Printing apparatus
10576746 ยท 2020-03-03
Assignee
Inventors
Cpc classification
B41J2/16538
PERFORMING OPERATIONS; TRANSPORTING
B41J2/16505
PERFORMING OPERATIONS; TRANSPORTING
B41J2/16511
PERFORMING OPERATIONS; TRANSPORTING
B41J2/16544
PERFORMING OPERATIONS; TRANSPORTING
B41J2002/16576
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A printing apparatus includes: a platen having a supporting surface configured to support a recording medium; a liquid droplet jetting head having a nozzle surface on which nozzles are open; a head moving unit configured to move the liquid droplet jetting head in a head movement area including a first area and a second area which is adjacent to the first area; a maintenance mechanism including a cap member configured to be movable in a cap movement area which includes a retracted position and a capping position and to cover the nozzles; a cap moving mechanism configured to move the cap member by utilizing movement of the liquid droplet jetting head form the first area to the second area; and a cap guiding mechanism configured to guide movement of the cap member in the cap movement area in an inclined direction.
Claims
1. A printing apparatus comprising: a carriage configured to hold a liquid droplet jetting head having a nozzle surface on which nozzles are open, and configured to move the liquid droplet jetting head in a first direction parallel to the nozzle surface; a platen configured to face a recording medium fed, by a feeder, in a second direction orthogonal to the first direction and parallel to the nozzle surface; a wiper configured to wipe the nozzle surface and further configured to be rotated around an axis extending in the second direction between a wiping position and a retracted position; and a wiper holder holding the wiper, wherein in a state that the wiper is positioned at the retracted position, the platen overlaps at least a part of the wiper holder in the second direction.
2. The printing apparatus according to claim 1, wherein the wiper is configured to pivot around a base end portion thereof.
3. The printing apparatus according to claim 1, further comprising: a cap configured to cover the nozzle surface and be spaced from the platen in the first direction.
4. The printing apparatus according to claim 1, further comprising: a linking member connected to the wiper holder holding the wiper and, based on a position of the carriage, moving the wiper around one end of the platen in the first direction between the wiping position and the retracted position.
5. The printing apparatus according to claim 1, further comprising: a linking member connected to the wiper holder holding the wiper and, based on a force transmitted to the wiper holder, moving the wiper around one end of the platen in the first direction between the wiping position and the retracted position.
6. The printing apparatus according to claim 1, wherein the platen has a plurality of ribs configured to support a recording medium, the plurality of ribs protruding in a third direction orthogonal to the nozzle surface, wherein in a state that the wiper is positioned at the wiping position, a front end portion of the wiper is positioned further from a bottom surface of the printing apparatus than front end portions of the plurality of ribs in the third direction, and wherein in a state that the wiper is positioned at the retracted position, the front end portions of the plurality of ribs are positioned further from the bottom surface of the printing apparatus than the front end portion of the wiper in the third direction.
7. The printing apparatus according to claim 1, wherein the platen comprises a supporting surface configured to support a recording medium, the supporting surface facing the nozzle surface in a third direction orthogonal to the nozzle surface.
8. The printing apparatus according to claim 1, wherein the wiper in the wiping position is orthogonal to the first direction.
9. The printing apparatus according to claim 1, wherein an inclination angle of the wiper at the retracted position relative to a third direction orthogonal to the nozzle surface is greater than an inclination angle of the wiper at the wiping position relative to the third direction.
10. A printing apparatus comprising: a carriage configured to hold a liquid droplet jetting head having a nozzle surface on which nozzles are open, and configured to move the liquid droplet jetting head in a first direction parallel to the nozzle surface; a platen configured to support a recording medium fed, by a feeder, in a second direction orthogonal to the first direction and parallel to the nozzle surface; and a wiper configured to wipe the nozzle surface and further configured to be rotated around an axis extending in the second direction between a wiping position and a retracted position, wherein in a state that the wiper is positioned at the retracted position, at least a part of the wiper is positioned in a projection of the platen in a third direction orthogonal to the nozzle surface.
11. A printing apparatus comprising: a carriage configured to hold a liquid droplet jetting head having a nozzle surface on which nozzles are open, and configured to move the liquid droplet jetting head in a first direction parallel to the nozzle surface; a platen configured to support a recording medium fed, by a feeder, in a second direction orthogonal to the first direction and parallel to the nozzle surface; and a wiper configured to wipe the nozzle surface and further configured to be rotated around an axis extending in the second direction between a wiping position and a retracted position, wherein in a state that the wiper is positioned at the retracted position, the platen overlaps at least a part of the wiper in a third direction orthogonal to the nozzle surface.
12. A printing apparatus comprising: a carriage configured to hold a liquid droplet jetting head having a nozzle surface on which nozzles are open, and configured to move the liquid droplet jetting head in a first direction parallel to the nozzle surface; a platen configured to support a recording medium fed, by a feeder, in a second direction orthogonal to the first direction and parallel to the nozzle surface; and a wiper configured to wipe the nozzle surface and further configured to be rotated around an axis extending in the second direction between a wiping position and a retracted position, wherein in a state that the wiper is positioned at the retracted position, a virtual line, which is parallel to a third direction orthogonal to the nozzle surface, intersects the wiper and the platen.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF EMBODIMENTS
(6) Exemplary embodiments of the present teaching will be described below while referring to the accompanying diagrams. Same reference numerals are assigned to components which are same in the diagrams, and repetitive description in detail of such components will be omitted.
First Embodiment
(7) As shown in
(8) In the specification, in a case that the printing apparatus is arranged appropriately on a horizontal surface, a first direction A is used as an example of a vertical direction in
(9) The platen 1 has a supporting surface 11 which supports a recording medium 10. The platen 1 has a plurality of ribs (not shown in the diagram), and a surface joining front ends of the plurality of ribs is the supporting surface 11. The platen 1 is held by a platen holder 12 which is fixed to the casing. A paper feeding roller (not shown in the diagram) for conveying a recording medium in the third direction C, and a paper discharge roller (not shown in the diagram) are installed on the platen holder 12. The liquid droplet jetting head 2 includes nozzles 13 which jet liquid droplets, and a nozzle surface 14 in which the nozzles 13 are open. The nozzle surface 14 is arranged to face the supporting surface 11 in the first direction A orthogonal to the supporting surface 11. The nozzle surface 14 is parallel to the supporting surface 11, and the first direction A is orthogonal also to the nozzle surface 14.
(10) The head moving unit 3 moves the liquid droplet jetting head 2 in the second direction B which is orthogonal to the first direction A in an area D in which the head is movable (hereinafter, head movement area D). The head movement area D includes an a print area D1 (a first area of the present teaching) at which the nozzle surface 14 faces the supporting surface 11 in the first direction A, and a home position D2 which is adjacent to the print area D1 in the second direction B. The home position D2 is located right side of the print area D1, in the second direction B.
(11) The head moving unit 3 includes a carriage 15 which holds the liquid droplet jetting head 2, a moving mechanism 16 which moves the carriage 15, and a motor 17 which drives the moving mechanism 16. The liquid droplet jetting head 2 is installed on a carriage 15 in a state that the nozzle surface 14 is exposed to face the supporting surface 11. A printing apparatus 100 is provided with a guide member (not shown in the diagram) which is installed on the platen holder 12, and which is extended in the second direction B over the head movement area D. The carriage 15 is slidably installed on the guide member. For example, the moving mechanism 16 includes two pulleys 16a and 16b separated apart in the second direction B, and a timing belt 16c which is put around the two pulleys 16a and 16b and which is engaged with the carriage 15, and the motor 17 drives one of the pulleys 16a and 16b to rotate. As the moving mechanism 16 is driven, the carriage 15 and the liquid droplet jetting head 2 which is held by the carriage 15 is moved in the left-right direction of the second direction B. In a case that the head movement area D is extended leftward in the second direction B, of the print area D1, a flushing receiver 18 may be arranged on a left side of the platen 1. The flushing receiver 18 receives liquid that is discharged from the nozzles 13 by a flushing process of preventing drying of a recording liquid inside the nozzles 13 by jetting liquid droplets periodically or on an irregular basis through the nozzles 13.
(12) During printing on the recording medium 10, the recording medium 10 is conveyed frontward in the third direction C on the supporting surface 11. The liquid droplet jetting head 2 jets liquid droplets from the nozzles 13, and makes the liquid droplets land on the recording medium 10 on the supporting surface 11. The printing apparatus 100 is an apparatus of a serial type, and the head moving unit 3 makes the liquid droplet jetting head 1 reciprocate leftward and rightward in the second direction B in the print area D1.
(13) In the present embodiment, the first direction A corresponds to a normal direction of the nozzle surface 14 and the supporting surface 11, or a direction in which the supporting surface 11 faces the nozzle surface 14. The second direction B corresponds to a movement direction of the liquid droplet jetting head 2 or a width direction of the platen 1 or the casing. The third direction C corresponds to a conveying direction of the recording medium 10. As the casing is placed appropriately on a horizontal flat surface, the nozzle surface 14 and the supporting surface 11 become horizontal, and the nozzle surface 14 may be arranged above the supporting surface 11. In this situation, the first direction A is vertical direction, and the second direction B and the third direction C form a horizontal surface.
(14) The cap member 4 is arranged in line with the platen 1 in the second direction B. In the present embodiment, the cap member 4 is arranged on the right side of the platen 1 since the home position D2 of the head movement area D is arranged on the right side of the print area D1. An exhaust air unit 19, which removes air bubbles entered into a liquid supply system (not shown in the diagram) for the liquid droplet jetting head 2, is attached to the liquid droplet jetting head 2. An exhaust opening of the exhaust air unit 19 opens in an exhaust air surface 20 which is adjacent to the nozzle surface 14. The exhaust air unit 19 is also installed on the carriage 15 in a state that the exhaust air surface 20 is exposed. The cap member 4 includes a nozzle cap 21 and an exhaust air cap 22. The nozzle cap 21 is capable of making a close contact with the nozzle surface 14, and the exhaust air cap 22 is capable of making a close contact with the exhaust air surface 20. The exhaust air surface 20 is arranged on the right side of the nozzle surface 14, and the exhaust air cap 22 is arranged on the right side of the nozzle cap 21.
(15) The liquid droplet jetting head 2 may jet two different types of recording liquids. In this case, the nozzles 13 are divided into a first nozzle group 13A that jets a first recording liquid and a second nozzle group 13B that jets a second recording liquid. The first recording liquid is, for example, a black ink and the second recording liquid is, for example, a color ink (such as a magenta ink, a cyan ink, and a yellow ink). In that case, the nozzle cap 21 includes a first cap 21A that covers only the first nozzle group 13A, and a second cap 21B that covers only the second nozzle group 13B.
(16) The cap guiding mechanism 5 guides the cap member 4 in an inclined direction E in the cap movement area. The nozzle surface 14 and the exhaust air surface 20 do not move actively in the first direction A. The inclined direction E is inclined with respect to the first direction A and the second direction B, and includes a component in the first direction A and a component in the second direction B. The cap movement area includes a retracted position and a capping position, and the capping position is set on the right side of the retracted position. The inclined direction E is inclined to rise from bottom left to top right and the capping position is set at an upper side of the retracted position. When the cap member 4 is positioned at the capping position, the cap member 4 can make a close contact with the nozzle surface 14 as aforementioned.
(17) For instance, the cap member 4 is held by a cap holder 23, and the cap holder 23 is supported by a cap base 24 which is fixed to the casing. The cap guiding mechanism 5 includes a plurality of pins 31a, 31b, 32a, and 32b provided for the cap holder 23, and a plurality of guide grooves 36a, 36b, 37a, and 37b formed in the cap base 24. The pins 31a, 31b, 32a, and 32b are fitted into the guide grooves 36a, 36b, 37a, and 37b respectively to be movable along the corresponding guide grooves 36a, 36b, 37a, and 37b. Accordingly, the cap holder 23 and the cap member 4 which is held by the cap holder 23 are movably supported by the cap base 24, and consequently supported by the casing.
(18) The cap base 24 includes a pair of guide walls 25a and 25b facing mutually in the third direction C. The cap holder 23 is arranged between the guide walls 25a and 25b. The cap holder 23 includes a surrounding wall 26 which surrounds the cap member 4, and the surrounding wall 26 includes a pair of side-wall portions 27a and 27b facing the pair of guide walls 25a and 25b respectively.
(19) As an example, the number of the pins is four and the number of the guide grooves is four. The two pins 31a and 32a are arranged on one side wall portion 27a to be isolated in the second direction B, and are projected in the third direction C from an outer surface of the side wall portion 27a. The remaining pins 31b and 32b are provided similarly on the other side wall portion 27b. The two guide grooves 36a and 37a are formed in one guide wall 25a to be isolated in the second direction B. The remaining two guide grooves 36b and 37b are formed similarly in the other guide wall 25b. The two pins 31a and 31b on the left side are arranged at same positions in the first direction A and the second direction B (in other words, overlapping with the third direction C). The two guide grooves 36a and 36b on the left side, the two pins 32a and 32b on the right side, and two guide grooves 37a and 37b on the right side are also arranged similarly.
(20) Each guide groove is extended in the inclined direction E. When each pin is positioned at a left-end portion in the second direction B in the corresponding groove, the cap member 4 is positioned at the retracted position (refer to solid lines in
(21) Since the side wall portions 27a and 27b face in proximity with the guide walls 25a and 25b respectively, the cap member 4 moves in the inclined direction E without changing a posture around an axis in the first direction A (for example, a virtual line extended in the first direction A and passing through a center of gravity of the cap member 4). Since the guide grooves separated apart in the third direction C have same shape, the cap member 4 moves in the inclined direction E without changing the posture around an axis of the second direction B (for example, a virtual line extended in the second direction B and passing through the center of gravity of the cap member 4). Since the guide grooves separated apart in the second direction B have same shape, the cap member 4 moves in the inclined direction E without changing the posture around an axis of the third direction C (for example, a virtual line extended in the third direction C and passing through the center of gravity of the cap member 4).
(22) A bias is applied to the cap member 4 at the retracted position by a bias applying member (not shown in the diagram). For instance, a bias applying member 28 includes a coil spring, with one end thereof engaged with the cap holder 23, and the other end thereof engaged with the cap base 24. For instance, in this embodiment, the pressed portion 6 is integrated with the cap holder 23, and is projected upward from a right-end portion of the cap holder 23. However, the pressed portion 6 may be provided for the cap member 4.
(23) The wiper member 7 is connected to a drive mechanism which is not shown in the diagram, and moves in the front-rear direction which is the third direction C. As shown in
(24) During printing, the cap member 4 is positioned at the retracted position by an action of the bias applying member 28. When the cap member 4 is positioned at the retracted position, the cap member 4 is separated apart from the nozzle surface 14 in the first direction A. The pressed portion 6 is separated rightward from the platen 1, and overlaps with the liquid droplet jetting head 2 in the second direction B.
(25) As the printing is completed, the head moving unit 3 moves the liquid droplet jetting head 2 from the print area D1 to the home position D2. The motor 17 generates the driving force. The liquid droplet jetting head 2 moves rightward due to the driving force generated. In the process of moving the liquid droplet jetting head 2, the head moving unit 3 (for example, the carriage 15) abuts against the pressed portion 6, and the pressing force is applied from the head moving unit 3 to the pressed portion 6. The pressing force is derived from the driving force generated by the motor 17, and is directed in a movement direction of the liquid droplet jetting head 2 and the carriage 15, or in other words, is directed rightward. The cap member 4 is guided by the cap guiding mechanism 5 in the inclined direction E from the retracted position to the capping position due to the pressing force, while resisting the bias applied by the bias applying member 28. Since the inclined direction E includes the component in the second direction B and the cap member 4 is moved in the inclined direction E, the liquid droplet jetting head 2 is capable of continuing to move rightward even after abutting against the pressed portion 6.
(26) As the liquid droplet jetting head 2 reaches the home position D2, the cap member 4 is positioned at the capping position, and makes a close contact with the nozzle surface 14. In the present embodiment, the nozzle cap 21 makes a close contact with the nozzle surface 14, and the exhaust air cap 22 makes a close contact with the exhaust air surface 20. The nozzle cap 21 has a lip 21a which forms a closed loop, and the lip 21a makes a close contact with an outer side of an area of the nozzle surface 14 in which the nozzles are formed (refer to alternate long and two short dashes lines in
(27) In a case of starting printing, as a part of preparation thereof, the head moving unit 3 moves the liquid droplet jetting head 2 from the home position D2 to the print area D1. At this time, the carriage 15 and the liquid droplet jetting head 2 held by the carriage 15 move leftward. As the liquid droplet jetting head 2 moves, since the bias applied by the bias applying member 28 cannot be received by the head moving unit 3, the cap member 4 is guided by the cap guiding mechanism 5 from the capping position to the retracted position due to the bias applied. As the liquid droplet jetting head 2 starts moving, the close contact between the cap member 4 and the nozzle surface 14 is resolved immediately, and the liquid droplet jetting head 2 is capable of moving smoothly toward the print area D1.
(28) The cap member 4 is capable of moving from the retracted position away from the nozzle surface 14 to the capping position of making a close contact with the nozzle surface 14 by the driving force that drives the liquid droplet jetting head 2. Since such arrangement enables to omit a dedicated motor for moving the cap member 4 from the printing apparatus 100, an arrangement of the printing apparatus 100 becomes simple.
(29) As shown in
(30) The platen 1, as aforementioned, is held by the platen holder 12. In the present embodiment, the platen holder 12 has a side wall 12a engaged with a right-end edge of the platen 1. The side wall 12a of the platen holder 12 is extended downward from the right-end edge of the platen 1. The accommodating space 40 is defined by an outer surface of the side wall 12a.
(31) The side wall 12a is bent leftward to overlap with the platen 1 in the first direction A. Accordingly, the accommodating space 40 is formed to expand leftward, and the accommodating space 40 also overlaps with the supporting surface 11 of the platen 1 in the first direction A. Since the cap member 4 is accommodated in such accommodating space 40, the cap member 4 overlaps with the supporting surface 11 in the first direction A.
(32) Next, the printing apparatus 100 according to the present embodiment will be described below by comparing with comparison examples 1 and 2, while referring to
(33) In the comparison example 1, it is assumed that a distance L1 in the second direction B from the retracted position up to the capping position is same as that of the present embodiment. Since an inclination angle of an inclined direction with respect to a second direction B becomes the same, in the present embodiment, it is possible to move the cap member 4 in the same manner as in the comparison example 1 by the pressing force same as in the comparison example 1 (in other words, even if the driving force generated by the motor 17 is same). Furthermore, in the present embodiment, when the cap member 4 is positioned at the capping position, a position of a right end of the cap member 4 becomes nearer to the platen 1 in the second direction B than in the comparison example 1. In other words, a distance L2 from a right end of the platen 1 up to the right end of the cap member 4 is shorter than that of the comparison example 1. Generally, the driving force generated by a motor is proportional to a size of the motor, in the present embodiment, it is possible to down the size of the casing in the second direction B, without making the size of the motor 17 large.
(34) In the comparison example 2, it is assumed that when the cap member 4 is positioned at the capping position, a distance L2 in the second direction from the right end of the platen 1 up to the right end of cap member 4 is same as that of the present embodiment. In the present embodiment, it is possible to let the dimensions of the casing in the second direction B to be same as that of the comparison example 2. Furthermore, in the present embodiment, since the distance L1 in the second direction B from the capping position up to the retracted position becomes longer than that of the comparison example 2, it is possible to make small the inclination angle of the inclined direction E with respect to the second direction B. Therefore, in the present embodiment, it is possible to move the cap member 4 in the same manner as in the comparison example 2 by even smaller pressing force, without making the dimension of the casing in the second direction B large. In other words, it is possible to down-size the motor 17. Moreover, in a case that the size (output) of the motor 17 is same as that of the comparison example 2, it is possible to make a movement velocity of the cap member 4 fast.
(35) Thus, in the present embodiment, in the printing apparatus 100 which is arranged to move the cap member 4 by the driving force for moving the liquid droplet jetting head 2, it is possible to achieve both, preventing the size of the printing apparatus 100 from becoming large, and preventing the size of the motor 17 for moving the liquid droplet jetting head 2 from becoming large.
Second Embodiment
(36) Next, a printing apparatus 200 according to a second embodiment will be described below by referring to
(37) As shown in
(38) On the other hand, the guide grooves 236 and 237 have different shapes, and the cap member 4 is guided by the cap guiding mechanism 205 while changing a posture around the axis of the third direction C. The guide groove 236 on the left side is larger in the first direction A and the second direction B than the guide groove 237 on the right side. The guide groove 237 is not required to be inclined, and may be parallel to the second direction B. The pin 232 moves in the second direction B, and the pin 231 is capable of moving along the guide groove 236 in a direction inclined with respect to the first direction A and the second direction B, and the cap member 4 as a whole, moves in the inclined direction E.
(39) As shown in
(40) As an example, as shown in
(41) The printing apparatus 200 includes bias applying members 228a and 228b. One end of the bias applying member 228a is engaged with the cap holder 223 (particularly with a left-end portion of the cap holder 223), and the other end of the bias applying member 228a is engaged with the cap base 224 (particularly a site of the bottom wall portion 225c, on a left side of a portion connecting with the lower link 251). The bias applying member 228a includes a tension coil spring for example, and applies a bias in a downward-left direction to the cap holder 223. One end of the bias applying member 228b is engaged with the central joint 254, and the other end of the bias applying member 228b is engaged with the cap base 224 (particularly a site of the bottom wall portion 225c on a right side of a portion connecting with lower link 251). The bias applying member 228b includes a tension coil spring for example, and applies a bias in a downward right direction to the central joint 254. The printing apparatus 200 may include another bias applying member which applies a bias to the wiper member 207 such that the wiper member 207 assumes a posture of being directed substantially upward from the branched link 253. In that case, the bias applying member may include a torsion coil spring etc., and may be provided for an upper end of the branched link 253.
(42) As shown in
(43) The branched link 253 is extended leftward and upward from the central joint 254. The upper end of the branched link 253 is positioned at a left side and at an upper side of the upper link 252 and the pin 231. The wiper member 207 is connected to the upper end of the branched link 253. The wiper member 207 is pushed against an outer surface of a side wall 212a of a platen holder 212, in a state of being projected toward upward-right direction from the upper end of the branched link 253, and covers a left-end portion of the cap member 4 from an upper side. The wiper member 207 is accommodated in the accommodating space 240, and the wiper member 207 which is a part of the maintenance mechanism 208 overlaps with the supporting surface 11 in the first direction A.
(44) In a process of moving the liquid droplet jetting head 2 rightward from the print area D1 to the home position D2, a pressing force directed rightward is applied to the pressed portion 6. Accordingly, the pin 231 moves in an upward-right direction along the guide groove 236, and also the pin 232 moves rightward along the guide groove 237. The central joint 254 moves upward (and leftward) with the movement of the pin 231. The cap member 4, due to the pressing force, moves in upward-right direction while changing a posture along the axis of a conveying direction C and resisting the bias applied by the first bias applying member 228a and the second bias applying member 228b.
(45) As shown in
(46) In a case that the cap member 4 moves from the retracted position to the capping position, at a stage where the liquid droplet jetting head 2 abuts against the pressed portion 6, the liquid droplet jetting head 2 mostly overlaps with the cap member 4 in the first direction A. Therefore, while the liquid droplet jetting head 2 moves to the home position, the wiper member 207 does not make a contact with the liquid droplet jetting head 2. As a part of preparation to start printing, when the liquid droplet jetting head 2 is moved leftward, the cap member 4, by an action of the bias applying members 228a and 228b, comes close to return to the retracted position. At that time, before the liquid droplet jetting head 2 has completely reached the print area D1, the wiper member 207 moves with the cap member 4 to be positioned below the nozzle surface 14. In other words, the wiper member 207 is separated from the nozzle surface 14 without having wiped the nozzle surface 14.
(47) Therefore, the printing apparatus 200, as shown in
(48) The cap member 4 and the wiper member 207 move in conjunction by deformation of the link mechanism 250. When the cap member 4 moves from the capping position to the retracted position by the bias applied, the central joint 254 moves in the downward-right direction. Accordingly, the upper end of the upper link 252 moves in the downward left direction, and by pivot of the lower link 251 in a clockwise direction with the lower end of the lower link 251 as a supporting point and pivot of the upper link 252 in a counterclockwise direction with the central joint 254 as a supporting point, the link mechanism 250 is deformed. The stopper means 260 regulates the deformation of the link mechanism 250, which causes the movement of the cap member 4 in the inclined direction, at the wiping position in midcourse of the movement of the cap member 4 from the capping position to the retracted position. At the same time, the stopper means 260 regulates the descent of the wiper member 207 in the first direction A from a position shown in
(49) An arrangement of the stopper means 260 is not restricted specifically. As an example, the stopper means 260 includes a link abutting member 261 which abuts (abuts from a right side for example) against a lower end portion of the upper link 252 in the second direction, and a switching mechanism 262 which switches whether or not to make the link abutting member 261 abut against the upper link 252, or in other words, whether or not to regulate the deformation of the link mechanism 250. The link abutting member 261 is attached to a lower surface of the cap holder 223.
(50) The switching mechanism 262 includes a cam gear 263 for driving a switching valve 263c (refer to
(51) As shown in
(52) On the other hand, the cam gear 263 includes a protrusion 264 which is a part of an outer peripheral surface of the circular-disc body 263b projected in a radial direction. The protrusion 264 is arranged to be rotatable together with the cam gear 263, and as the cam gear 263 rotates and the protrusion 264 is directed leftward, the protrusion 264 makes a contact with the link abutting member 261. Accordingly, the link abutting member 261 abuts against the upper link 252, thereby regulating the deformation of the link mechanism 250, and the cap member 4 stops at the wiping position. As the protrusion 264 is directed rightward, during the process of movement of the cap member 4 from the capping position to the retracted position, the link abutting member 261 does not abut against the link mechanism 250, and the deformation of the link mechanism 250 is not inhibited by the link abutting member 261.
(53) When the liquid droplet jetting head 2 is moved from the home position D2 to the print area D1, in a case of wiping the nozzle surface 14, it is preferable to determine a rotational position of the cam gear 263 such that the protrusion 264 directs leftward. Accordingly, as the liquid droplet jetting head 2 starts moving leftward, the cap member 4 stops at the wiping position. Therefore, it is possible to wipe out the entire nozzle surface 14 of the liquid droplet jetting head 2 by the wiper member 207. In a case that the nozzle surface 14 is not desired to be wiped, it is preferable to determine the rotational position of the cam gear 263 such that the protrusion 264 is directed rightward. In such manner, since it is possible to select whether or not to wipe the nozzle surface 14, it is possible to suppress the degrading of the nozzle surface 14 due to friction, to the minimum.
(54) In the present embodiment, a mechanism for selecting whether or not to wipe the nozzle surface is used commonly as a mechanism for switching the connection of the suction pump and the cap. Therefore, it is possible to avoid an arrangement of the printing apparatus getting complicated. As the rotation position of the cam gear 263 changes, the connection between the waste-liquid tank and the cap is switched. It is possible to switch whether or not to wipe the nozzle surface 14 also by changing the rotation position of the cam gear 263. The protrusion 264 is provided to the cam gear 263 by extending in the rotation direction of the cam gear 263 such that the protrusion 264 can make a contact with the link abutting member 261 when the protrusion 264 is in a range of rotation between a first position at which the first cap 21A is connected to the waste-liquid tank via the suction pump and a second position at which the second cap 21B is connected to the waste-liquid tank via the suction pump. In the present embodiment, an arrangement is made such that, at the time of start of printing, after carrying out the purge process for the first nozzle group and the idle suction operation of discharging the recording liquid remained in the first cap 21, the purge process for the second nozzle group and the idle suction operation for the second cap 21B are carried out. In that case, while such purge process and idle suction operation are carried out, it is possible to keep the protrusion 264 in contact with the abutting member 261 continuously. Therefore, it is possible to wipe out the nozzle surface 14 by the wiper member 207 only by moving the liquid droplet jetting head 2 leftward without rotating the cam gear 263 after the idle suction operation, and it is possible to move the liquid droplet jetting head 2 promptly to the print area D1.
(55) As the nozzle surface 14 is wiped out by the wiper member 207, the recording liquid is adhered to the wiper member 207. As shown in
Modified Examples
(56) In the present embodiment, the cap member 4 includes the nozzle cap 21 and the exhaust air cap 22. However, an arrangement is not restricted to such arrangement. For instance, an arrangement may be made such that the liquid droplet jetting head 2 does not have the exhaust air unit 19, and the cap member 4 includes only the nozzle cap 21.
(57) Moreover, in the present embodiment, the cap member 4 includes only the first cap 21A and the second cap 21B. However, the arrangement is not restricted to such arrangement. An arrangement may be made such that one cap covers both the first nozzle group 13A and the second nozzle group 13B.
(58) Moreover, in the present embodiment, the liquid droplet jetting head 2 was made to reciprocate in the second direction B by the head moving unit 3, and the maintenance mechanism 8 was arranged in line with the platen 1 in the second direction B. However, the arrangement is not restricted to such arrangement. For instance, the liquid droplet jetting head 2 may be made to reciprocate in the third direction C by the head moving unit 3. In this case, the maintenance mechanism 8 may be arranged in line with the platen 1 in the third direction C.
(59) The embodiments of the present teaching have been described heretofore. However, appropriate changes, additions, and deletions may be made without departing from the scope of the present teaching. The printing apparatus may be of line type. In that case, the head moving unit 3 stops the liquid droplet jetting head 2 in the print area D1 during printing. The head moving unit 3 is arranged to move the liquid droplet jetting head from the print area to the home position when the printing is completed, and in that process, the cap member moves from the retracted position up to the capping position by a driving force for moving the liquid droplet jetting head.