Sheet feeder for a machine for processing material in sheet form, such as paper, cardboard or films
11292680 · 2022-04-05
Assignee
Inventors
Cpc classification
B65H2406/3452
PERFORMING OPERATIONS; TRANSPORTING
B65H2403/511
PERFORMING OPERATIONS; TRANSPORTING
B65H3/42
PERFORMING OPERATIONS; TRANSPORTING
B65H3/0825
PERFORMING OPERATIONS; TRANSPORTING
B65H3/0883
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Sheet feeder (4) for a machine (1) for the processing of sheet material such as paper or films, having a drive shaft (10), which extends substantially perpendicular to a sheet feeding direction and is provided with at least one suction gripper (12), which is rotated above the sheet material, when the drive shaft (10) is driven, wherein the suction gripper (12) is repositionable between an inactive position, in which it does not cooperate with the sheet material, and an active position, in which it can grip on the top side of the sheet material and carry this along.
Claims
1. A sheet feeder for a machine for processing of sheet material, comprising: a drive shaft, which extends substantially perpendicular to a sheet feeding direction and is provided with at least one suction gripper, which is rotated above the sheet material, when the drive shaft is driven, wherein the suction gripper is repositionable between an inactive position, in which a ram of the suction gripper is provided in a retracted position so that the suction gripper does not cooperate with the sheet material, and an active position, in which the ram of the suction gripper is provided in an extended position so that the suction gripper can grip on a top side of the sheet material and carry the sheet material along, and wherein at least one pneumatic channel, with which the suction gripper is connected, is integrated into the drive shaft to extend the ram from the retracted position to the extended position.
2. The sheet feeder according to claim 1, wherein the at least one suction gripper is one of multiple suction grippers provided in multiple groups, which are spaced apart from one another in axial direction of the drive shaft.
3. The sheet feeder according to claim 2, wherein each group has three suction grippers, which are spaced apart from one another in circumferential direction around the drive shaft.
4. The sheet feeder according to claim 1, wherein the suction gripper further comprises a return spring configured to return the ram from the extended position to the retracted position.
5. The sheet feeder according to claim 1, wherein the ram of the suction gripper telescopically extends from the retracted position to the extended position.
6. The sheet feeder according to claim 1, wherein each suction gripper has a body, the ram, and a suction cup attached to the ram to be repositionable relative to the body, the body being attached at a distance from a central axis of the drive shaft.
7. The sheet feeder according to claim 6, wherein the body is rotatably attached relative to the drive shaft, and the ram telescopically extends relative to the body from the retracted position to the extended position.
8. The sheet feeder according to claim 1, wherein a pneumatic channel is provided for each holding rod.
9. The sheet feeder according to claim 1, wherein the at least one pneumatic channel is additionally configured to supply air to the suction gripper to generate a vacuum in a suction cup attached to the ram.
10. A sheet feeder for a machine for processing of sheet material, comprising: a drive shaft, which extends substantially perpendicular to a sheet feeding direction and is provided with at least one suction gripper, which is rotated above the sheet material, when the drive shaft is driven, wherein the suction gripper is repositionable between an inactive position, in which a ram of the suction gripper is provided in a retracted position so that the suction gripper does not cooperate with the sheet material, and an active position, in which the ram of the suction gripper is provided in an extended position so that the suction gripper can grip on a top side of the sheet material and carry the sheet material along, wherein each suction gripper has a body, the ram, and a suction cup attached to the ram to be repositionable relative to the body, the body being attached at a distance from a central axis of the drive shaft, and wherein a radius, on which the body is moved around the drive shaft, is variable.
11. The sheet feeder according to claim 10, wherein a repositioning mechanism is provided, with which the position and alignment of the suction gripper is controlled relative to a plane, in which the sheets are located.
12. The sheet feeder according to claim 11, wherein a drive axle has multiple holding rods, which extend parallel to the axis of rotation of the drive shaft and to which the body of the suction gripper is attached.
13. The sheet feeder according to claim 12, wherein the holding rods are rotatable and displaceable relative to the drive shaft.
14. The sheet feeder according to claim 12, wherein the repositioning mechanism repositions the holding rods.
15. The sheet feeder according to claim 14, wherein the repositioning mechanism has a cam track and a cam follower.
16. A sheet feeder for a machine for processing of sheet material, comprising: a drive shaft, which extends substantially perpendicular to a sheet feeding direction; a holding arm provided on the drive shaft, and including a guide slot extending in a radial direction of the drive shaft; a guide track; a holding rod provided in the guide track and in the guide slot, repositionable in the guide slot in the radial direction of the drive shaft, and extending substantially parallel to the drive shaft; and a suction gripper provided on the holding rod, which is rotated above the sheet material when the drive shaft is driven, wherein the suction gripper is repositionable between an inactive position, in which the suction gripper does not cooperate with the sheet material, and an active position, in which the suction gripper can grip on a top side of the sheet material and carry the sheet material along.
17. The sheet feeder according to claim 16, further comprising: a cam track; a cam follower provided in the cam track; and a connecting rod connected to the cam follower and coupled to the holding rod.
18. The sheet feeder according to claim 17, wherein when the drive shaft is driven: the holding arm rotates around the drive shaft, and the holding rod is repositioned in the guide slot in the radial direction of the drive shaft based on a rotation of the holding rod around the drive shaft in the guide track, and is rotated in the guide slot based on the connecting rod connected to the cam follower in the cam track.
19. The sheet feeder according to claim 17, wherein the suction gripper is repositioned based on the position and rotation of the holding rod.
Description
(1) The invention is described below with the help of one embodiment, which is represented in the appended drawings, where the following are shown:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9) In
(10) A first stack of sheets is marked with the reference sign 2 and a second stack of sheets is marked with the reference sign 3. In operation one sheet from stack 2 is joined respectively with one sheet from stack 3, for example they are stuck together.
(11) The individual sheets can be sheets of paper, plastic film, cardboard or similar materials.
(12) In order to remove individual sheets from the stacks, a sheet feeder is provided. By way of example this is given the reference sign 4 on stack 3.
(13) The sheet feeder 4 is explained in more detail below with the help of
(14) An essential part of the sheet feeder 4 is a drive shaft 10, which is arranged above the plane, in which the topmost sheet of the stack 3 is located. In this connection the drive shaft 10 extends parallel to this plane and perpendicular to the direction, in which each sheet removed from the stack 3 is then transported further (see the arrow P in
(15) For the mounting of the drive shaft 10 and the other relevant components of the sheet feeder a frame 11 is provided, which is arranged above the place where the stack 3 is located.
(16) Multiple suction grippers 12 are arranged on the drive shaft 10. The suction grippers 12 serve to grip the respective topmost sheet of the stack and to move it forwards relative to the stack 3 in the direction of the arrow P.
(17) The suction grippers 12 are arranged at a distance from the axis of rotation of the drive shaft 10, such that, when the drive shaft 10 is driven, they move along a closed movement path around the rotational axis.
(18) The suction grippers 12 are arranged in various groups spaced apart from one another in axial direction. As can be seen in
(19) The suction grippers 12 are distributed over a total of three holding rods 14, which all extend parallel to the rotational axis of the drive shaft 10. Viewed in circumferential direction, the holding rods 14 are arranged at an angular distance of 120° relative to one another.
(20) More particularly in
(21) The three holding rods 14 are mounted in two holding elements 16, which are arranged at opposite axial ends of the drive shaft 10. Each holding element 16 has three holding arms 18 extending in radial direction, whereby in each holding arm 18 a guide slot 20 is provided, which extends radially and in which one end of a holding rod 14 is accommodated.
(22) The guide slots 20 make it possible for the holding rods 14 to reposition themselves in radial direction relative to the rotational axis of the drive shaft 10.
(23) The radius, on which each holding rod 14 is located, is determined by a guide track 22, which can be seen more particularly in
(24) In this connection the guide track 22 is provided in one of the end plates of the frame 11, in which the drive shaft 10 is also mounted.
(25) When the drive shaft 10 rotates, the holding rods 14 are not only repositioned upon every revolution with regard to the radial distance from the rotational axis, but in each case also turned within certain limits relative to the corresponding holding arm 18. In order to control this turning, a cam track 30 (see more particularly
(26) The guide slots 20 together with the guide track 22 and also the cam track 30 with the cam followers 32 form a repositioning mechanism, with which the position and alignment of the suction gripper 12 is controlled upon each rotation of the drive shaft 10. In general terms each suction gripper 12 is moved hereby, such that its “front side”, i.e. the suction cup to be placed on the corresponding sheet, is aligned parallel to the plane of the corresponding sheet, as long as the suction gripper cooperates with the sheet. Thereupon the corresponding suction gripper 12 is transferred again “overhead” into a position, in which it can again grip a sheet.
(27) Because of this sequence of movements the cam track, viewed in an axial direction, usually lies outside the guide track 22.
(28) Each suction gripper 12 has a body 40 (see
(29) Arranged inside the body 40 is a return spring 48 (see
(30) The suction grippers 12 are activated with compressed air and contain a Venturi nozzle, such that the desired vacuum can be generated at the suction cup 44. The compressed air supplied to activate the suction cup 44 leads to the ram 42 being repositioned telescopically outwards out of the body 40 against the action of the return spring.
(31) The compressed air is supplied inside the drive shaft 10 in a pneumatic channel and is passed from there to the body 40 via connection nozzles 46 visible in
(32) Depending on the nature of the control system and of the suction grippers, a single pneumatic channel can be provided, to which all suction grippers are connected, or a separate pneumatic channel can be provided for the suction grippers of each holding rod.
(33) The principle of operation of the sheet feeder 4 is explained below with the help of
(34) The drive shaft 10 rotates clockwise in relation to
(35) The suction gripper 12 viewed here is brought close to the stack 3 from above, whereby it is turned by means of the repositioning mechanism, more particularly by means of the cam track 30 and the corresponding cam follower 32, such that the ram 42 is located approximately perpendicular to the plane of the topmost sheet of the stack 3 (cf.
(36) When the suction gripper 12 is being advanced towards the stack 3, the ram 42 is also extended out together with the suction cup 44 (cf. again
(37) After the suction cup 44 is resting on the sheet 50 and accordingly the suction cup there is sealed, the compressed-air supply of the suction gripper 12 is set, such that the return spring retracts the ram 42 into the body 40, while at the same time the vacuum on the suction cup 44 continues to act. In this way the sheet 50 is lifted from the stack 3 (see
(38) It is also possible to assist the separation of the topmost sheet from the stack through the blowing-in of air in a per se known manner.
(39) Upon further rotation of the drive shaft 10 the suction gripper 12 is moved further clockwise (see
(40)
(41) The drive shaft 10 does not necessarily have to be embodied as unified component extending along the rotational axis, around which the suction grippers 12 are repositioned. Instead, other designs are also conceivable. All that is important, is that the suction grippers 12 can be moved along a circular path around a rotational axis.