides the light between the first reflection surface 214R.sub.L and the second reflection surface 214R.sub.R.
(698) Thereby, the optical waveguide 213R.sub.7 forms an optical path that causes the light emitted from the light emitting unit 211R.sub.7 to be incident upon the light receiving unit 212R.sub.7 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(699) The cut staple storage unit 6Rf.sub.7 is provided with a discharge port 216R of the cut staple, and a lid 216Rf that can open/close the discharge port 216R. The discharge port 216R is configured by providing an opening in one lateral surface of the cut staple storage unit 6Rf.sub.7.
(700) The lid 216Rf is mounted to be movable in a direction in which the one recovery passage 60R.sub.L extend in the present example. A blocking part 216Rf.sub.1 for blocking the discharge port 216R and an opening part 216Rf.sub.2 for opening the discharge port 216R are provided in a moving direction of the lid 216Rf. The lid 216Rf moves in one direction as illustrated in
(701) The lid 216Rf.sub.1 s provided with a window 216Rf.sub.3 and a shield part 216Rf.sub.4 that switch whether or not to shield the optical path from the light emitting unit 211R.sub.7 to the light receiving unit 212R.sub.7. The window 216Rf.sub.3 and the shield part 216Rf.sub.4 are provided in the moving direction of the lid 216Rf.
(702) The lid 216Rf moves in one direction as illustrated in
(703) As illustrated in
(704) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.7 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.7 at the cut staple quantity detection unit 210R.sub.7, the light emitted from the light emitting unit 211R.sub.7 is incident upon the light receiving unit 212R.sub.7 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(705) In contrast, when the amount of cut staple that reaches any one of the full load detection position of the one recovery passage 60R.sub.L and the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.7, the light emitted from the light emitting unit 211R.sub.7 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.7.
(706) As illustrated in
(707) In contrast, as illustrated in
(708) Thus, at the cut staple quantity detection unit 210R.sub.7, the light emitted from the light emitting unit 211R.sub.7 is detected by the light receiving unit 212R.sub.7, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.7 is not fully loaded. The light emitted from the light emitting unit 211R.sub.7 is not detected by the light receiving unit 212R.sub.7, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.7 is fully loaded or that the lid 216Rf is open.
(709) At the cut staple quantity detection unit 210R.sub.7, the full load detection of the cut staple and the detection of the opening/closing of the lid 216Rf can be used by the same detection unit, and the operation of the stapler 1Rf.sub.7 can be prevented in the state in which the lid 216Rf is open. Thereby, the cut staple can be prevented from being scattered inside a post-processing apparatus 502A.
(710) <Optical Waveguide: Modified Example in which Light Receiving and Emitting Parts are in an Integral Type>
(711)
(712) The stapler 1Rf.sub.8 and a cut staple storage unit 6Rf.sub.8 are provided with the optical cut staple quantity detection unit 210R that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.8 are present using whether or not the transmission of light is present.
(713) The cut staple quantity detection unit 210R.sub.8 is an example of cut staple full load detection unit, and is provided with a first light emitting unit 211R.sub.81 that emits light, and a first light receiving unit 212R.sub.1 that detects the light emitted from the first light emitting unit 211R.sub.81. The cut staple quantity detection unit 210R is provided with a first optical waveguide 213R.sub.81 that guides the light emitted from the first light emitting unit 211R.sub.81 to the first light receiving unit 212R.sub.81 along a given optical path.
(714) Further, the cut staple quantity detection unit 210.sub.8 is provided with a second light emitting unit 211R.sub.82 that emits light, and a second light receiving unit 212R.sub.82 that detects the light emitted from the second light emitting unit 211R.sub.82, The cut staple quantity detection unit 210R.sub.8 is provided with a second optical waveguide 213R.sub.82 that guides the light emitted from the second light emitting unit 211R.sub.82 to the second light receiving unit 212R.sub.82 along a given optical path.
(715) The cut staple quantity detection unit 210R.sub.8 has the first light emitting unit 211R.sub.81 and the first light receiving unit 212R.sub.81 that are configured as one unit and are provided at positions that face one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.8 in the stapler 1Rf.sub.8. A light emitting direction the first light emitting unit 211R.sub.81 is directed to the rear of the stapler 1Rf.sub.8, and a receiving surface of light of the first light receiving unit 212R.sub.81 is directed to the rear of the stapler 1Rf.sub.8.
(716) The cut staple quantity detection unit 210R.sub.8 has the second light emitting unit 211R.sub.82 and the second light receiving unit 212R.sub.82 that are configured as one unit and are provided at positions that face the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.8 in the stapler 1Rf.sub.8. A light emitting direction of the second light emitting unit 211R.sub.82 is directed to the rear of the stapler 1Rf.sub.8, and a receiving surface of light of the second light receiving unit 212R.sub.82 is directed to the rear of the stapler 1Rf.sub.8.
(717) Further, the cut staple quantity detection unit 210R.sub.8 has the first optical waveguide 213R.sub.81 that is provided for the one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.8, and the second optical waveguide 213R.sub.82 that is provided for the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.8.
(718) The first optical waveguide 213R.sub.81 is provided with a prism 214R.sub.81. The prism 214R.sub.81 is provided with a first reflection surface 214R.sub.L1 that faces the first light emitting unit 211R.sub.81 through a window (not illustrated) of the one recovery passage 60R.sub.L, a second reflection surface 214R that faces the first light receiving unit 212R.sub.81 through the window (not illustrated) of the one recovery passage 60R.sub.L, and a light guiding unit 214R.sub.C1 that guides light between the first reflection surface 214R.sub.L1 and the second reflection surface 214R.sub.L2.
(719) The second optical waveguide 213R.sub.82 is provided with a prism 214R.sub.82. The prism 214R.sub.82 is provided with a first reflection surface 214R.sub.R1 that faces the second light emitting unit 211R.sub.82 through a window (not illustrated) of the other recovery passage 60R.sub.R, a second reflection surface 214R.sub.R2 that faces the second light receiving unit 212R.sub.82 through the window (not illustrated) of the other recovery passage 60R.sub.R, and a light guiding unit 214R.sub.C2 that guides light between the first reflection surface 214R.sub.R1 and the second reflection surface 214R.sub.R2.
(720) Thereby, the first optical waveguide 213R.sub.81 forms an optical path that causes the light emitted from the first light emitting unit 211R.sub.81 to be incident onto the first light receiving unit 212R.sub.81 through the one recovery passage 60R.sub.L. The second optical waveguide 213R.sub.82 forms an optical path that causes the light emitted from the second light emitting unit 211R.sub.82 to be incident onto the second light receiving unit 212R.sub.82 through the other recovery passage 60R.sub.R.
(721) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.8 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.8 at the cut staple quantity detection unit 210R.sub.8, the light emitted from the first light emitting unit 211R.sub.81 is incident upon the first light receiving unit 212R.sub.81 through the one recovery passage 60R.sub.L.
(722) That is, the light emitted from the first light emitting unit 211R.sub.81 is reflected by the first reflection surface 214R.sub.L1 and the second reflection surface 214R.sub.L2 of the prism 214R.sub.81 through the one recovery passage 60R.sub.L, and is incident upon the first light receiving unit 212R.sub.81 through the one recovery passage 60R.sub.L.
(723) The light emitted from the second light emitting unit 211R.sub.82 is incident upon the second light receiving unit 212R.sub.82 through the other recovery passage 60R.sub.R. That is, the light emitted from the second light emitting unit 211R.sub.82 is reflected by the first reflection surface 214R.sub.R1 and the second reflection surface 214R.sub.R2 of the prism 214R.sub.82 through the other recovery passage 60R.sub.R, and is incident upon the second light receiving unit 212R.sub.82 through the other recovery passage 60R.sub.R.
(724) In contrast, when the amount of cut staple that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.8, the light emitted from the first light emitting unit 211R.sub.81 is obstructed on its optical path by the cut staple, and is not incident upon the first light receiving unit 212R.sub.81. Moreover, when the amount of cut staple that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.8, the light emitted from the second light emitting unit 211R.sub.82 is obstructed on its optical path by the cut staple, and is not incident upon the second light receiving unit 212R.sub.82.
(725) Thus, at the cut staple quantity detection unit 210R.sub.8, the light emitted from the first light emitting unit 211R.sub.81 is detected by the first light receiving unit 212R.sub.81, and the light emitted from the second light emitting unit 211R.sub.82 is detected by the second light receiving unit 212R.sub.82. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.8 is not fully loaded.
(726) The light emitted from the first light emitting unit 211R.sub.81 is not detected by the first light receiving unit 212R.sub.81, or the light emitted from the second light emitting unit 211R.sub.82 is not detected by the second light receiving unit 212R.sub.82, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.8 is fully loaded.
(727) At the cut staple quantity detection unit 210R.sub.8, the full load detection is independently allowed by the one recovery passage 60L and the other recovery passage 60R of the cut staple storage unit 6Rf.sub.8.
(728)
(729) The stapler 1Rf.sub.9 and a cut staple storage unit 6Rf.sub.9 are provided with the optical cut staple quantity detection unit 210R.sub.9 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.9 are present using whether or not the transmission of light is present.
(730) The cut staple quantity detection unit 210R.sub.9 is an example of cut staple full load detection unit, and is provided with a first light emitting unit 211R.sub.91 that emits light, and a first light receiving unit 212R.sub.91 that detects the light emitted from the first light emitting unit 211R.sub.91. The cut staple quantity detection unit 210R.sub.9 is provided with a first optical waveguide 213R.sub.9 that guides the light emitted from the first light emitting unit 211R.sub.91 to the first light receiving unit 212R.sub.91 along a given optical path.
(731) Further, the cut staple quantity detection unit 210R.sub.9 is provided with a second light emitting unit 211R.sub.92 that emits light, and a second light receiving unit 212R.sub.92 that detects the light emitted from the second light emitting unit 211R.sub.92, The cut staple quantity detection unit 210R.sub.9 is provided with a second optical waveguide 213R.sub.92 that guides the light emitted from the second light emitting unit 211R.sub.92 to the second light receiving unit 212R.sub.92 along a given optical path.
(732) The cut staple quantity detection unit 210R.sub.9 has the first light emitting unit 211R.sub.91 and the first light receiving unit 212R.sub.91 that are configured as one unit and are provided for the stapler 1Rf.sub.9. The first light emitting unit 211R.sub.91 and the first light receiving unit 212R.sub.91 are provided inside the one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.9 mounted on the stapler 1Rf.sub.9. A light emitting direction of the first light emitting unit 211R.sub.91 is directed to a lateral outer side of the stapler 1Rf.sub.9, and a receiving surface of light of the first light receiving unit 212R.sub.91 directed to the lateral outer side of the stapler 1Rf.sub.9.
(733) The cut staple quantity detection unit 210R.sub.9 has the second light emitting unit 211R.sub.92 and the second light receiving unit 212R.sub.92 that are configured as one unit and are provided for the stapler 1Rf.sub.9. The second light emitting unit 211R.sub.92 and the second light receiving unit 212R.sub.92 are provided inside the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.9 mounted on the stapler 1Rf.sub.9. A light emitting direction of the second light emitting unit 211R.sub.92 is directed to a lateral outer side of the stapler 1Rf.sub.9, and a receiving surface of light of the second light receiving unit 212R.sub.92 directed to the lateral outer side of the stapler 1Rf.sub.9.
(734) Further, the cut staple quantity detection unit 210R.sub.9 is configured such that the first optical waveguide 213R.sub.91 is provided at an outer lateral surface of the one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.9 and that the second optical waveguide 213R.sub.92 is provided on an outer lateral surface of the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.9.
(735) The first optical waveguide 213R.sub.91 is provided with a prism 214R.sub.91. The prism 214R.sub.91 is provided with a first reflection surface 214R.sub.L1 that faces the first light emitting unit 211R.sub.91 through a window (not illustrated) of the one recovery passage 60R.sub.L, a second reflection surface 214R.sub.L2 that faces the first light receiving unit 212R.sub.91 through the window (not illustrated) of the one recovery passage 60R.sub.L, and a light guiding unit 214R.sub.C1 that guides light between the first reflection surface 214R.sub.L1 and the second reflection surface 214R.sub.L2.
(736) The second optical waveguide 213R.sub.92 is provided with a prism 214R.sub.92. The prism 214R.sub.92 is provided with a first reflection surface 214R.sub.R1 that faces the second light emitting unit 211R.sub.92 through a window (not illustrated) of the other recovery passage 60R.sub.R, a second reflection surface 214R.sub.R2 that faces the second light receiving unit 212R.sub.92 through the window (not illustrated) of the other recovery passage 60R.sub.R, and a light guiding unit 214R.sub.C2 that guides light between the first reflection surface 214R.sub.R1 and the second reflection surface 214R.sub.R2.
(737) Thereby, the first optical waveguide 213R.sub.91 forms an optical path that causes the light emitted from the first light emitting unit 211R.sub.91 to be incident upon the first light receiving unit 212R.sub.91 through the one recovery passage 60R.sub.L. The second optical waveguide 213R.sub.92 forms an optical path that causes the light emitted from the second light emitting unit 211R.sub.92 to be incident upon the second light receiving unit 212R.sub.92 through the other recovery passage 60R.sub.R.
(738) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.9 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.9 at the cut staple quantity detection unit 210R.sub.9, the light emitted from the first light emitting unit 211R.sub.91 is incident upon the first light receiving unit 212R.sub.91 through the one recovery passage 60R.sub.L. In addition, light emitted from the second light emitting unit 211R.sub.92 is incident upon the second light receiving unit 212R.sub.92 through the other recovery passage 60R.sub.R.
(739) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.9, the light emitted from the first light emitting unit 211R.sub.91 is obstructed on its optical path by the cut staple, and is not incident upon the first light receiving unit 212R.sub.91. In addition, when the cut staple of the amount that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.9, the light emitted from the second light emitting unit 211R.sub.92 is obstructed on its optical path by the cut staple, and is not incident upon the second light receiving unit 212R.sub.92.
(740) Thereby, at the cut staple quantity detection unit 210R.sub.9, the light emitted from the first light emitting unit 211R.sub.91 is detected by the first light receiving unit 212R.sub.91, and the light emitted from the second light emitting unit 211R.sub.92 is detected by the second light receiving unit 212R.sub.92, thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.9 is not fully loaded.
(741) In addition, the light emitted from the first light emitting unit 211R.sub.91 is not detected by the first light receiving unit 212R.sub.91, or the light emitted from the second light emitting unit 211R.sub.92 is not detected by the second light receiving unit 212R.sub.92, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.9 is fully loaded.
(742) At the cut staple quantity detection unit 210R.sub.9, the full load detection is independently allowed by the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.9.
(743)
(744) The stapler 1Rf.sub.10 and a cut staple storage unit 6Rf.sub.10 are provided with the optical cut staple quantity detection unit 210R.sub.10 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.10 are present using whether or not the transmission of light is present.
(745) The cut staple quantity detection unit 210R.sub.10 is an example of cut staple full load detection unit, and is provided with a first light emitting unit 211R.sub.101 that emits light, and a first light receiving unit 212R.sub.101 that detects the light emitted from the first light emitting unit 211R.sub.101. The cut staple quantity detection unit 210R.sub.10 is provided with a first optical waveguide 213R.sub.101 that guides the light emitted from the first light emitting unit 211R.sub.101 to the first light receiving unit 212R.sub.101 along a given optical path.
(746) Further, the cut staple quantity detection unit 210R.sub.10 is provided with a second light emitting unit 211R.sub.102 that emits light, and a second light receiving unit 212R.sub.102 that detects the light emitted from the second light emitting unit 211R.sub.102. The cut staple quantity detection unit 210R.sub.10 is provided with a second optical waveguide 213R.sub.102 that guides the light emitted from the second light emitting unit 211R.sub.102 to the second light receiving unit 212R.sub.102 along a given optical path.
(747) The cut staple quantity detection unit 210R.sub.10 has the first light emitting unit 211R.sub.101 and the first light receiving unit 212R.sub.101 that are configured as one unit and are provided for the stapler 1Rf.sub.10. The first light emitting unit 211R.sub.101 and the first light receiving unit 212R.sub.101 are provided outside the one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.10 mounted on the stapler 1Rf.sub.10. A light emitting direction of the first light emitting unit 211R.sub.101 is directed to a lateral inside of the stapler 1Rf.sub.10, and a receiving surface of light of the first light receiving unit 212R.sub.101 directed to the lateral inside of the stapler 1Rf.sub.10.
(748) The cut staple quantity detection unit 210R.sub.10 has the second light emitting unit 211R.sub.101 and the second light receiving unit 212R.sub.101 that are configured as one unit and are provided for the stapler 1Rf.sub.10. The second light emitting unit 211R.sub.102 and the second light receiving unit 212R.sub.102 are provided outside the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.10 mounted on the stapler 1Rf.sub.10. A light emitting direction of the second light emitting unit 211R.sub.102 is directed to a lateral inside of the stapler 1Rf.sub.10, and a receiving surface of light of the second light receiving unit 212R.sub.102 directed to the lateral inside of the stapler 1Rf.sub.10.
(749) Further, the cut staple quantity detection unit 210R.sub.10 has the first optical waveguide 213R.sub.101 that is provided on an inner lateral surface of the one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.10, and the second optical waveguide 213R.sub.102 that is provided on an inner lateral surface of the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.10.
(750) The first optical waveguide 213R.sub.101 is provided with a prism 214R.sub.101. The prism 214R.sub.101 is provided with a first reflection surface 214R.sub.L1 that faces the first light emitting unit 211R.sub.101 through a window (not illustrated) of the one recovery passage 60R.sub.L, a second reflection surface 214R.sub.L2 that faces the first light receiving unit 212R.sub.101 through the window (not illustrated) of the one recovery passage 60R.sub.L, and a light guiding unit 214R.sub.C1 that guides light between the first reflection surface 214R.sub.L1 and the second reflection surface 214R.sub.L2.
(751) The second optical waveguide 213R.sub.102 is provided with a prism 214R.sub.102. The prism 214R.sub.102 is provided with a first reflection surface 214R.sub.R1 that faces the second light emitting unit 211R.sub.102 through a window (not illustrated) of the other recovery passage 60R.sub.R, a second reflection surface 214R.sub.R2 that faces the second light receiving unit 212R.sub.102 through the window (not illustrated) of the other recovery passage 60R.sub.R, and a light guiding unit 214R.sub.C2 that guides light between the first reflection surface 214R.sub.R1 and the second reflection surface 214R.sub.R2.
(752) Thereby, the first optical waveguide 213R.sub.101 forms an optical path that causes the light emitted from the first light emitting unit 211R.sub.101 to be incident upon the first light receiving unit 212R.sub.101 through the one recovery passage 60R.sub.L. The second optical waveguide 213R.sub.102 forms an optical path that causes the light emitted from the second light emitting unit 211R.sub.102 to be incident upon the second light receiving unit 212R.sub.102 through the other recovery passage 60R.sub.R.
(753) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.10 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.10 at the cut staple quantity detection unit 210R.sub.10, the light emitted from the first light emitting unit 211R.sub.101 is incident upon the first light receiving unit 212R.sub.101 through the one recovery passage 60R.sub.L, and the light emitted from the second light emitting unit 211R.sub.102 is incident upon the second light receiving unit 212R.sub.102 through the other recovery passage 60R.sub.R.
(754) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.10, the light emitted from the first light emitting unit 211R.sub.101 is obstructed on its optical path by the cut staple, and is not incident upon the first light receiving unit 212R.sub.101. When the cut staple of the amount that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.10, the light emitted from the second light emitting unit 211R.sub.102 is obstructed on its optical path by the cut staple, and is not incident upon the second light receiving unit 212R.sub.102.
(755) Thus, at the cut staple quantity detection unit 210R.sub.10, the light emitted from the first light emitting unit 211R.sub.101 is detected by the first light receiving unit 212R.sub.101, and the light emitted from the second light emitting unit 211R.sub.102 is detected by the second light receiving unit 212R.sub.102, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.10 is not fully loaded.
(756) The light emitted from the first light emitting unit 211R.sub.101 is not detected by the first light receiving unit 212R.sub.101 or the light emitted from the second light emitting unit 211R.sub.102 is not detected by the second light receiving unit 212R.sub.102, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.10 is fully loaded.
(757) At the cut staple quantity detection unit 210R.sub.10, the full load detection is independently allowed by the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.10.
(758)
(759) The stapler 1Rf.sub.11 has one discharge passage 33R that communicates with a cut part (not illustrated) and extends rearwards. When a cut staple storage unit 6Rf.sub.11 is mounted on the stapler 1Rf.sub.11, one recovery passage 60R.sub.C communicating with the discharge passage 33R is provided at the center in a width direction. In the stapler 1Rf.sub.11, a recovery port 61R.sub.C of the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.11 communicates with a discharge port 34R.sub.C of the discharge passage 33R.
(760) The stapler 1Rf.sub.11 and the cut staple storage unit 6Rf.sub.11 are provided with the optical cut staple quantity detection unit 210R.sub.11 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.1 are present using whether or not the transmission of light is present.
(761) The cut staple quantity detection unit 210R.sub.11 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.1 that emits light, and a light receiving unit 212R.sub.11 that detects the light emitted from the light emitting unit 211R.sub.11. The cut staple quantity detection unit 210R.sub.11 is provided with an optical waveguide 213R.sub.11 that guides the light emitted from the light emitting unit 211R.sub.11 to the light receiving unit 212R.sub.11 along a given optical path.
(762) The cut staple quantity detection unit 210R.sub.11 has the light emitting unit 211R.sub.11 and the light receiving unit 212R.sub.1 that are configured as one unit and are provided for the stapler 1Rf.sub.11. The light emitting unit 211R.sub.11 and the light receiving unit 212R.sub.11 are provided to face the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.11 mounted on the stapler 1Rf.sub.11. A light emitting direction of the light emitting unit 211R.sub.11 is directed to the rear of the stapler 1Rf.sub.11, and a receiving surface of light of the light receiving unit 212R.sub.11 is directed to the rear of the stapler 1Rf.sub.11.
(763) The cut staple quantity detection unit 210R.sub.11 has the optical waveguide 213R.sub.11 provided for the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.11. The optical waveguide 213R.sub.11 is provided with a prism 214R.sub.11. The prism 214R.sub.11 is provided with a first reflection surface 214R.sub.L that faces the light emitting unit 211R.sub.11 through a window (not illustrated) of the recovery passage 60R.sub.C, a second reflection surface 214R.sub.R that faces light receiving unit 212R.sub.11 through window (not illustrated) of the recovery passage 60R.sub.C, and a light guiding unit 214R.sub.C between the first reflection surface 214R.sub.L and the second reflection surface 214R.sub.R.
(764) Thereby, the optical waveguide 213R.sub.11 forms an optical path that causes the light emitted from the light emitting unit 211R.sub.11 to be incident upon the light receiving unit 212R.sub.11 through the recovery passage 60R.sub.C.
(765) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.11 will be described. When the amount of cut staple that reaches a full load detection position of the recovery passage 60R.sub.C are not stored in the cut staple storage unit 6Rf.sub.11 at the cut staple quantity detection unit 210R.sub.11, the light emitted from the light emitting unit 211R.sub.11 is incident upon the light receiving unit 212R.sub.11 through the recovery passage 60R.sub.C.
(766) In contrast, when the cut staple of the amount that reaches the full load detection position of the recovery passage 60R.sub.C are stored in the cut staple storage unit 6Rf.sub.11, the light emitted from the light emitting unit 211R.sub.11 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.11.
(767) Thus, at the cut staple quantity detection unit 210R.sub.11, the light emitted from the light emitting unit 211R.sub.11 is detected by the light receiving unit 212R.sub.11, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.11 is not fully loaded.
(768) The light emitted from the light emitting unit 211R.sub.11 is not detected by the light receiving unit 212R.sub.11, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.11 is fully loaded.
(769) At the cut staple quantity detection unit 210R.sub.11, when the cut staple storage unit 6Rf.sub.11 is demounted from the stapler 1Rf.sub.11, a staple cartridge 100A cannot be mounted and demounted on/from the stapler 1Rf.sub.11. Thereby, the cut staple can be recovered according to a timing when the staple cartridge 100A is mounted and demounted.
(770)
(771) A cut staple storage unit 6Rf.sub.12 has a size equivalent to the entire back surface of a staple ejecting unit 2R. The cut staple storage unit 6Rf.sub.12 is configured such that one recovery port 61R.sub.L communicates with a discharge port 34R.sub.L of one discharge passage 33R.sub.L of the stapler 1Rf.sub.12, and the other recovery port 61R.sub.R communicates with a discharge port 34R.sub.R of the other discharge passage 33R.sub.R of the stapler 1Rf.sub.12.
(772) The stapler 1Rf.sub.12 and the cut staple storage unit 6Rf.sub.12 are provided with an optical cut staple quantity detection unit 210R.sub.12 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.12 are present using whether or not the transmission of light is present.
(773) The cut staple quantity detection unit 210R.sub.12 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.12 that emits light, and a light receiving unit 212R.sub.12 that detects the light emitted from the light emitting unit 211R.sub.12. The cut staple quantity detection unit 210R.sub.12 is provided with an optical waveguide 213R.sub.12 that guides the light emitted from the light emitting unit 211R.sub.12 to the light receiving unit 212R.sub.12 along a given optical path.
(774) As illustrated in
(775) The light emitting unit 211R.sub.12 and the light receiving unit 212R.sub.12 are provided on a back surface of the stapler 1Rf.sub.12 to face the optical waveguide 213R.sub.12. The light emitting unit 211R.sub.12 and the light receiving unit 212R.sub.12 are configured as one unit. Alight emitting direction of the light emitting unit 211R.sub.12 is directed to the rear of the stapler 1Rf.sub.12, and a receiving surface of light of the light receiving unit 212R.sub.12 is directed to the rear of the stapler 1Rf.sub.12.
(776) The optical waveguide 213R.sub.12 is provided with a prism 214R.sub.12. The prism 214R.sub.12 is provided with a first reflection surface 214R.sub.L that faces the light emitting unit 211R.sub.12 through a window (not illustrated) of the cut staple storage unit 6Rf.sub.12, a second reflection surface 214R.sub.R that faces the light receiving unit 212R.sub.12 through the window (not illustrated) of the cut staple storage unit 6Rf.sub.12, and a light guiding unit 214R.sub.C that guides light between the first reflection surface 214R.sub.L and the second reflection surface 214R.sub.R.
(777) Thereby, the optical waveguide 213R.sub.12 forms an optical path that causes the light emitted from the light emitting unit 211R.sub.12 to be incident upon the light receiving unit 212R.sub.12 through the cut staple storage unit 6Rf.sub.12.
(778) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.12 will be described. When the amount of cut staple 13A that reaches a full load detection position are not stored in the cut staple storage unit 6Rf.sub.12 at the cut staple quantity detection unit 210R.sub.12, the light emitted from the light emitting unit 211R.sub.12 is incident upon the light receiving unit 212R.sub.12 through the cut staple storage unit 6Rf.sub.12.
(779) In contrast, when the cut staple 13A of the amount that reaches the full load detection position are stored in the cut staple storage unit 6Rf.sub.12, the light emitted from the light emitting unit 211R.sub.12 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.12.
(780) Thus, at the cut staple quantity detection unit 210R.sub.12, the light emitted from the light emitting unit 211R.sub.12 is detected by the light receiving unit 212R.sub.12, and thereby it is detected that the amount of the cut staple 13A stored in the cut staple storage unit 6Rf.sub.12 is not fully loaded.
(781) Moreover, the light emitted from the light emitting unit 211R.sub.12 is not detected by the light receiving unit 212R.sub.12, and thereby it is detected that the amount of the cut staple 13A stored in the cut staple storage unit 6Rf.sub.12 is fully loaded.
(782) At the cut staple quantity detection unit 210R.sub.12, when the cut staple storage unit 6Rf.sub.12 is demounted from the stapler 1Rf.sub.12, the staple cartridge 100A cannot be mounted and demounted on/from the stapler 1Rf.sub.12. Thus, the cut staple can be recovered according to a timing when the staple cartridge 100A is mounted and demounted. Since the cut staple storage unit 6Rf.sub.12 has the size equivalent to the entire back surface of the staple ejecting unit 2R, an amount of storage of the cut staple can be increased.
(783) <Optical Waveguide: Modified Example Using Optical Fiber>
(784)
(785) The stapler 1Rf.sub.13 and a cut staple storage unit 6Rf.sub.13 are provided with an optical cut staple quantity detection unit 210R.sub.13 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.13 are present using whether or not the transmission of light is present.
(786) The cut staple quantity detection unit 210R.sub.13 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.13 that emits light, and a light receiving unit 212R.sub.13 that detects the light emitted from the light emitting unit 211R.sub.13. The cut staple quantity detection unit 210R.sub.13 is provided with an optical waveguide 213R.sub.13 that guides the light emitted from the light emitting unit 211R.sub.13 to the light receiving unit 212R.sub.13 along a given optical path.
(787) The cut staple quantity detection unit 210R.sub.13 has the light emitting unit 211R.sub.13 and the light receiving unit 212R.sub.13 provided for the stapler 1Rf.sub.3. A light emitting direction of the light emitting unit 211R.sub.13 is directed to the rear of the stapler 1Rf.sub.3, and a receiving surface of light of the light receiving unit 212R.sub.13 is directed to the rear of the stapler 1Rf.sub.13. The cut staple quantity detection unit 210R.sub.13 has the optical waveguide 213R.sub.13 provided for the cut staple storage unit 6Rf.sub.13.
(788) The optical waveguide 213R.sub.13 is provided with an optical fiber 214R.sub.13. The optical fiber 214R.sub.13 is provided with an incident surface 214R.sub.L13 that faces the light emitting unit 211R.sub.13 through a window (not illustrated) of one recovery passage 60R.sub.L, and an emitting surface 214R.sub.R13 that faces the light receiving unit 212R.sub.13 through a window (not illustrated) of the other recovery passage 60R.sub.R.
(789) Thus, the optical waveguide 213R.sub.13 forms an optical path that causes the light emitted from the light emitting unit 211R.sub.13 to be incident upon the light receiving unit 212R.sub.13 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(790) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.13 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.13 at the cut staple quantity detection unit 210R.sub.13, the light emitted from the light emitting unit 211R.sub.13 is incident upon the light receiving unit 212R.sub.13 through the one recovery passage 60R.sub.L, the optical fiber 214R.sub.13 constituting the optical waveguide 213R.sub.13, and the other recovery passage 60R.sub.R.
(791) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L or the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.3, the light emitted from the light emitting unit 211R.sub.13 is obstructed on its optical path, and is not incident upon the light receiving unit 212R.sub.13.
(792) Thus, at the cut staple quantity detection unit 210R.sub.13, the light emitted from the light emitting unit 211R.sub.13 is detected by the light receiving unit 212R.sub.13, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.13 is not fully loaded.
(793) In addition, the light emitted from the light emitting unit 211R.sub.13 is not detected by the light receiving unit 212R.sub.13, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.13 is fully loaded.
(794) The optical waveguide 213R.sub.13 is constituted of the optical fiber 214R.sub.13 having flexibility, and thereby a degree of freedom of arrangement of the optical path is improved at the cut staple quantity detection unit 210R.sub.13.
(795)
(796) The stapler 1Rf.sub.14 and a cut staple storage unit 6Rf.sub.14 are provided with an optical cut staple quantity detection unit 210R.sub.14 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.4 are present using whether or not the transmission of light is present.
(797) The cut staple quantity detection unit 210R.sub.14 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.14 that emits light, and a light receiving unit 212R.sub.14 that detects the light emitted from the light emitting unit 211R.sub.14. The cut staple quantity detection unit 210R.sub.14 is provided with an optical waveguide 213R.sub.14 that guides the light emitted from the light emitting unit 211R.sub.14 to the light receiving unit 212R.sub.14 along a given optical path.
(798) The cut staple quantity detection unit 210R.sub.14 has the light emitting unit 211R.sub.14 and the light receiving unit 212R.sub.14 provided for the stapler 1Rf.sub.14. The cut staple quantity detection unit 210R.sub.114 has the optical waveguide 213R.sub.14 provided for the cut staple storage unit 6Rf.sub.14.
(799) The light emitting unit 211R.sub.14 is provided on a back surface of the stapler 1Rf.sub.14 such that a light emitting direction is directed to a lateral inside of the stapler 1Rf.sub.14. The light receiving unit 212R.sub.14 is provided on the back surface of the stapler 1Rf.sub.14 such that a receiving surface of light is directed to the lateral inside of the stapler 1Rf.sub.14.
(800) The optical waveguide 213R.sub.14 is provided with an optical fiber 214R.sub.14. The optical fiber 214R.sub.14 is provided with an incident surface 214R.sub.L14 that faces the light emitting unit 211R.sub.14 through a window (not illustrated) of one recovery passage 60R.sub.L, and a light emitting surface 214R.sub.R14 that faces the light receiving unit 212R.sub.14 through a window (not illustrated) of the other recovery passage 60R.sub.R.
(801) Thus, the optical waveguide 213R.sub.14 forms an optical path that causes the light emitted from the light emitting unit 211R.sub.14 to be incident upon the light receiving unit 212R.sub.14 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(802) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.14 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.14 at the cut staple quantity detection unit 210R.sub.14, the light emitted from the light emitting unit 211R.sub.14 is incident upon the light receiving unit 212R.sub.14 through the one recovery passage 60R.sub.L, the optical fiber 214R.sub.14 constituting the optical waveguide 213R.sub.14, and the other recovery passage 60R.sub.R.
(803) In contrast, when the cut staple of the amount that reaches either the full load detection position of the one recovery passage 60R.sub.L or the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.14, the light emitted from the light emitting unit 211R.sub.14 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.14.
(804) Thus, at the cut staple quantity detection unit 210R.sub.14, the light emitted from the light emitting unit 211R.sub.14 is detected by the light receiving unit 212R.sub.14, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.14 is not fully loaded.
(805) In addition, the light emitted from the light emitting unit 211R.sub.14 is not detected by the light receiving unit 212R.sub.14, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.14 is fully loaded.
(806) The optical waveguide 213R.sub.14 is constituted of the optical fiber 214R.sub.14 having flexibility, and thereby a degree of freedom of arrangement of the optical path is improved at the cut staple quantity detection unit 210R.sub.14.
(807) <Modified Example in which Light Receiving and Emitting Parts are Separated>
(808)
(809) The stapler 1Rf.sub.15 and a cut staple storage unit 6Rf.sub.15 are provided with the optical cut staple quantity detection unit 210R.sub.15 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.15 are present using whether or not the transmission of light is present.
(810) The cut staple quantity detection unit 210R.sub.15 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.15 that emits light, and a light receiving unit 212R.sub.15 that detects the light emitted from the light emitting unit 211R.sub.15.
(811) The light emitting unit 211R.sub.15 and the light receiving unit 212R.sub.15 are mounted on a support member 225R provided for the stapler 1Rf.sub.15. The light emitting unit 211R.sub.15 is provided on a back surface of the stapler 1Rf.sub.5 such that a light emitting direction is directed to a lateral inside of the stapler 1Rf.sub.15. In addition, the light receiving unit 212R.sub.15 is provided on the back surface of the stapler 1Rf.sub.15 such that a receiving surface of light is directed to the lateral inside of the stapler 1Rf.sub.15. The support member 225R is provided with a light receiving window 225R.sub.1 which light transmits toward the light receiving unit 212R.sub.15.
(812) When the cut staple storage unit 6Rf.sub.15 is mounted on the stapler 1Rf.sub.15, the light emitting unit 211R.sub.15 faces a window (not illustrated) of one recovery passage 60R.sub.L, and the light receiving unit 212R.sub.15 faces a window (not illustrated) of the other recovery passage 60R.sub.R. The light receiving unit 212R.sub.15 is provided in an optical path of the light emitted from the light emitting unit 211R.sub.15. Thereby, the optical path along which the light emitted from the light emitting unit 211R.sub.15 is incident upon the light receiving unit 212R.sub.15 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R is formed.
(813) The cut staple quantity detection unit 210R.sub.15 is provided with a mounting/demounting detection member 226R that detects mounting/demounting of the cut staple storage unit 6Rf.sub.15 by means of the light emitting unit 211R.sub.15 and the light receiving unit 212R.sub.15.
(814) The mounting/demounting detection member 226R is mounted on the support member 225R to make the light receiving window 225R.sub.1 openable/closable with rotational motion that uses a shaft 226R.sub.1 as a fulcrum. The mounting/demounting detection member 226R is biased by a spring 226R.sub.2 such as a torsion coil spring in a direction in which the light receiving window 225R.sub.1 is shielded.
(815) The support member 225R is provided with a stopper 225R.sub.2 with which the mounting/demounting detection member 226R rotated by the spring 226R.sub.2 up to a position at which the light receiving window 225R.sub.1 is shielded collides. The mounting/demounting detection member 226R is provided with a pressing claw part 225R.sub.3 that is pressed to the cut staple storage unit 6Rf.sub.15 mounted on the stapler 1Rf.sub.15.
(816) As illustrated in
(817) As illustrated in
(818) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.15 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.15 at the cut staple quantity detection unit 210R.sub.15, the light emitted from the light emitting unit 211R.sub.15 is incident upon the light receiving unit 212R.sub.15 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R.
(819) In contrast, when the cut staple of the amount that reaches either the full load detection position of the one recovery passage 60R.sub.L or the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.15, the light emitted from the light emitting unit 211R.sub.15 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.15.
(820) As illustrated in
(821) In contrast, as illustrated in
(822) Thus, at the cut staple quantity detection unit 210R.sub.15, the light emitted from the light emitting unit 211R.sub.15 is detected by the light receiving unit 212R.sub.15. Thereby, it is detected that the cut staple storage unit 6Rf.sub.15 is mounted on the stapler 1Rf.sub.15, and that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.15 is not fully loaded.
(823) The light emitted from the light emitting unit 211R.sub.15 is not detected by the light receiving unit 212R.sub.15. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.15 is fully loaded, or that the cut staple storage unit 6Rf.sub.15 is not mounted on the stapler 1Rf.sub.5.
(824) At the cut staple quantity detection unit 210R.sub.15, full load detection of the cut staple and detection of the presence or absence of the cut staple storage unit 6Rf.sub.15, namely detection of the mounting/demounting of the cut staple storage unit 6Rf.sub.15, can be combined by the same detection part.
(825)
(826) The stapler 1Rf.sub.16 and a cut staple storage unit 6Rf.sub.16 are provided with the optical cut staple quantity detection unit 210R.sub.16 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.16 are present using whether or not the transmission of light is present.
(827) The cut staple quantity detection unit 210R.sub.16 is an example of cut staple full load detection unit, and is provided with a first light emitting unit 211R.sub.161 that emits light, and a first light receiving unit 212R.sub.161 that detects the light emitted from the first light emitting unit 211R.sub.161. In addition, the cut staple quantity detection unit 210R.sub.16 is provided with a second light emitting unit 211R.sub.162 that emits light, and a second light receiving unit 212R.sub.162 that detects the light emitted from the second light emitting unit 211R.sub.162.
(828) The first light emitting unit 211R.sub.161 and the second light emitting unit 211R.sub.162 are provided on a back surface of the stapler 1Rf.sub.16 such that a light emitting direction is directed to the rear of the stapler 1Rf.sub.16. The first light emitting unit 211R.sub.161 is provided to face one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.16 mounted on the stapler 1Rf.sub.16. In addition, the second light emitting unit 211R.sub.162 is provided to face the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.16 mounted on the stapler 1Rf.sub.16.
(829) The first light receiving unit 212R.sub.161 and the second light receiving unit 212R.sub.162 are provided on the back surface of the stapler 1Rf.sub.16 such that a receiving direction of light is directed to the front of the stapler 1Rf.sub.16. The first light receiving unit 212R.sub.161 is provided for the one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.16, and the second light receiving unit 212R.sub.162 is provided for the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.16.
(830) When the cut staple storage unit 6Rf.sub.16 is mounted on the stapler 1Rf.sub.16, the first light emitting unit 211R.sub.161 is transmitted through a window (not illustrated) of the one recovery passage 60R.sub.L, and faces the first light receiving unit 212R.sub.161. Thus, an optical path along which the light emitted from the first light emitting unit 211R.sub.161 is incident upon the first light receiving unit 212R.sub.161 through the one recovery passage 60R.sub.L is formed.
(831) When the cut staple storage unit 6Rf.sub.16 is mounted on the stapler 1Rf.sub.16, the second light emitting unit 211R.sub.162 is transmitted through a window (not illustrated) of the other recovery passage 60R.sub.R, and faces the second light receiving unit 212R.sub.162. Thus, an optical path along which the light emitted from the second light emitting unit 211R.sub.162 is incident upon the second light receiving unit 212R.sub.162 through the other recovery passage 60R.sub.R is formed.
(832) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.16 will be described. When the cut staple storage unit 6Rf.sub.16 is mounted on the stapler 1Rf.sub.16, and when the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.16, the light emitted from the first light emitting unit 211R.sub.161 is incident upon the first light receiving unit 212R.sub.161 through the one recovery passage 60R.sub.L. The light emitted from the second light emitting unit 211R.sub.162 is incident upon the second light receiving unit 212R.sub.162 through the other recovery passage 60R.sub.R.
(833) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.16, the light emitted from the first light emitting unit 211R.sub.161 is obstructed on its optical path by the cut staple, and is not incident upon the first light receiving unit 212R.sub.161. When the cut staple of the amount that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.16, the light emitted from the second light emitting unit 211R.sub.162 is obstructed on its optical path by the cut staple, and is not incident upon the second light receiving unit 212R.sub.162.
(834) Thus, at the cut staple quantity detection unit 210R.sub.16, the light emitted from the first light emitting unit 211R.sub.161 is detected by the first light receiving unit 212R.sub.161, and the light emitted from the second light emitting unit 211R.sub.162 is detected by the second light receiving unit 212R.sub.162. Thereby, it is detected that the cut staple storage unit 6Rf.sub.16 is mounted on the stapler 1Rf.sub.16, and that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.16 is not fully loaded.
(835) The light emitted from the first light emitting unit 211R.sub.61 is not detected by the first light receiving unit 212R.sub.161, or the light emitted from the second light emitting unit 211R.sub.162 is not detected by the second light receiving unit 212R.sub.162. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.16 is fully loaded.
(836) Further, the light emitted from the first light emitting unit 211R.sub.161 is not detected by the first light receiving unit 212R.sub.161, and the light emitted from the second light emitting unit 211R.sub.162 is not detected by the second light receiving unit 212R.sub.162. Thereby, it is detected that the cut staple storage unit 6Rf.sub.16 is not mounted on the stapler 1Rf.sub.16.
(837) At the cut staple quantity detection unit 210R.sub.16, the full load detection is independently allowed by the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.17. Moreover, full load detection of the cut staple and detection of the presence or absence of the cut staple storage unit 6Rf.sub.16, namely detection of the mounting/demounting of the cut staple storage unit 6Rf.sub.16, can be combined by the same detection part.
(838)
(839) The stapler 1Rf.sub.17 and a cut staple storage unit 6Rf.sub.17 are provided with the optical cut staple quantity detection unit 210R.sub.17 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.17 are present using whether or not the transmission of light is present.
(840) The cut staple quantity detection unit 210R.sub.17 is an example of cut staple full load detection unit, and is provided with a first light emitting unit 211R.sub.171 that emits light, and a first light receiving unit 212R.sub.171 that detects the light emitted from the first light emitting unit 211R.sub.171. In addition, the cut staple quantity detection unit 210R.sub.17 is provided with a second light emitting unit 211R.sub.172 that emits light, and a second light receiving unit 212R.sub.172 that detects the light emitted from the second light emitting unit 211R.sub.172.
(841) The first light emitting unit 211R.sub.171 and the second light emitting unit 211R.sub.172 are provided on a back surface of the stapler 1Rf.sub.17 such that a light emitting direction is directed to a lateral inside of the stapler 1Rf.sub.17. The first light emitting unit 211R.sub.171 is provided to face an outer lateral surface of one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.17 mounted on the stapler 1Rf.sub.17. The second light emitting unit 211R.sub.172 is provided to face an outer lateral surface of the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.17 mounted on the stapler 1Rf.sub.17.
(842) The first light receiving unit 212R.sub.171 and the second light receiving unit 212R.sub.172 are provided on the back surface of the stapler 1Rf.sub.17 such that a receiving direction of light is directed to a lateral outer side of the stapler 1Rf.sub.17. The first light receiving unit 212R.sub.171 is provided to face an inner lateral surface of one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.17 mounted on the stapler 1Rf.sub.17. The second light receiving unit 212R.sub.172 is provided to face an inner lateral surface of the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.17 mounted on the stapler 1Rf.sub.17.
(843) When the cut staple storage unit 6Rf.sub.17 is mounted on the stapler 1Rf.sub.17, the first light emitting unit 211R.sub.171 is transmitted through a window (not illustrated) of the one recovery passage 60R.sub.L, and faces the first light receiving unit 212R.sub.171. Thus, an optical path along which the light emitted from the first light emitting unit 211R.sub.171 is incident upon the first light receiving unit 212R.sub.171 through the one recovery passage 60R.sub.L is formed.
(844) When the cut staple storage unit 6Rf.sub.17 is mounted on the stapler 1Rf.sub.17, the second light emitting unit 211R.sub.172 is transmitted through a window (not illustrated) of the other recovery passage 60R.sub.R, and faces the second light receiving unit 212R.sub.172. Thus, an optical path along which the light emitted from the second light emitting unit 211R.sub.172 is incident upon the second light receiving unit 212R.sub.172 through the other recovery passage 60R.sub.R is formed.
(845) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.17 will be described. When the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.17 at the cut staple quantity detection unit 210R.sub.17, the light emitted from the first light emitting unit 211R.sub.171 is incident upon the first light receiving unit 212R.sub.171 through the one recovery passage 60R.sub.L. The light emitted from the second light emitting unit 211R.sub.172 is incident upon the second light receiving unit 212R.sub.172 through the other recovery passage 60R.sub.R.
(846) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.17, the light emitted from the first light emitting unit 211R.sub.171 is obstructed on its optical path by the cut staple, and is not incident upon the first light receiving unit 212R.sub.171. When the cut staple of the amount that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.17, the light emitted from the second light emitting unit 211R.sub.172 is obstructed on its optical path by the cut staple, and is not incident upon the second light receiving unit 212R.sub.172.
(847) Thus, at the cut staple quantity detection unit 210R.sub.17, the light emitted from the first light emitting unit 211R.sub.171 is detected by the first light receiving unit 212R.sub.171, and the light emitted from the second light emitting unit 211R.sub.172 is detected by the second light receiving unit 212R.sub.172. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.17 is not fully loaded.
(848) The light emitted from the first light emitting unit 211R.sub.171 is not detected by the first light receiving unit 212R.sub.171, or the light emitted from the second light emitting unit 211R.sub.172 is not detected by the second light receiving unit 212R.sub.172. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.17 is fully loaded.
(849) At the cut staple quantity detection unit 210R.sub.17, the full load detection is independently allowed by the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.17.
(850)
(851) The stapler 1Rf.sub.18 has one discharge passage 33R that communicates with a cut part (not illustrated) and extends rearwards. When a cut staple storage unit 6Rf.sub.18 is mounted on the stapler 1Rf.sub.18, one recovery passage 60R.sub.C communicating with the discharge passage 33R is provided at the center in a width direction. In the stapler 1Rf.sub.18, a discharge port 34R.sub.C of the discharge passage 33R and a recovery port 61R.sub.C of the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.18 communicate with each other.
(852) The stapler 1Rf.sub.18 and the cut staple storage unit 6Rf.sub.18 are provided with the optical cut staple quantity detection unit 210R.sub.18 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.18 are present using whether or not the transmission of light is present.
(853) The cut staple quantity detection unit 210R.sub.18 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.18 that emits light, and a light receiving unit 212R.sub.18 that detects the light emitted from the light emitting unit 211R.sub.18.
(854) The light emitting unit 211R.sub.18 is provided on a back surface of the stapler 1Rf.sub.18 such that a light emitting direction is directed to the rear of the stapler 1Rf.sub.18. The light emitting unit 211R.sub.18 is provided to face the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.18 mounted on the stapler 1Rf.sub.18.
(855) The light receiving unit 212R.sub.18 is provided on the back surface of the stapler 1Rf.sub.18 such that a receiving direction of light is directed to the front of the stapler 1Rf.sub.18. The light receiving unit 212R.sub.18 is provided for the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.18.
(856) When the cut staple storage unit 6Rf.sub.18 is mounted on the stapler 1Rf.sub.18, the light emitting unit 211R.sub.18 is transmitted through a window (not illustrated) of the recovery passage 60R.sub.C, and faces the light receiving unit 212R.sub.18. Thereby, an optical path along which the light emitted from the light emitting unit 211R.sub.18 is incident upon the light receiving unit 212R.sub.18 through the recovery passage 60R.sub.C is formed.
(857) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.18 will be described. When the cut staple storage unit 6Rf.sub.18 is mounted on the stapler 1Rf.sub.18, and when the amount of cut staple that reaches a full load detection position of the recovery passage 60R.sub.C are not stored in the cut staple storage unit 6Rf.sub.18, the light emitted from the light emitting unit 211R.sub.18 is incident upon the light receiving unit 212R.sub.18 through the recovery passage 60R.sub.C.
(858) In contrast, when the cut staple of the amount that reaches the full load detection position of the recovery passage 60R.sub.C are stored in the cut staple storage unit 6Rf.sub.18, the light emitted from the light emitting unit 211R.sub.18 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.18.
(859) Thus, at the cut staple quantity detection unit 210R.sub.18, the light emitted from the light emitting unit 211R.sub.18 is detected by the light receiving unit 212R.sub.18. Thereby, it is detected that the cut staple storage unit 6Rf.sub.18 is mounted on the stapler 1Rf.sub.18, and that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.18 is not fully loaded.
(860) In addition, the light emitted from the light emitting unit 211R.sub.18 is not detected by the light receiving unit 212R.sub.18, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.18 is fully loaded. Further, the light emitted from the light emitting unit 211R.sub.18 is not detected by the light receiving unit 212R.sub.18, and thereby it is detected that the cut staple storage unit 6Rf.sub.18 is not mounted on the stapler 1Rf.sub.18.
(861) At the cut staple quantity detection unit 210R.sub.18, full load detection of the cut staple and detection of the presence or absence of the cut staple storage unit 6Rf.sub.18, namely detection of the mounting/demounting of the cut staple storage unit 6Rf.sub.8, can be combined by the same detection part. When the cut staple storage unit 6Rf.sub.8 is demounted from the stapler 1Rf.sub.8, a staple cartridge 100A cannot be mounted/demounted on/from the stapler 1Rf.sub.18. Thereby, the cut staple can be recovered according to a timing when the staple cartridge 100A is mounted and demounted.
(862)
(863) A staple cartridge 100H is configured such that a refill 104Ha in which a staple sheet (not illustrated) is contained can be mounted or demounted, and the refill 104Ha is provided with a cut staple storage unit 6Rf.sub.19. The cut staple storage unit 6Rf.sub.19 is provided with a lid 63Ha, which opens/closes a recovery port communicating with a discharge port 33H on an upper surface of the refill 104Ha.
(864) In a state in which the staple cartridge 100H is not mounted on the stapler 1Rf.sub.19, the recovery port is closed by the lid 63Ha. Therefore, in a state in which the staple cartridge 100H is demounted from the stapler 1Rf.sub.19, stored cut staple are inhibited from being casually discharged to the outside.
(865) In contrast, when the staple cartridge 100H is mounted on the stapler 1Rf.sub.19, the lid 63Ha pushed by the discharge passage 33H is open, and the discharge passage 33H and the cut staple storage unit 6Rf.sub.19 communicate with each other.
(866) The stapler 1Rf.sub.19 and the cut staple storage unit 6Rf.sub.19 are provided with the optical cut staple quantity detection unit 210R.sub.19 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.19 are present using whether or not the transmission of light is present.
(867) The cut staple quantity detection unit 210R.sub.19 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.19 that emits light, and a light receiving unit 212R.sub.19 that detects the light emitted from the light emitting unit 211R.sub.19.
(868) The light emitting unit 211R.sub.19 is provided for the stapler 1Rf.sub.19 such that a light emitting direction is directed to an inner side of the stapler 1Rf.sub.19. The light emitting unit 211R.sub.19 is provided to face one lateral surface of the cut staple storage unit 6Rf.sub.19 of the staple cartridge 100H mounted on the stapler 1Rf.sub.19.
(869) The light receiving unit 212R.sub.19 is provided for the stapler 1Rf.sub.19 such that a receiving direction of light is directed to the inner side of the stapler 1Rf.sub.19. The light receiving unit 212R.sub.19 is provided to face the other lateral surface of the cut staple storage unit 6Rf.sub.19 of the staple cartridge 100H mounted on the stapler 1Rf.sub.19.
(870) When the cut staple storage unit 6Rf.sub.19 is mounted on the stapler 1R.sub.19, the light emitting unit 211R.sub.19 is transmitted through a window (not illustrated) of the cut staple storage unit 6Rf.sub.19 of the staple cartridge 100H. Thereby, an optical path along with the light emitted from the light emitting unit 211R.sub.19 is incident upon the light receiving unit 212R.sub.19 through the cut staple storage unit 6Rf.sub.19 is formed.
(871) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.19 will be described. When the cut staple storage unit 6Rf.sub.19 is mounted on the stapler 1Rf.sub.9, and when the amount of cut staple that reaches a full load detection position are not stored in the cut staple storage unit 6Rf.sub.19, the light emitted from the light emitting unit 211R.sub.19 is incident upon the light receiving unit 212R.sub.19 through the cut staple storage unit 6Rf.sub.19.
(872) In contrast, when the cut staple of the amount that reaches the full load detection position are stored in the cut staple storage unit 6Rf.sub.19, the light emitted from the light emitting unit 211R.sub.19 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.19.
(873) Thus, at the cut staple quantity detection unit 210R.sub.19, the light emitted from the light emitting unit 211R.sub.19 is detected by the light receiving unit 212R.sub.19, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.19 is not fully loaded.
(874) The light emitted from the light emitting unit 211R.sub.19 is not detected by the light receiving unit 212R.sub.19, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.19 is fully loaded.
(875) At the cut staple quantity detection unit 210R.sub.19, since the cut staple storage unit 6Rf.sub.19 and the staple cartridge 100H are integrally mounted/demounted on/from the stapler 1Rf.sub.19, the cut staple can be recovered according to a timing when the staple cartridge 100H is mounted/demounted.
(876)
(877) The stapler 1Rf.sub.20 and a cut staple storage unit 6Rf.sub.20 are provided with the optical cut staple quantity detection unit 210R.sub.20 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.20 are present using whether or not the transmission of light is present.
(878) The cut staple quantity detection unit 210R.sub.20 is an example of cut staple full load detection unit, and is provided with a first light emitting unit 211R.sub.201 that emits light, and a first light receiving unit 212R.sub.201 that detects the light emitted from the first light emitting unit 211R.sub.201. In addition, the cut staple quantity detection unit 210R.sub.20 is provided with a second light emitting unit 211R.sub.202 that emits light, and a second light receiving unit 212R.sub.202 that detects the light emitted from the second light emitting unit 211R.sub.202.
(879) The first light emitting unit 211R.sub.201 and the first light receiving unit 212R.sub.201 are configured as one unit. The first light emitting unit 211R.sub.201 is provided on a back surface of the stapler 1Rf.sub.20 such that a light emitting direction is directed to an inner side of the stapler 1Rf.sub.20, and the first light receiving unit 212R.sub.201 is provided on the back surface of the stapler 1Rf.sub.20 such that a receiving direction of light is directed to an outer side of the stapler 1Rf.sub.20.
(880) The first light emitting unit 211R.sub.201 is provided to face an outer lateral surface of one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.20 mounted on the stapler 1Rf.sub.20. In addition, the first light receiving unit 212R.sub.201 is provided to face an inner lateral surface of the one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.20.
(881) The second light emitting unit 211R.sub.202 and the second light receiving unit 212R.sub.202 are configured as one unit. The second light emitting unit 211R.sub.202 is provided on the back surface of the stapler 1Rf.sub.20 such that the light emitting direction is directed to the inner side of the stapler 1Rf.sub.20, and the second light receiving unit 212R.sub.202 is provided on the back surface of the stapler 1Rf.sub.20 such that the receiving direction of light is directed to the outer side of the stapler 1Rf.sub.20.
(882) The second light emitting unit 211R.sub.202 is provided to face an outer lateral surface of the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.20 mounted on the stapler 1Rf.sub.20. In addition, the second light receiving unit 212R.sub.202 is provided to face an inner lateral surface of the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.20.
(883) When the cut staple storage unit 6Rf.sub.20 is mounted on the stapler 1Rf.sub.20, the first light emitting unit 211R.sub.201 is transmitted through a window (not illustrated) of the one recovery passage 60R.sub.L, and faces the first light receiving unit 212R.sub.201. Thereby, an optical path along which the light emitted from the first light emitting unit 211R.sub.201 is incident upon the first light receiving unit 212R.sub.201 through the one recovery passage 60R.sub.L is formed.
(884) When the cut staple storage unit 6Rf.sub.20 is mounted on the stapler 1Rf.sub.20, the second light emitting unit 211R.sub.202 is transmitted through a window (not illustrated) of the other recovery passage 60R.sub.R, and faces the second light receiving unit 212R.sub.202. Thereby, an optical path along which the light emitted from the second light emitting unit 211R.sub.202 is incident upon the second light receiving unit 212R.sub.202 through the other recovery passage 60R.sub.R is formed.
(885) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.20 will be described. When the cut staple storage unit 6Rf.sub.20 is mounted on the stapler 1Rf.sub.20, and when the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.20, the light emitted from the first light emitting unit 211R.sub.201 is incident upon the first light receiving unit 212R.sub.201 through the one recovery passage 60R.sub.L. In addition, the light emitted from the second light emitting unit 211R.sub.202 is incident upon the second light receiving unit 212R.sub.202 through the other recovery passage 60R.sub.R.
(886) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.20, the light emitted from the first light emitting unit 211R.sub.201 is obstructed on its optical path by the cut staple, and is not incident upon the first light receiving unit 212R.sub.201. When the cut staple of the amount that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.20, the light emitted from the second light emitting unit 211R.sub.202 is obstructed on its optical path by the cut staple, and is not incident upon the second light receiving unit 212R.sub.202.
(887) Thus, at the cut staple quantity detection unit 210R.sub.20, the light emitted from the first light emitting unit 211R.sub.201 is detected by the first light receiving unit 212R.sub.201, and the light emitted from the second light emitting unit 211R.sub.202 is detected by the second light receiving unit 212R.sub.202. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.20 is not fully loaded.
(888) The light emitted from the first light emitting unit 211R.sub.201 is not detected by the first light receiving unit 212R.sub.201, or the light emitted from the second light emitting unit 211R.sub.202 is not detected by the second light receiving unit 212R.sub.202. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.20 is fully loaded.
(889) At the cut staple quantity detection unit 210R.sub.20, the full load detection is independently allowed by the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.20.
(890)
(891) The stapler 1Rf.sub.21 has one discharge passage 33R that communicates with a cut part (not illustrated) and extends rearwards. When a cut staple storage unit 6Rf.sub.21 is mounted on the stapler 1Rf.sub.21, one recovery passage 60R.sub.C communicating with the discharge passage 33R is provided at the center in a width direction. In the stapler 1Rf.sub.21, a discharge port 34R.sub.C of the discharge passage 33R and a recovery port 61R.sub.C of the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.21 communicate with each other.
(892) The stapler 1Rf.sub.21 and the cut staple storage unit 6Rf.sub.21 are provided with the optical cut staple quantity detection unit 210R.sub.21 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.21 are present using whether or not the transmission of light is present.
(893) The cut staple quantity detection unit 210R.sub.21 is an example of cut staple full load detection unit, and is provided with a light emitting unit 211R.sub.21 that emits light, and a light receiving unit 212R.sub.21 that detects the light emitted from the light emitting unit 211R.sub.21.
(894) The light emitting unit 211R.sub.21 and the light receiving unit 212R.sub.21 are configured as one unit. The light emitting unit 211R.sub.21 is provided on a back surface of the stapler 1Rf.sub.21 such that a light emitting direction is directed to an inner side of the stapler 1Rf.sub.21, and the light receiving unit 212R.sub.21 is provided on the back surface of the stapler 1Rf.sub.21 such that a receiving direction of light is directed to an outer side of the stapler 1Rf.sub.2.
(895) The light emitting unit 211R.sub.21 is provided to face one lateral surface of the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.21 mounted on the stapler 1Rf.sub.21. In addition, the light receiving unit 212R.sub.21 is provided to face the other lateral surface of the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.21.
(896) When the cut staple storage unit 6Rf.sub.21 is mounted on the stapler 1Rf.sub.21, the light emitting unit 211R.sub.21 is transmitted through a window (not illustrated) of the recovery passage 60R.sub.C, and faces the light receiving unit 212R.sub.21. Thereby, an optical path along which the light emitted from the light emitting unit 211R.sub.21 is incident upon the light receiving unit 212R.sub.21 through the recovery passage 60R.sub.C is formed.
(897) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.21 will be described. When the cut staple storage unit 6Rf.sub.21 is mounted on the stapler 1Rf.sub.21, and when the amount of cut staple that reaches a full load detection position of the recovery passage 60R.sub.C are not stored in the cut staple storage unit 6Rf.sub.21, the light emitted from the light emitting unit 211R.sub.21 is incident upon the light receiving unit 212R.sub.21 through the recovery passage 60R.sub.C.
(898) In contrast, when the amount of cut staple that reaches the full load detection position of the recovery passage 60R.sub.C are stored in the cut staple storage unit 6Rf.sub.21, the light emitted from the light emitting unit 211R.sub.21 is obstructed on its optical path by the cut staple, and is not incident upon the light receiving unit 212R.sub.21.
(899) Thus, at the cut staple quantity detection unit 210R.sub.21, the light emitted from the light emitting unit 211R.sub.21 is detected by the light receiving unit 212R.sub.21, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.21 is not fully loaded.
(900) In addition, the light emitted from the light emitting unit 211R.sub.21 is not detected by the light receiving unit 212R.sub.21, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.21 is fully loaded.
(901) At the cut staple quantity detection unit 210R.sub.21, when the cut staple storage unit 6Rf.sub.21 is demounted from the stapler 1Rf.sub.21, a staple cartridge 100A cannot be mounted and demounted on/from the stapler 1Rf.sub.21. Thereby, the cut staple can be recovered according to a timing when the staple cartridge 100A is mounted and demounted.
(902) <Modified Example Using a Reflective Optical Sensor>
(903)
(904) The stapler 1Rf.sub.22 and a cut staple storage unit 6Rf.sub.22 are provided with the optical cut staple quantity detection unit 210R.sub.22 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.22 are present using whether or not the transmission of light is present.
(905) The cut staple quantity detection unit 210R.sub.22 is an example of cut staple full load detection unit, and is provided with a first light receiving/emitting unit 211R.sub.221 that receives/emits light, and a second light receiving/emitting unit 211R.sub.222 that receives/emits light. The first light receiving/emitting unit 211R.sub.221 and the second light receiving/emitting unit 211R.sub.222 are reflective optical sensors, and are provided with a light-emitting element (not illustrated) and a light-receiving element (not illustrated) that receives reflected light reflected from the light-emitting element.
(906) The first light receiving/emitting unit 211R.sub.221 and the second light receiving/emitting unit 211R.sub.222 are provided on a back surface of the stapler 1Rf.sub.22 such that emitting and receiving directions of light are directed to the rear of the stapler 1Rf.sub.22. The first light receiving/emitting unit 211R.sub.221 is provided to face one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.22 mounted on the stapler 1Rf.sub.22. In addition, the second light receiving/emitting unit 211R.sub.222 is provided to face the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.22 mounted on the stapler 1Rf.sub.22.
(907) When the cut staple storage unit 6Rf.sub.22 is mounted on the stapler 1Rf.sub.22, the first light receiving/emitting unit 211R.sub.221 faces a window (not illustrated) of the one recovery passage 60RL. Thereby, an optical path along which the light emitted from the first light receiving/emitting unit 211R.sub.221 is reflected on the cut staple that are irradiation targets loaded on the one recovery passage 60R.sub.L and is incident upon the first light receiving/emitting unit 211R.sub.221 is formed.
(908) When the cut staple storage unit 6Rf.sub.22 is mounted on the stapler 1Rf.sub.22, the second light receiving/emitting unit 211R.sub.222 faces a window (not illustrated) of the other recovery passage 60R.sub.R. Thereby, an optical path along which the light emitted from the second light receiving/emitting unit 211R.sub.222 is reflected on the cut staple that are irradiation targets loaded on the other recovery passage 60R.sub.R and is incident upon the second light receiving/emitting unit 211R.sub.222 is formed.
(909) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.22 will be described. When the cut staple storage unit 6Rf.sub.22 is mounted on the stapler 1Rf.sub.22, and when the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.22, the light emitted from the first light receiving/emitting unit 211R.sub.221 is not reflected by the cut staple, and is not incident upon the first light receiving/emitting unit 211R.sub.221. The light emitted from the second light receiving/emitting unit 211R.sub.222 is not reflected by the cut staple, and is not incident upon the second light receiving/emitting unit 211R.sub.222.
(910) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.22, the light emitted from the first light receiving/emitting unit 211R.sub.221 is reflected by the cut staple, and is incident upon the first light receiving/emitting unit 211R.sub.221. When the cut staple of the amount that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.22, the light emitted from the second light receiving/emitting unit 211R.sub.222 is reflected by the cut staple, and is incident upon the second light receiving/emitting unit 211R.sub.222.
(911) Thus, at the cut staple quantity detection unit 210R.sub.22, the light emitted from the first light receiving/emitting unit 211R.sub.221 is not detected by the first light receiving/emitting unit 211R.sub.221, and the light emitted from the second light receiving/emitting unit 211R.sub.222 is not detected by the second light receiving/emitting unit 211R.sub.222. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.22 is not fully loaded.
(912) The light emitted from the first light receiving/emitting unit 211R.sub.221 is detected by the first light receiving/emitting unit 211R.sub.221, or the light emitted from the second light receiving/emitting unit 211R.sub.222 is detected by the second light receiving/emitting unit 211R.sub.222. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.22 is fully loaded.
(913) At the cut staple quantity detection unit 210R.sub.22, the full load detection is independently allowed by the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.22.
(914)
(915) The stapler 1Rf.sub.23 has one discharge passage 33R that communicates with a cut part (not illustrated) and extends rearwards. When a cut staple storage unit 6Rf.sub.23 is mounted on the stapler 1Rf.sub.23, one recovery passage 60R.sub.C communicating with the discharge passage 33R is provided at the center in a width direction. In the stapler 1Rf.sub.23, a discharge port 34R.sub.C of the discharge passage 33R and a recovery port 61R.sub.C of the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.23 communicate with each other.
(916) The stapler 1Rf.sub.23 and the cut staple storage unit 6Rf.sub.23 are provided with the optical cut staple quantity detection unit 210R.sub.23 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.3 are present using whether or not the transmission of light is present.
(917) The cut staple quantity detection unit 210R.sub.23 is an example of cut staple full load detection unit, and is provided with a light receiving/emitting unit 211R.sub.23 that receives/emits light. The light receiving/emitting unit 211R.sub.23 is a reflective optical sensor, and is provided with a light-emitting element (not illustrated), and a light-receiving element (not illustrated) that receives reflected light reflected from the light-emitting element.
(918) The light receiving/emitting unit 211R.sub.23 is provided on a back surface of the stapler 1Rf.sub.23 such that emitting and receiving directions of light are directed to the rear of the stapler 1Rf.sub.23. The light receiving/emitting unit 211R.sub.23 is provided to face the recovery passage 60R.sub.C of the cut staple storage unit 6Rf.sub.2 mounted on the stapler 1Rf.sub.23.
(919) When the cut staple storage unit 6Rf.sub.23 is mounted on the stapler 1Rf.sub.23, the light receiving/emitting unit 211R.sub.23 faces a window (not illustrated) of the recovery passage 60R.sub.C. Thereby, an optical path along which the light emitted from the light receiving/emitting unit 211R.sub.23 is reflected on the cut staple loaded on the recovery passage 60R.sub.C and is incident upon the light receiving/emitting unit 211R.sub.23 is formed.
(920) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.23 will be described. When the cut staple storage unit 6Rf.sub.23 is mounted on the stapler 1Rf.sub.23, and when the amount of cut staple that reaches a full load detection position of the recovery passage 60R.sub.C are not stored in the cut staple storage unit 6Rf.sub.23, the light emitted from the light receiving/emitting unit 211R.sub.23 is not reflected by the cut staple, and is not incident upon the light receiving/emitting unit 211R.sub.23.
(921) In contrast, when the cut staple of the amount that reaches the full load detection position of the recovery passage 60R.sub.C are stored in the cut staple storage unit 6Rf.sub.23, the light emitted from the light receiving/emitting unit 211R.sub.23 is reflected by the cut staple, and is incident upon the light receiving/emitting unit 211R.sub.23.
(922) Thus, at the cut staple quantity detection unit 210R.sub.23, the light emitted from the light receiving/emitting unit 211R.sub.23 is not detected by the light receiving/emitting unit 211R.sub.23, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.23 is not fully loaded.
(923) The light emitted from the light receiving/emitting unit 211R.sub.23 is detected by the light receiving/emitting unit 211R.sub.23, and thereby it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.23 is fully loaded.
(924) At the cut staple quantity detection unit 210R.sub.23, when the cut staple storage unit 6Rf.sub.3 is demounted from the stapler 1Rf.sub.23, a staple cartridge 100A cannot be mounted and demounted on/from the stapler 1Rf.sub.23. Thereby, the cut staple can be recovered according to a timing when the staple cartridge 100A is mounted and demounted.
(925)
(926) The stapler 1Rf.sub.24 and a cut staple storage unit 6Rf.sub.24 are provided with the optical cut staple quantity detection unit 210R.sub.24 that detects whether or not a given amount of cut staple stored in the cut staple storage unit 6Rf.sub.24 are present using whether or not the transmission of light is present.
(927) The cut staple quantity detection unit 210R.sub.24 is an example of cut staple full load detection unit, and is provided with a first light receiving/emitting unit 211R.sub.241 that receives/emits light, and a second light receiving/emitting unit 212R.sub.242 that receives/emits light. The first light receiving/emitting unit 211R.sub.241 and the second light receiving/emitting unit 211R.sub.242 are reflective optical sensors, and are provided with a light-emitting element (not illustrated) and a light-receiving element (not illustrated) that receives reflected light reflected from the light-emitting element.
(928) The first light receiving/emitting unit 211R.sub.241 and the second light receiving/emitting unit 211R.sub.242 are provided on a back surface of the stapler 1Rf.sub.24 such that emitting and receiving directions of light are directed to an outer side of the stapler 1Rf.sub.24. The first light receiving/emitting unit 211R.sub.241 is provided to face an inner lateral surface of one recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.24 mounted on the stapler 1Rf.sub.24. In addition, the second light receiving/emitting unit 211R.sub.242 is provided to face an inner lateral surface of the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.24 mounted on the stapler 1Rf.sub.24.
(929) When the cut staple storage unit 6Rf.sub.24 is mounted on the stapler 1Rf.sub.24, the first light receiving/emitting unit 211R.sub.241 faces a window (not illustrated) of the one recovery passage 60R.sub.L. Thereby, an optical path along which the light emitted from the first light receiving/emitting unit 211R.sub.241 is reflected on the cut staple that are irradiation targets loaded on the one recovery passage 60R.sub.L and is incident upon the first light receiving/emitting unit 211R.sub.241 is formed.
(930) When the cut staple storage unit 6Rf.sub.24 is mounted on the stapler 1Rf.sub.24, the second light receiving/emitting unit 211R.sub.242 faces a window (not illustrated) of the other recovery passage 60R.sub.R. Thereby, an optical path along which the light emitted from the second light receiving/emitting unit 211R.sub.242 is reflected on the cut staple that are irradiation targets loaded on the other recovery passage 60R.sub.R and is incident upon the second light receiving/emitting unit 211R.sub.242 is formed.
(931) Next, an example of operation and effects of the cut staple quantity detection unit 210R.sub.24 will be described. When the cut staple storage unit 6Rf.sub.24 is mounted on the stapler 1Rf.sub.24, and when the amount of cut staple that reaches a full load detection position of the one recovery passage 60R.sub.L and a full load detection position of the other recovery passage 60R.sub.R are not stored in the cut staple storage unit 6Rf.sub.24, the light emitted from the first light receiving/emitting unit 211R.sub.241 is not reflected by the cut staple, and is not incident upon the first light receiving/emitting unit 211R.sub.241. The light emitted from the second light receiving/emitting unit 211R.sub.242 is not reflected by the cut staple, and is not incident upon the second light receiving/emitting unit 211R.sub.242.
(932) In contrast, when the cut staple of the amount that reaches the full load detection position of the one recovery passage 60R.sub.L are stored in the cut staple storage unit 6Rf.sub.24, the light emitted from the first light receiving/emitting unit 211R.sub.241 is reflected by the cut staple, and is incident upon the first light receiving/emitting unit 211R.sub.241. When the cut staple of the amount that reaches the full load detection position of the other recovery passage 60R.sub.R are stored in the cut staple storage unit 6Rf.sub.24, the light emitted from the second light receiving/emitting unit 211R.sub.242 is reflected by the cut staple, and is incident upon the second light receiving/emitting unit 211R.sub.242.
(933) Thus, at the cut staple quantity detection unit 210R.sub.24, the light emitted from the first light receiving/emitting unit 211R.sub.241 is not detected by the first light receiving/emitting unit 211R.sub.241, and the light emitted from the second light receiving/emitting unit 211R.sub.242 is not detected by the second light receiving/emitting unit 211R.sub.242. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.24 is not fully loaded.
(934) The light emitted from the first light receiving/emitting unit 211R.sub.241 is detected by the first light receiving/emitting unit 211R.sub.241, or the light emitted from the second light receiving/emitting unit 211R.sub.242 is detected by the second light receiving/emitting unit 211R.sub.242. Thereby, it is detected that the amount of the cut staple stored in the cut staple storage unit 6Rf.sub.24 is fully loaded.
(935) At the cut staple quantity detection unit 210R.sub.24, the full load detection is independently allowed by the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.L of the cut staple storage unit 6Rf.sub.24.
(936) <Modified Example of the Post-Processing Apparatus of the Embodiment in which the Full Load Detection of the Cut Staple is Performed by the Optical Sensor>
(937)
(938) For example, in the configuration in which the stapler 1Rf.sub.1 or the like performing the full load detection of the cut staple is displaced as illustrated in
(939) Thus, an optical path along which the light emitted from the light emitting unit 211R.sub.1 is incident upon the light receiving unit 212R.sub.1 through the one recovery passage 60R.sub.L, the optical waveguide 213R.sub.1, and the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.1 is formed. Therefore, when the stapler 1Rf.sub.1 moves to the detection position Pp10, the full load detection of the cut staple is possible.
(940) In contrast, when the stapler 1Rf.sub.1 moves to a non-detection position Pp11, the stapler 1Rf.sub.1 is separated from the optical waveguide 213R.sub.1. Thus, the optical path for the full load detection is not formed, and the full load detection of the cut staple is not performed excepting the given detection position.
(941)
(942) For example, in the stapler 1Rf.sub.9 illustrated in
(943) The mounting member 507R is provided for a post-processing apparatus 502R.sub.2, and displaces the stapler 1Rf.sub.9 by driving a motor M as illustrated in
(944) The first optical waveguide 213R.sub.91 and the second optical waveguide 213R.sub.92 are provided for the post-processing apparatus 502R.sub.2. Thereby, it is not necessary to provide the optical waveguide for the cut staple storage unit 6Rf.sub.9.
(945)
(946) For example, in the stapler 1Rf.sub.17 illustrated in
(947) The mounting member 507R is provided for a post-processing apparatus 502R.sub.2, and displaces the stapler 1Rf.sub.17 by driving a motor M as illustrated in
(948)
(949) For example, in the stapler 1Rf.sub.10 illustrated in
(950) The mounting member 507R is provided for a post-processing apparatus 502R.sub.2, and displaces the stapler 1Rf.sub.10 by driving a motor M as illustrated in
(951) The first light emitting unit 211R.sub.101 and the first light receiving unit 212R.sub.101, and the second light emitting unit 211R.sub.102 and the second light receiving unit 212R.sub.102 are provided for the post-processing apparatus 502R.sub.2, and thereby it is not necessary to provide the light receiving and emitting parts for the stapler 1Rf.sub.10.
(952)
(953) When the stapler 1Rf.sub.25 moves to the detection position Pp10, the first light receiving/emitting unit 211R.sub.251 faces one recovery passage 60R.sub.L of a cut staple storage unit 6Rf.sub.25 mounted on the stapler 1Rf.sub.25. The second light receiving/emitting unit 211R.sub.252 faces the other recovery passage 60R.sub.R of the cut staple storage unit 6Rf.sub.25 mounted on the stapler 1Rf.sub.25.
(954) The first light receiving/emitting unit 211R.sub.251 faces a window (not illustrated) of the one recovery passage 60R.sub.L. Thereby, an optical path along which the light emitted from the first light receiving/emitting unit 211R.sub.251 is reflected on cut staple that are irradiation targets loaded on the one recovery passage 60R.sub.L and is incident upon the first light receiving/emitting unit 211R.sub.251 is formed. In addition, the second light receiving/emitting unit 211R.sub.252 faces a window (not illustrated) of the other recovery passage 60R.sub.R. Thereby, an optical path along which the light emitted from the second light receiving/emitting unit 211R.sub.252 is reflected on cut staple that are irradiation targets loaded on the other recovery passage 60R.sub.R and is incident upon the second light receiving/emitting unit 211R.sub.252 is formed. Therefore, when the stapler 1Rf.sub.25 moves to the detection position Pp10, full load detection of the cut staple is possible.
(955) In contrast, when the stapler 1Rf.sub.25 moves to a non-detection position Pp11, the stapler 1Rf.sub.25 is separated from the first light receiving/emitting unit 211R.sub.251 and the second light receiving/emitting unit 211R.sub.252. Thereby, the optical path for the full load detection is not formed, and the full load detection of the cut staple is not performed excepting the given detection position.
(956) At the post-processing apparatus 502R.sub.3, it is not necessary to provide the cut staple quantity detection unit for the stapler 1Rf.sub.25. The detection position Pp10 may be provided at a plurality of places. In this case, the first light receiving/emitting unit 211R.sub.251 and the second light receiving/emitting unit 211R.sub.252 are provided at each detection position Pp10.
(957)
(958) A post-processing apparatus 503R.sub.4 provides a light emitting unit 211R.sub.26 and a light receiving unit 212R.sub.26, which serve as a cut staple quantity detection unit 210R.sub.26, for a mounting member 507R on which a stapler 1Rf.sub.26 is mounted.
(959) When the stapler 1Rf.sub.26 is mounted on the mounting member 507R, the light emitting unit 211R.sub.26 faces a window (not illustrated) of one recovery passage 60R.sub.L of a cut staple storage unit 6Rf.sub.26 mounted on the stapler 1Rf.sub.26, and the light receiving unit 212R.sub.26 faces a window (not illustrated) of the other recovery passage 60R.sub.R. The light receiving unit 212R.sub.26 is provided in an optical path of light emitted from the light emitting unit 211R.sub.26. Thereby, an optical path along which the light emitted from the light emitting unit 211R.sub.26 is incident upon the light receiving unit 212R.sub.26 through the one recovery passage 60R.sub.L and the other recovery passage 60R.sub.R is formed.
(960) The mounting member 507R displaces the stapler 1Rf.sub.26 by driving a motor M as illustrated in
(961) The light emitting unit 211R.sub.26 and the light receiving unit 212R.sub.26 are provided for the post-processing apparatus 502R.sub.4, and thereby it is not necessary to provide the light receiving/emitting unit for the stapler 1Rf.sub.26.