Transfer device for energy storage module

By designing a transfer device consisting of components such as support cylinders and rotating columns, the suspended energy storage modules are transferred, solving the problem of interference from ground debris and improving the convenience and applicability of the transfer.

CN223962859UActive Publication Date: 2026-03-03ZHEJIANG HONGZHE NEW ENERGY TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Existing energy storage module transfer devices are easily affected by debris on the ground during movement, making transfer inconvenient.

Method used

A transfer device was designed, comprising components such as a support cylinder, a rotating column, a rotating disk, a lifting folding plate, and a sliding plate. The device transfers energy storage modules by suspending them, utilizes drag-reducing rollers to reduce friction, and allows for adjustment of the device size to accommodate different module sizes.

Benefits of technology

This technology avoids direct contact with the ground during transport, reduces interference from ground debris, and improves the convenience and applicability of the transport process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of energy storage module transfer, and discloses an energy storage module transfer device which comprises a supporting cylinder, a rotating column is rotationally arranged in the supporting cylinder, a rotating disc is fixed to the top end of the rotating column, and a mounting square pipe is fixed to the top face of the rotating disc. A lifting folded plate is slidably arranged in the mounting square pipe, a sliding groove is formed in the top face of the lifting folded plate, a sliding plate is slidably arranged in the sliding groove, a sliding rod is slidably inserted in the sliding plate, a mounting plate is fixed to the bottom end of the sliding rod, and a spring is wound on the surface of the sliding rod. Connecting plates are slidably arranged on the two sides of the mounting plate correspondingly, and bearing folded plates are fixed to the bottom faces of the connecting plates. In the transferring process of the energy storage module, the position of the supporting cylinder on the ground is not changed, the energy storage module is hung on the ground in the whole process and does not make direct contact with the bottom face, and therefore interference of other stacked objects on the ground can be ignored.
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Description

Technical Field

[0001] This utility model relates to the technical field of energy storage module transfer, specifically a transfer device for energy storage modules. Background Technology

[0002] Energy storage module transfer refers to the process of moving energy storage modules (such as battery modules, supercapacitor modules, etc.) from one place or device to another within an energy storage system. This process typically involves the following steps: unlocking, disassembly, handling, and installation.

[0003] According to Chinese Patent No. CN220924189U, a transfer device for energy storage battery modules includes: a main body with several layers of frames on it, the frames having a folded state and a flat state, and several sets of rolling support members on each layer of frames. The energy storage battery modules are placed on the rolling support members of each layer. When it is necessary to place or remove the energy storage battery modules on the rolling support members, the upper frame can be in a folded state.

[0004] In the above scheme, the use of a mobile component to move the energy storage module on the ground still has the following drawbacks: when the mobile component moves the main body and the energy storage module on the ground, the transfer of the energy storage module may be affected by debris piled on the ground. Utility Model Content

[0005] The purpose of this invention is to provide a transfer device for energy storage modules, so as to solve the problem that when the moving component moves the main body and the energy storage module on the ground, the transfer of the energy storage module may be affected by the debris piled on the ground.

[0006] To achieve the above-mentioned utility model objectives, the present utility model adopts the following technical solution: a transfer device for an energy storage module, comprising a support cylinder, a rotating column rotatably disposed inside the support cylinder, a plurality of bearings fixedly sleeved on the surface of the rotating column, the outer ring surface of the bearings being fixed to the inner wall surface of the support cylinder, a rotating disk fixed at the top of the rotating column, an mounting square tube fixed on the top surface of the rotating disk, a lifting folding plate slidably disposed inside the mounting square tube, a sliding groove provided on the top surface of the lifting folding plate, a sliding plate slidably disposed inside the sliding groove, sliding openings provided on both sides of the sliding groove, limiting rollers rotatably disposed on both sides of the sliding plate, the limiting rollers being slidably disposed with the sliding openings, a sliding rod slidably inserted into the sliding plate, an mounting plate fixed at the bottom end of the sliding rod, a spring wound around the surface of the sliding rod, one end of the spring being fixed to the bottom surface of the sliding plate, the other end of the spring being fixed to the top surface of the mounting plate, connecting plates slidably disposed on both sides of the mounting plate, and a supporting folding plate fixed on the bottom surface of the connecting plate.

[0007] Preferably, stabilizing tubes are fixed on both sides of the sliding plate, and stabilizing rods are slidably inserted inside the stabilizing tubes, with the bottom end of the stabilizing rods fixed to the top surface of the mounting plate.

[0008] Preferably, a plurality of sleeve holes are provided on both sides of the mounting square tube, and a through hole is provided on one side of the lifting folding plate. A limiting pin is slidably inserted into the sleeve hole, and one end of the limiting pin passes through the sleeve hole and is slidably inserted into the through hole.

[0009] Preferably, storage openings are provided on both sides of the mounting plate, and an extension plate is slidably arranged inside the storage opening. One side of the extension plate is fixed to one side of the connecting plate. Two fixing plates are fixed on the top surface of the extension plate, and a rotating shaft is rotatably inserted between the two fixing plates. Rotating columns are fixed at both ends of the rotating shaft through the fixing plates, and extrusion strips are fixed on the surface of the rotating columns.

[0010] Preferably, the mounting square tube has a push port on each side, and the lifting plate has a support column fixed on each side, with the support column slidingly disposed with respect to the push port.

[0011] Preferably, the top surface of the support cylinder is rotatably provided with a plurality of drag-reducing rollers, and the bottom surface of the sliding groove is provided with a plurality of mounting grooves, the inside of which is rotatably provided with sliding rollers.

[0012] Compared with existing technologies, a transfer device for energy storage modules that adopts the above technical solution has the following advantages:

[0013] 1. During the transfer of the energy storage module, the position of the support cylinder on the ground does not change, and the energy storage module is suspended on the ground throughout the process without direct contact with the bottom surface, thus eliminating the interference from other items piled on the ground.

[0014] 2. Depending on the size of the energy storage module to be transferred, the staff will first adjust the distance between the connecting plate and the mounting plate. When the connecting plate is away from the mounting plate, the extension plate slides outward inside the storage port. After the extension plate stops sliding, the staff will apply counterclockwise and clockwise forces to the flipping plates on the left and right rotating shafts, causing the rotating column to rotate and finally press the extrusion strip on the connection between the mounting plate and the extension plate, fixing the position of the extension plate inside the storage port. This allows the size of the energy storage module to be transferred by changing the mounting plate and the supporting plate, increasing the applicable range of the energy storage module.

[0015] Third, when the rotating disk rotates on the top surface of the support cylinder, the bottom surface of the rotating disk is in contact with the surface of the drag-reducing roller. The drag-reducing roller reduces the friction of the rotating disk during rotation. In addition, when the sliding plate slides laterally inside the sliding groove, the sliding roller also reduces the friction of the sliding plate during sliding, increasing the convenience for staff to transport energy storage modules at different distances. Attached Figure Description

[0016] Figure 1 This is a three-dimensional schematic diagram of an embodiment.

[0017] Figure 2 This is a schematic diagram of the split section in an embodiment.

[0018] Figure 3 This is a schematic diagram of the split-off section of the sliding plate and the supporting column in an embodiment.

[0019] Figure 4 This is a schematic diagram of the disassembly of the mounting plate and extension plate in an embodiment.

[0020] In the diagram: 1. Support cylinder; 2. Rotating column; 3. Bearing; 4. Rotating disk; 5. Mounting square tube; 6. Lifting folding plate; 7. Sliding groove; 8. Sliding plate; 9. Sliding port; 10. Limiting roller; 11. Sliding rod; 12. Spring; 13. Mounting plate; 14. Connecting plate; 15. Supporting folding plate; 16. Storage port; 17. Extension plate; 18. Stabilizing tube; 19. Stabilizing rod; 20. Fixing plate; 21. Rotating shaft; 22. Rotating column; 23. Extrusion strip; 24. Sleeve hole; 25. Through hole; 26. Limiting pin; 27. Push port; 28. Lifting column; 29. ​​Mounting groove; 30. Sliding roller; 31. Drag-reducing roller. Detailed Implementation

[0021] The preferred embodiments of this utility model will now be described in detail with reference to the accompanying drawings.

[0022] like Figures 1-4As shown, a transfer device for an energy storage module includes a support cylinder 1. A rotating column 2 is rotatably mounted inside the support cylinder 1. Several bearings 3 are fixedly sleeved on the surface of the rotating column 2, with the outer ring of the bearings 3 fixed to the inner wall of the support cylinder 1. A rotating disk 4 is fixed to the top of the rotating column 2. A mounting square tube 5 is fixed to the top surface of the rotating disk 4. A lifting baffle 6 is slidably mounted inside the mounting square tube 5. A sliding groove 7 is formed on the top surface of the lifting baffle 6. A sliding plate 8 is slidably mounted inside the sliding groove 7. Sliding openings 9 are formed on both sides of the sliding groove 7. Limiting rollers 10 are rotatably mounted on both sides of the sliding plate 8, slidingly mounted with the sliding openings 9. A sliding rod 11 is slidably inserted into the sliding plate 8, with its bottom end fixed... There is a mounting plate 13, and a spring 12 is wound around the surface of the sliding rod 11. One end of the spring 12 is fixed to the bottom surface of the sliding plate 8, and the other end of the spring 12 is fixed to the top surface of the mounting plate 13. Connecting plates 14 are slidably arranged on both sides of the mounting plate 13. A supporting folding plate 15 is fixed to the bottom surface of the connecting plate 14. A stabilizing tube 18 is fixed to both sides of the sliding plate 8. A stabilizing rod 19 is slidably inserted inside the stabilizing tube 18. The bottom end of the stabilizing rod 19 is fixed to the top surface of the mounting plate 13. Several sleeve holes 24 are opened on both sides of the mounting square tube 5. A through hole 25 is opened on one side of the lifting folding plate 6. A limiting pin 26 is slidably inserted inside the sleeve hole 24. One end of the limiting pin 26 passes through the sleeve hole 24 and is slidably inserted into the through hole 25.

[0023] During use, when transferring the energy storage module, the staff will first push the mounting plate 13 to move it directly above the energy storage module, and then apply a downward force to the mounting plate 13 so that the bottom surface of the mounting plate 13 is in contact with the top surface of the energy storage module. Finally, the two connecting plates 14 are pushed to move towards each other, and the energy storage module is lifted up by the supporting folding plate 15. Then the staff applies a lateral pushing force to the mounting plate 13 so that the mounting plate 13 and the energy storage module below it rotate around the rotating column 2 as the center.

[0024] During the transfer of the energy storage module, the position of the support cylinder 1 on the ground does not change, and the energy storage module is suspended on the ground without direct contact with the bottom surface, thus eliminating the interference from other items piled on the ground.

[0025] like Figure 4 As shown, storage openings 16 are provided on both sides of the mounting plate 13. An extension plate 17 is slidably arranged inside the storage opening 16. One side of the extension plate 17 is fixed to one side of the connecting plate 14. Two fixing plates 20 are fixed on the top surface of the extension plate 17. A rotating shaft 21 is rotatably inserted between the two fixing plates 20. Rotating columns 22 are fixed at both ends of the rotating shaft 21 through the fixing plates 20. An extrusion strip 23 is fixed on the surface of the rotating column 22.

[0026] During use, depending on the size of the energy storage module to be transferred, the operator will first adjust the distance between the connecting plate 14 and the mounting plate 13. When the connecting plate 14 moves away from the mounting plate 13, the extension plate 17 slides outward inside the storage port 16. After the extension plate 17 stops sliding, the operator will apply counterclockwise and clockwise forces to the flipping plates on the left and right rotating shafts 21, causing the rotating column 22 to rotate, and finally causing the extrusion strip 23 to press on the connection between the mounting plate 13 and the extension plate 17, fixing the position of the extension plate 17 inside the storage port 16. This allows the size of the energy storage module that can be transferred by the mounting plate 13 and the supporting folding plate 15 to be changed, increasing the applicability of the energy storage module.

[0027] like Figure 2 and Figure 3 As shown, push ports 27 are provided on both sides of the mounting square tube 5, and lifting columns 28 are fixed on both sides of the lifting folding plate 6. The lifting columns 28 and push ports 27 are slidably arranged. Several drag-reducing rollers 31 are rotatably arranged on the top surface of the support cylinder 1. Several mounting grooves 29 are provided on the bottom surface of the sliding groove 7. Sliding rollers 30 are rotatably arranged inside the mounting grooves 29.

[0028] During use, when the rotating disk 4 rotates on the top surface of the support cylinder 1, the bottom surface of the rotating disk 4 is in contact with the surface of the drag-reducing roller 31. The drag-reducing roller 31 reduces the friction of the rotating disk 4 during rotation. In addition, when the sliding plate 8 slides laterally inside the sliding groove 7, the sliding roller 30 also reduces the friction of the sliding plate 8 during sliding, increasing the convenience for staff to transport energy storage modules at different distances.

[0029] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A transport device for energy storage modules, comprising a support cylinder (1), characterized in that, The inner rotation of the supporting cylinder (1) is provided with a rotating column (2), the surface of the rotating column (2) is fixedly sleeved with a plurality of bearings (3), the surface of the outer ring of the bearing (3) is fixed with the inner wall surface of the supporting cylinder (1), the top end of the rotating column (2) is fixedly provided with a rotating disc (4), the top surface of the rotating disc (4) is fixedly provided with a mounting square tube (5), the inner side of the mounting square tube (5) is slidably provided with a lifting folding plate (6), the top surface of the lifting folding plate (6) is provided with a sliding groove (7), the inner side of the sliding groove (7) is slidably provided with a sliding plate (8), the inner sides of the sliding groove (7) are respectively provided with sliding openings (9), the two sides of the sliding plate (8) are rotatably provided with limiting rollers (10), the limiting rollers (10) are slidably provided with the sliding openings (9), the sliding plate (8) is slidably provided with a sliding rod (11), the bottom end of the sliding rod (11) is fixedly provided with a mounting plate (13), the surface of the sliding rod (11) is wound with a spring (12), one end of the spring (12) is fixedly provided with the bottom surface of the sliding plate (8), the other end of the spring (12) is fixedly provided with the top surface of the mounting plate (13), the two sides of the mounting plate (13) are slidably provided with connecting plates (14), and the bottom surface of the connecting plate (14) is fixedly provided with a supporting folding plate (15).

2. The transfer device for energy storage modules of claim 1, wherein: The two sides of the sliding plate (8) are respectively fixedly provided with stable tubes (18), the inner sides of the stable tubes (18) are slidably provided with stable rods (19), and the bottom ends of the stable rods (19) are fixedly provided with the top surface of the mounting plate (13).

3. The transfer device for energy storage modules of claim 1, wherein: The two sides of the mounting square tube (5) are respectively provided with a plurality of sleeving holes (24), one side of the lifting folding plate (6) is provided with a penetrating hole (25), the inner sides of the sleeving holes (24) are slidably provided with limiting pins (26), and one end of the limiting pin (26) penetrates through the sleeving hole (24) and is slidably provided with the penetrating hole (25).

4. The transfer device for energy storage modules of claim 1, wherein: The two sides of the mounting plate (13) are respectively provided with storage openings (16), the inner sides of the storage openings (16) are slidably provided with extension plates (17), one side of the extension plate (17) is fixedly provided with one side of the connecting plate (14), the top surface of the extension plate (17) is fixedly provided with two fixed plates (20), a rotating shaft (21) is rotatably provided between the two fixed plates (20), the two ends of the rotating shaft (21) penetrating through the two fixed plates (20) are respectively fixedly provided with rotating columns (22), and the surface of the rotating column (22) is fixedly provided with extrusion strips (23).

5. The transfer device for energy storage modules of claim 1, wherein: The two sides of the mounting square tube (5) are respectively provided with pushing openings (27), the two sides of the lifting folding plate (6) are respectively fixedly provided with lifting columns (28), and the lifting columns (28) are slidably provided with the pushing openings (27).

6. The transfer device for energy storage modules of claim 1, wherein: The top surface of the supporting cylinder (1) is rotatably provided with a plurality of drag reduction rollers (31), the inner bottom surface of the sliding groove (7) is provided with a plurality of mounting grooves (29), and the inner side of the mounting groove (29) is rotatably provided with a sliding roller (30).

Citation Information

Patent Citations

  • Transfer device for energy storage battery module

    CN220924189U