MODULAR STORAGE SYSTEMS AND METHODS
20240158166 ยท 2024-05-16
Assignee
Inventors
- Lars Sverker Ture Lindbo (Hatfield, GB)
- Paul Clarke (Hatfield, GB)
- Andrew John Ingram-Tedd (Hatfield, GB)
Cpc classification
B61B3/00
PERFORMING OPERATIONS; TRANSPORTING
B65D2501/24573
PERFORMING OPERATIONS; TRANSPORTING
B65D19/385
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A customisable modular storage system is described where goods are stored in containers and the containers are stored in stacks. The stacks are contained within towers formed of stacks of bin receiving units. A grid network of tracks is provided on the top of the bin receiving units upon which load handling devices run. The load handling devices take containers from the stacks and deposit them at alternative locations in the stacks or deposit then at stations where goods may be picked out.
Claims
1. A track structure for supporting movement of a load handling device on top of a grid storage structure, the track structure comprising: a plurality of track support sections arranged in a grid pattern; and a plurality of track sections mounted on top of the track support sections, said plurality of track sections being arranged in the grid pattern of the plurality of track support sections; wherein the plurality of track sections are arranged such that first joints at which any two track sections abut in the grid pattern are between second joints where two sections of the track support sections abut.
2. The track structure of claim 1, wherein the grid pattern of tracks or rails is defined by a first set of parallel tracks or rails and a second set of parallel tracks or rails extending transverse to the first set in a substantially horizontal plane.
3. The track structure of claim 2, wherein the track sections and/or the track support sections include a plastic material.
4. The track structure of claim 1, wherein the track sections and/or the track support sections include a plastic material.
5. The track structure of claim 4, wherein each of the track sections includes a substantially cross-shaped planar portion.
6. The track structure of claim 1, wherein each of the track sections includes a substantially cross-shaped planar portion.
7. The track structure of claim 2, wherein each of the track sections includes a substantially cross-shaped planar portion.
8. The track structure of claim 1, wherein each of the track sections includes a longitudinally extending moulding.
9. The track structure of claim 2, wherein each of the track sections includes a longitudinally extending moulding.
10. The track structure of claim 4, wherein each of the track sections includes a longitudinally extending moulding.
11. The track structure of claim 1, wherein each of the track sections includes a series of downwardly extending lips configured to releasably attach to the track support sections.
12. The track structure of claim 2, wherein each of the track sections includes a series of downwardly extending lips configured to releasably attach to the track support sections.
13. The track structure of claim 4, wherein each of the track sections includes a series of downwardly extending lips configured to releasably attach to the track support sections.
14. The track structure of claim 6, wherein each of the track sections includes a series of downwardly extending lips configured to releasably attach to the track support sections.
15. The track structure of claim 1, wherein each of the track support sections includes a longitudinally extending, substantially I-shaped cross-sectional beam.
16. The track structure of claim 2, wherein each of the track support sections includes a longitudinally extending, substantially I-shaped cross-sectional beam.
17. The track structure of claim 4, wherein each of the track support sections includes a longitudinally extending, substantially I-shaped cross-sectional beam.
18. A grid storage structure comprising: a plurality of towers arranged in a grid pattern for receiving stacks of storage bins; and the track structure of claim 1, wherein the track structure is configured to be mounted on top of the plurality of towers.
19. The grid storage structure of claim 18, wherein the track supports sections are configured to interlock the towers.
20. A grid storage structure comprising: a plurality of towers arranged in a grid pattern for receiving stacks of storage bins; and the track structure of claim 2, wherein the track structure is configured to be mounted on top of the plurality of towers.
Description
DESCRIPTION OF THE DRAWINGS
[0015] The invention will now be described with reference to the accompanying diagrammatic drawings in which:
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DETAILED DESCRIPTION
[0033] As shown in
[0034] The frame structure 14 comprises a plurality of upright members 16 that support horizontal members 18, 20. A first set of parallel horizontal members 18 is arranged perpendicularly to a second set of parallel horizontal members 20 to form a plurality of horizontal grid structures supported by the upright members 16. The members 16, 18, 20 are typically manufactured from metal. The bins 10 are stacked between the members 16, 18, 20 of the frame structure 14, so that the frame structure 14 guards against horizontal movement of the stacks 12 of bins 10, and guides vertical movement of the bins 10.
[0035] The top level of the frame structure 14 includes rails 22 arranged in a grid pattern across the top of the stacks 12. Referring additionally to
[0036] Each load handling device 30 comprises a vehicle 32 which is arranged to travel in the X and Y directions on the rails 22 of the frame structure 14, above the stacks 12. A first set of wheels 34, consisting of a pair of wheels 34 on the front of the vehicle 32 and a pair of wheels 34 on the back of the vehicle 32, are arranged to engage with two adjacent rails of the first set 22a of rails 22. Similarly, a second set of wheels 36, consisting of a pair of wheels 36 on each side of the vehicle 32, are arranged to engage with two adjacent rails of the second set 22b of rails 22. Each set of wheels 34, 36 can be lifted and lowered, so that either the first set of wheels 34 or the second set of wheels 36 is engaged with the respective set of rails 22a, 22b at any one time.
[0037] When the first set of wheels 34 is engaged with the first set of rails 22a and the second set of wheels 36 are lifted clear from the rails 22, the wheels 34 can be driven, by way of a drive mechanism (not shown) housed in the vehicle 32, to move the load handling device in the X direction. To move the load handling device 30 in the Y direction, the first set of wheels 34 are lifted clear of the rails 22, and the second set of wheels 36 are lowered into engagement with the second set of rails 22a. The drive mechanism can then be used to drive the second set of wheels 36 to achieve movement in the Y direction.
[0038] In this way, one or more robotic load handling devices 30 can move independently around the top surface of the stacks 12 on the frame structure 14 under the control of a central picking system (not shown).
[0039]
[0040]
[0041] The storage system described with reference to
[0042] As can be seen in
[0043] As shown in
[0044] It will be appreciated that the bin receiving unit 50 need not be formed by sides 71, 72 comprising a structural framework 71a 72a but could be formed from solid sides (not shown). It will be appreciated that he bin receiving units 50 must be constructed such that the corners 51 provide sufficient strength and rigidity to form strong uprights depending on the height of stacks 12 to be used within the storage system.
[0045] The strength of the sides 71 and 72 of the bin receiving units and the number, strength, location, profile, material and size of the interlocking openings 66a and protrusions 66b must be selected to ensure the rigidity and strength on the storage system depending on the total number and height of the stacks 12.
[0046] The bin receiving unit 50 may be formed from any suitable material having the required structural characteristics. For example, the unit 50 may be formed from suitable plastics material. These may include but need not be limited to such as polypropylene, high density polyethylene (HDPE), polyvinyl chloride (PVC), acrylonitrile butadiene styrene (ABS), or polycarbonate or any composite combination thereof.
[0047] Furthermore, the bin receiving unit 50 may be formed from any other suitable structural material such as suitable metals or metal alloys or composites formed from any combination of suitable materials such as glass or carbon fibre reinforced plastics materials.
[0048] The second component part of the storage structure comprises a locating base plate 60, the base plate 60 comprising a substantially planar base of a rectangular cross section comparable in size to that of the bin receiving unit 50. As shown in
[0049] Optionally the locating base plates 60 may have interlocking pins and openings (not shown) to join them together to form a single locating base structure.
[0050] The third component part of the modular storage system comprises a bin 10 suitable for storing goods. Such bins 10 may be formed from suitable plastics material as described above with reference to the bin receiving units 50. However, the bin 10 may be formed from any suitable material capable of stacking and storing the goods therein. IT will be appreciated that the bin receiving units 50 need not be formed from the same material as the containers or bins 10, each having differing structural requirements.
[0051] As shown in
[0052] The fourth and fifth component parts of the modular storage system comprise a series of track support sections 25 and a series of track sections 26.
[0053] The track support sections 25 may be formed from any suitable structurally resilient material. This may include plastics materials as described in relation to the bin receiving units 50 above. However, it will be appreciated that the track support sections may be formed from any material capable of supporting the track sections 26 and any dynamic or static loading thereof.
[0054] The final component of the modular storage system comprises a load handling device 30. The load handling device may take the form of that described with reference to the prior art system shown in
[0055] In use, as described with reference to
[0056] Whilst the pins 54 and openings 53 are shown on the bottom and top surfaces of the bin receiving unit 50 respectively, it will be appreciated that any combination of pins and opening in the bin receiving units 50 and base units 60 may be used such that the bin receiving unit 50 is positionally secured in the base plate 60.
[0057] Adjacent bin receiving units 50 are joined together by the one or more interlocking openings 66a and protrusions 66b.
[0058] As shown in
[0059] In this manner a storage system may be built up in layers until the desired volume or height is reached.
[0060] Referring to
[0061] At least one suitable load handling device 30 may then be placed on the rails and operated under the control of a suitable wireless communications system to remove and replace bins 10 as necessary from the structure.
[0062] Bins 10 are inserted into the towers of bin receiving units 50 to form stacks 12 of bins 10. The each load handling device may be used to locate and place the bins 50 in the bin receiving units 50. The bins may contain goods or may be empty awaiting the good to be stored.
[0063] It will be appreciated that other forms of tracks or rails may be used, with or without support sections, depending on the static and dynamic loading anticipated on the storage system.
[0064] Alternatively conventional rails may be applied to the top of the storage system as is well known in the art.
[0065]
[0066] The track support sections 25 comprise sections of longitudinally extending, substantially I-shaped cross-sectional beams. The length of the support section 25 beams is selected such that when installed on the uppermost layer of bin receiving units 50, a lamellar form of support structure is achieved. That is the joints between support sections 25 are not positioned at the same point with reference to the bin receiving units 50 in any adjacent tower. In this way the structural integrity of the track support is maintained.
[0067] As shown in
[0068] As shown in
[0069] In this way, the combination of the lamellar structure of the support sections 25 and the planar, cross-shaped track sections when assembled, provides an easily installable, flat set of rails on which load handling devices may operate.
[0070]
[0071] In use, track sections 260 of
[0072] It will be appreciated that different forms of bin receiving unit 50 and bin 10 may be used.
[0073]
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[0075] It will be appreciated that the use of collapsible bins 10 as shown in
[0076] There are many forms of collapsible container and the form shown in
[0077] In this way a customised, storage system of any size and shape can be constructed and deconstructed quickly, and efficiently.
[0078] This modular approach to storage structure construction overcomes the need for permanent infrastructure. Furthermore, the components of the storage system and storage system structure may in most cases be constructed from engineering polymers having sufficient strength and toughness to form such a structure, whilst reducing the weight for transportation and construction purposes.
[0079] Preferably all the components of the storage system according to the present invention are constructed from a high strength, mouldable material such as by way of example only, polypropylene, high density polyethylene (HDPE), polyvinyl chloride (PVC), acrylonitrile butadiene styrene (ABS), or polycarbonate or any composite combination thereof, which can be accurately, easily, quickly, and cheaply manufactured.
[0080] It will be appreciated that other structural materials may be used such as lightweight metal alloys or composites formed from any combination of suitable materials such as glass or carbon fibre reinforced plastics materials, having the appropriate structural characteristics.
[0081] Many variations and modifications not explicitly described above are also possible without departing from the scope of the invention as defined in the appended claims.