STACKING DEVICE AND TRANSPORT BLOCK FOR A STACKING DEVICE
20230009808 · 2023-01-12
Assignee
Inventors
Cpc classification
B65H2701/1914
PERFORMING OPERATIONS; TRANSPORTING
B65H2701/1764
PERFORMING OPERATIONS; TRANSPORTING
B65H2404/311
PERFORMING OPERATIONS; TRANSPORTING
B65H39/075
PERFORMING OPERATIONS; TRANSPORTING
B65H2405/1115
PERFORMING OPERATIONS; TRANSPORTING
B65H2405/114
PERFORMING OPERATIONS; TRANSPORTING
B65H31/3063
PERFORMING OPERATIONS; TRANSPORTING
B65H31/3081
PERFORMING OPERATIONS; TRANSPORTING
B65H2404/732
PERFORMING OPERATIONS; TRANSPORTING
B65H2405/112
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A stacking device for generating decks (10) of sheet elements (12) comprises a transport device with an upper side onto which sheet elements (12) are arranged on separate sheet sections (50). Each sheet section (50) is adapted to transport at least one sheet element (12). The upper side has a height offset between adjacent sheet sections (50). A displacement element shifts sheet elements (12) of one sheet section (50) onto an adjacent sheet section (50) in order to produce the deck (10) of sheet elements (12).
Claims
1. A stacking device for generating a deck of sheet elements, the stacking device comprising: a transport device with an upper side for transporting the sheet elements, the upper side having a plurality of sheet sections configured to receive sheet elements to be arranged thereon, the plurality of sheet sections being arranged in rows and columns, wherein rows are aligned in a transport direction of the stacking device, and columns perpendicular thereto in a stacking direction, and wherein the plurality of sheet sections of one column comprise at least one first sheet section and at least one adjacent second sheet section arranged further downstream in the stacking direction, and wherein a height offset is provided in the stacking direction between the first sheet section and the second sheet section, said height offset allowing at least one sheet element on the first sheet section to be moved over and be positioned on top of an adjacent sheet element on the second sheet section, at least one displacement element driven to be moved transverse to the transport direction along the sheet sections of a column, the displacement element engaging with the sheet sections of one column for shifting the at least one sheet element of a first sheet section onto the sheet element on the adjacent, second sheet section, and wherein a guide for the displacement elements is arranged above the sheet sections, the guide extending obliquely across the upper side of the transport device in the transport direction.
2. The stacking device according to claim 1, wherein stop protrusions defining front ends of the sheet sections are provided, more preferably wherein the stop protrusions of one column are provided in a linear arrangement.
3. The stacking device according to claim 1, wherein the sheet sections are sloped in the stacking direction.
4. The stacking device according to claim 3, wherein the sheet sections are upwardly sloped in the stacking direction.
5. The stacking device according to claim 1, wherein at least one displacement element is associated to each column.
6. The stacking device according to claim 1, wherein the guide forms part of an endless, loop track.
7. The stacking device according to claim 1, wherein the displacement elements extend to a position below the sheet sections.
8. The stacking device according to claim 7, wherein the sheet sections comprise at least one lateral groove into which the displacement element protrudes, in particular wherein the lateral groove extends perpendicular to the transport direction.
9. The stacking device according to claim 8, wherein at least two displacement elements are provided for each column, each of the displacement elements having an associated single groove in the sheet sections of a column.
10. The stacking device according to claim 9, wherein the displacement elements of each column are affixed to a common carrier guided by the guide.
11. The stacking device according to claim 1, wherein a transport velocity of the sheet section in transport direction corresponds to the velocity of the displacement element in transport direction.
12. The stacking device according to claim 1, wherein the transport device is formed as an endless track, in particular wherein the endless track comprises an endless belt, and/or wherein profiled transport blocks defining the upper side being attached to each other, in particular by an endless pull or push element or are attached to each other to define an endless chain.
13. The stacking device according to claim 12, wherein the transport block has a profiled upper side and an opposite lower side, the upper side having a plurality of sheet sections configured to receive sheet elements to be arranged thereon, and wherein a height offset is provided in the stacking direction between adjacent sheet sections.
14. The stacking device according to claim 13, wherein the transport block has a front and a rear end the front end comprising a stop protrusion protruding above the sheet sections and/or wherein the transport block has at least one groove at its upper side extending parallel to the front end.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0043] In the accompanying drawings
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
DETAILED DESCRIPTION
[0051] In
[0052] The stacking device comprises a transport device 14 which is an endless track comprising a push or pull means as an endless belt 16 (see
[0053] Instead of an endless belt 16, a chain or one or more endless cables can be provided. Thus, whenever the term “endless belt” is used in the following, chains, cables etc. can be used instead of an endless belt 16.
[0054] Several elongate transport blocks 20 are attached to the outer side of the endless belt 16 (see
[0055] The endless belt 16 is driven in a transport direction T (see
[0056] The transport blocks 20 may be arranged with their longer side coinciding with the transport direction T. Alternatively, in a non-illustrated embodiment, the longer side of the transport blocks may be aligned perpendicular to the transport direction T.
[0057] Each transport block 20 has a front end 22 and a rear end 24 which are parallel to each other and to the stacking direction S and perpendicular to transport direction T.
[0058] Furthermore, each transport block 20 has a first longitudinal edge 26 upstream (here the left hand edge seen in transport direction T) and an opposite edge 28. The edges 26 and 28 of all blocks 20 define the longitudinal edges of the transport device.
[0059] A displacement device 30 is arranged above the upper side of the transport device. The “upper side” is defined by all transport blocks 20 protruding upwardly from the endless belt 16, i.e. having their upper side being directed upwardly. As endless belt 16 is been moved together with its transport blocks 20 some transport blocks 20 are facing downwardly and some upwardly.
[0060] Displacement device 30 comprises an endless, loop track 32 which guides and drives displacement elements 34 (see
[0061] In an embodiment, one single displacement element 34 is attached to a carrier 36, or directly to an endless push or pull element 110, e.g. a chain, endless belt or cable which is moved along track 32. The displacement element 34 is placed preferably in the middle of each sheet element longitudinal side, so that the sheet element is not rotated during its sideward shift movement. This embodiment allows the carrier 36 to freely rotate around the vertical axis, resulting in a simpler system. In another embodiment, two displacement elements 34 are attached to a carrier 36 in order to form a fork-like body. Carrier 36 has a pin 38 (see
[0062] Linear guides that are arranged to control the orientation of the guided element, or that let the orientation of the guided element free are well known in the art.
[0063]
[0064] Track 32 has a triangular shape with two sides arranged perpendicular to each other. The first side extends parallel to transport direction T and the second side perpendicular thereto. A third side which is termed “guide” 40 extends at an angle across the upper side (see
[0065] Guide 40 may extend at an angle a of 10-80°, more particular 30-70° with respect to the transport direction T, across the upper side of the transport device (see
[0066] Guide 40 extends linearly from an rear end 42 at the left hand side longitudinal edge to a front end 44 at the right hand side longitudinal edge.
[0067] As can be seen from
[0068] As can be seen from
[0069] As the present stacking device may comprise several columns C, each column C is preferably associated with at least one displacement element 34 (as described above). The displacement elements 34 are travelling along the endless loop track 32 and numerous displacement elements 34 can be distributed along the endless loop track 32. The displacement elements 34 are preferably evenly distributed at a constant distance from each other along the endless loop track 32. This ensures that there is a constant supply of displacement elements 34 in order to continuously engage with the sheet sections 50 in the columns C. Hence, this allows some displacement elements 34 to be in operation (i.e. moving in the columns), while others are positioned on a return path of the endless loop track 32.
[0070] A device and method for creating such partial decks is described in the application PCT/EP2020/085546, which is hereby incorporated in its entirety into this application. The device in PCT/EP2020/085546 is an upstream-located stacking device which is designed to gradually overlap, in the transport direction T, individual sheet elements 12 in several transportation paths (i.e. rows R) on top of each other in order to form partial decks.
[0071] In such a way, the stacking device of the present disclosure can be used further downstream of the device in PCT/EP2020/085546 to superpose the partial decks from each column C, in a direction perpendicular to the transport direction T, such that a complete deck is created.
[0072] At the rear end, before reaching guide 40, sheet elements 12 are arranged one by one next to each other and distanced from each other. Therefore, each sheet element 12 has a specific row and a specific column position.
[0073] While being transported on the upper side of the transport device in transport direction T and as soon as the upstream side sheet elements 12 have reached guide 40, the sheet elements 12 of a column C are displaced beginning from the sheet element 12 on the upstream side, i.e. from the longitudinal edge at the left hand side in the figures, continuously towards the opposite longitudinal edge on the downstream side, i.e. a longitudinal edge on the right hand side in the figures.
[0074] Displacement of sheet elements 12 from upstream to downstream is achieved by displacement elements 34 engaging the upstream edge of the upstream side of sheet element 12 as can be seen in
[0075]
[0076] As can be seen from
[0077] At the end 28 of guide 40 the displacement elements 34 shift the decks 10 onto a dispatching device 70 in the form of an endless belt. The upper side of the dispatching device 70 is arranged slightly underneath the lowermost sheet section 50 which defines edge 28.
[0078]
[0079] In order to perfectly align sheet elements 12 of one column C in transport direction T, each transport block 20 has at least one associated stop protrusion 48 at its front end.
[0080] Stop protrusions 48 can be integrally formed to transport blocks 20 or be defined by a separate plate-like part attached to the front side of transport block 20 (see
[0081] As can be seen from
[0082] The sheet sections 50 of one column C have a first longitudinal edge 50A and a second longitudinal edge 50B. The second longitudinal edge 50B is located further downstream in the stacking direction S than the first longitudinal edge 50A. The second longitudinal edge 50B of the first sheet section 50 is located at a higher vertical position than the first longitudinal edge 50A of an adjacent second sheet section 50, arranged further downstream in the stacking direction S. This provides a height offset Δh in the stacking direction S between the adjacent sheet sections 50. The first longitudinal edge 50A and the second longitudinal edge 50B can be aligned with the respective edges of the sheet elements 12.
[0083] In order to avoid a gap between the upper side of the transport device and the lowermost end of displacement elements 34, even at the lowermost sheet section 50, displacement elements 34 extend into an associated lateral groove 52 in its transport block 20. Lateral grooves 52 extend along the full width of its transport block 20 so that displacement elements 34 can enter the lateral grooves at edge 26 and exit therefrom at edge 28.
[0084] Longitudinal grooves 54 in the transport block 20 allow plate-like guides to extend in-between the rows R of sheet elements 12 in order to ensure that the sheet elements 12 are positioned correctly on the sheet sections 50.