A graphene battery transport device

CN224782749UActive Publication Date: 2026-09-22CHONGQING GRAPHENE RES INST CO LTD
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Patent Information

Application Number
CN202521862536.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-31
Publication Date
2026-09-22
Estimated Expiration
2035-08-31

AI Technical Summary

Technical Problem

[0005]本实用新型意在提供一种石墨烯电池运输装置,以解决电池不便于从安装孔中取出的问题

Benefits of technology

[0005]本实用新型意在提供一种石墨烯电池运输装置,以解决电池不便于从安装孔中取出的问题。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of graphene battery transfer, concretely relates to a graphene battery transportation device, including the placing box, the placing box includes the box body and the box cover, is fixed with the fixed part in the box body, is equipped with a plurality of vertical mounting holes on the fixed part, is equipped with the pusher plate below the fixed part in the box body, the pusher plate transversely sets up in the box body, the pusher plate vertically slidingly connects in the box body, and the pusher plate is connected with the compression spring between the box body bottom. Through the scheme, the problem that the battery is inconvenient to take out from the mounting hole is solved.
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Description

Technical Field

[0001] This utility model relates to the field of graphene battery transport, specifically to a graphene battery transport device. Background Technology

[0002] Graphene batteries are a new type of battery technology based on graphene materials. Their core advantage lies in using the unique physicochemical properties of graphene (such as high conductivity, lightweight, and high strength) to improve battery performance.

[0003] One type of graphene battery is a cylindrical battery. During the transport of the battery after production, the conventional method is to place the graphene battery into a placement box. The placement box is equipped with components such as a sponge block. Specifically, the top of the sponge block has mounting holes that mate with the cylindrical battery. When transporting the battery, the battery is inserted into the mounting holes, the box is closed, and then it is placed on a transport vehicle for transport.

[0004] The current battery holder has the following disadvantages: after the battery is inserted into the mounting hole, the top of the battery is basically flush with the top of the mounting hole. When the battery is removed from the mounting hole, the top of the battery protruding from the mounting hole is relatively short, making it inconvenient to remove the battery from the mounting hole. Utility Model Content

[0005] The present invention aims to provide a graphene battery transport device to solve the problem that the battery is inconvenient to remove from the mounting hole.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: a graphene battery transport device, comprising a placement box, the placement box comprising a box body and a box cover, a fixing part fixedly disposed inside the box body, the fixing part having multiple vertical mounting holes, a push plate located below the fixing part inside the box body, the push plate being horizontally disposed inside the box body, the push plate being vertically slidably connected to the box body, and a compression spring connecting the push plate and the bottom of the box body.

[0007] The principle and advantages of this solution are as follows: Multiple cylindrical batteries are inserted into different mounting holes in the fixing part, with the bottom of the battery abutting against the top push plate, and the top of the battery protruding a certain distance from the mounting hole. Then, the cover is closed, pressing down on the top of the battery. The battery pushes the top push plate downward, which compresses the pressure spring, causing the top push plate to move downward without affecting the downward movement of the battery. The cover pushes the battery downward in the mounting hole, and the battery does not obstruct the cover from closing on the box. After the cover is closed on the box, the battery is inserted into the mounting hole, with the bottom of the battery abutting against the top push plate and the top of the battery abutting against the cover. This ensures that the battery is stably positioned in the mounting hole and will not wobble in the box, allowing it to remain stable during transportation.

[0008] After the batteries are transported, when they are needed, the cover is opened from the box. The cover no longer presses against the top of the battery, and the top of the battery is no longer restricted by the cover. The push plate moves upward under the force of the compression spring, pushing the battery upward. The battery moves upward into the mounting hole, and the top of the battery protrudes a short distance from the mounting hole, making it easier to hold and remove the battery. Therefore, this solution automatically moves the battery a short distance from the mounting hole after the cover is opened, facilitating manual removal and solving the problem of the battery being difficult to remove from the mounting hole.

[0009] In addition, the push plate in this design can move vertically inside the box. This means that when the battery length increases, the lid closes on the box and the push plate moves downward a greater distance. When the battery length decreases, the lid closes on the box and the push plate moves downward a smaller distance. Therefore, batteries of different lengths can be placed in the mounting holes, and the box can accommodate batteries of different lengths. This solves the problem that the box can only hold batteries of a single fixed length.

[0010] Preferably, as an improvement, the top of the push plate is provided with a plurality of first placement slots, which are opposite to the mounting holes.

[0011] Thus, the battery is inserted into the mounting hole, and the bottom of the battery is inserted into the first placement slot. The first placement slot serves to accommodate the bottom of the battery, and the interaction between the bottom of the battery and the push plate is more stable.

[0012] Preferably, as an improvement, a first elastic layer is fixedly provided on the bottom and inner wall of the first placement groove. Thus, the first elastic layer has a certain degree of flexibility, which can increase the softness within the first placement groove, ensuring that the contact between the bottom of the battery and the first placement groove is not a hard contact, thereby providing some protection for the bottom of the battery.

[0013] Preferably, as an improvement, the lid has multiple second placement slots on the side facing the box body, and the second placement slots are opposite to the mounting holes.

[0014] Thus, the lid is placed on the box body, and the top of the battery is inserted into the second placement slot. The second placement slot serves to accommodate the top of the battery, making the interaction between the top of the battery and the lid more stable.

[0015] Preferably, as an improvement, a second elastic layer is fixedly provided on the bottom and inner wall of the second placement groove. Thus, the second elastic layer has a certain degree of flexibility, which can increase the flexibility within the second placement groove, ensuring that the contact between the top of the battery and the second placement groove is not a hard contact, thereby providing some protection for the top of the battery.

[0016] Preferably, as an improvement, a telescopic cylinder is sleeved on the outer side of the compression spring. The telescopic cylinder includes a first sliding cylinder fixedly connected to the push plate and a second sliding cylinder fixedly connected to the bottom of the box body. The first sliding cylinder and the second sliding cylinder are slidably engaged.

[0017] Therefore, the telescopic cylinder is fitted outside the compression spring, and the telescopic cylinder has a limiting effect on the compression spring, preventing it from bending when compressed. When the push plate moves vertically, the first sliding cylinder and the second sliding cylinder slide relative to each other, thereby changing the length of the telescopic cylinder.

[0018] Preferably, as an improvement, the box body includes a box body and a box bottom plate, the bottom of the box body is open, and the box bottom plate is detachably connected to the bottom of the box body; the box bottom plate serves as the bottom of the box body.

[0019] Therefore, when assembling the top push plate, the bottom of the box body is in an open state, allowing the top push plate to be inserted from the bottom of the box body. Then, the bottom plate is fixed to the bottom of the box body, sealing the bottom of the box body. This ensures the top push plate is installed inside the box body without falling out. Therefore, this solution facilitates the assembly of the top push plate into the box body.

[0020] Preferably, as an improvement, the inner wall of the box body is provided with a vertical groove, and a slider is fixedly connected to the top push plate, with the slider located in the groove.

[0021] Preferably, as an improvement, the box body also includes a top plate, the top of the box body is open, a slot is provided on the inner wall of the box body, the top of the slot communicates with the outside of the box body, a block is fixedly provided on the side of the fixing part, the block is placed in the slot, the top plate is detachably connected to the top of the box body, and the top plate presses on the block.

[0022] Therefore, during the assembly of the fixing part, the top of the box body is in an open state, allowing the fixing part to be inserted from the top of the box body. The locking block on the side of the fixing part is inserted into the slot on the inner wall of the box body. Then, the top plate of the box is fixed to the top of the box body, pressing the top plate against the locking block. The top of the locking block abuts against the top plate, and the bottom of the locking block abuts against the bottom of the slot, thus securing the fixing part inside the box body. This design facilitates the assembly of the fixing part into the box body. Furthermore, this design also facilitates the replacement of the fixing part inside the box body. When placing batteries of different lengths inside the box, the diameter of the batteries usually changes. Therefore, by replacing the fixing part with mounting holes of different diameters, the mounting holes of the fixing part can accommodate batteries of different diameters.

[0023] Preferably, as an improvement, the lid and the box body are snap-fitted together. Using this snap-fit ​​method makes it easier for the lid to close and secure itself to the box body. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the transport vehicle.

[0025] Figure 2 This is a cross-sectional view of the box.

[0026] Figure 3 for Figure 2 A magnified view of A in the middle.

[0027] Figure 4 for Figure 2 A magnified view of B in the middle.

[0028] Figure 5 for Figure 2 A magnified view of C. Detailed Implementation

[0029] The following detailed description illustrates the specific implementation method: The reference numerals in the accompanying drawings include: 1. Transport box; 101. Placement cavity; 2. Roller; 3. Rotating door; 4. Support frame; 5. Box body; 6. Box bottom plate; 7. Box top plate; 8. Fixing part; 9. Second elastic layer; 10. Second placement groove; 11. Rotating part; 12. Snap-fit ​​block; 13. Push plate; 14. First elastic layer; 15. First placement groove; 16. Mounting hole; 17. Second sliding cylinder; 18. First sliding cylinder; 19. Compression spring; 20. Slider; 21. First screw; 22. Second screw; 23. Snap-fit ​​block; 24. Slide groove; 25.

[0030] The basic implementation examples are as follows: Figures 1-5 As shown: A graphene battery transport device includes a transport vehicle and a placement box located inside the transport vehicle. (In conjunction with...) Figure 1 As shown, the transport vehicle includes a rectangular transport box 1 with a hollow interior forming a placement space. Rollers 2 are rotatably connected to the four corners of the bottom of the transport box 1, allowing it to be moved. A rotating door 3 is rotatably connected to the front right side of the transport box 1 via a hinge. When the rotating door 3 is opened, a graphene battery (as described in the prior art) can be placed inside the transport box 1. In this embodiment, multiple horizontal support frames 4 are fixedly installed inside the transport box 1, with the space between adjacent support frames 4 forming a placement cavity 101. The support frames 4 support the placement box when it is placed into the placement cavity 101. Thus, a placement box can be placed on each different support frame 4.

[0031] Combination Figures 2-5 As shown below, the specific structure of the placement box will be described in detail.

[0032] The box includes a box body and a lid 5. The box body includes a main body 6, a bottom plate 7, and a top plate 8. The main body 6 is a square frame structure (formed by four fixed side plates). The top and bottom of the main body 6 are open. A slot is provided on the inner wall of the main body 6. The top of the slot communicates with the outside of the main body 6, and the bottom of the slot is located in the middle of the main body 6. A fixing part 9 is fixed inside the box. In this embodiment, the fixing part 9 is specifically a sponge block or a rubber block. A locking block 24 is integrally fixed to the side of the fixing part 9. When the fixing part 9 is inserted from the top of the main body 6, the locking block 24 is inserted into the slot, and the bottom of the locking block 24 abuts against the bottom of the slot. Figure 3 As shown, the top plate 8 is then placed on top of the main body 6. The top plate 8 and the main body 6 are fixed together by multiple first screws 22, thus securing the top plate 8 to the top of the main body 6. The top plate 8 is fixed to the top of the main body 6 and presses against the locking block 24, thereby limiting and fixing the fixing part 9 to the main body 6. The fixing part 9 will not move upwards and detach from the main body 6. In this embodiment, the top plate 8 has a square hole through which the top of the fixing part 9 protrudes. The top surface of the fixing part 9 is flush with the top surface of the top plate 8.

[0033] In this embodiment, the fixing part 9 is provided with a plurality of vertical mounting holes 17. The top of the mounting hole 17 communicates with the outside of the fixing part 9, and the bottom of the mounting hole 17 communicates with the outside of the fixing part 9.

[0034] The box contains a push plate 14 located below the fixing part 9. The push plate 14 is horizontally positioned within the box and vertically slidably connected to it. A compression spring 20 connects the push plate 14 to the bottom of the box. A telescopic sleeve is fitted around the outside of the compression spring 20. Figure 5 As shown, the telescopic cylinder includes a first sliding cylinder 19 welded and fixedly connected to the push plate 14 and a second sliding cylinder 18 welded and fixedly connected to the bottom plate 7. The diameter of the first sliding cylinder 19 is larger than the diameter of the second sliding cylinder 18. The first sliding cylinder 19 is sleeved on the outside of the second sliding cylinder 18, and the first sliding cylinder 19 and the second sliding cylinder 18 are slidably engaged. Using the above structure, during installation, the push plate 14 with the first sliding cylinder 19 welded to it is inserted into the box body 6 from the bottom. Then, a compression spring 20 is placed inside the first sliding cylinder 19. Subsequently, the bottom plate 7 is placed on the bottom of the box body 6 (at this time, the second sliding cylinder 18 is inserted into the first sliding cylinder 19, and the compression spring 20 also enters the second sliding cylinder 18). Figure 4 As shown, the box body 6 and the box bottom plate 7 are fixed together using multiple second screws 23.

[0035] Therefore, the box with the above structure makes it easy to install the fixing part 9 and the push plate 14 inside the box.

[0036] In some embodiments, the top of the push plate 14 is provided with a plurality of first placement grooves 16, which are opposite to the mounting holes 17. The bottom and inner wall of the first placement grooves 16 are fixed (e.g., bonded) with a first elastic layer 15, which is made of, for example, rubber or sponge material.

[0037] In addition, in some embodiments, in order to improve the smoothness of vertical movement of the push plate 14, a vertical groove 25 is provided on the inner wall of the box body 6, and a slider 21 is integrally fixedly connected to the edge of the push plate 14. The slider 21 is located in the groove 25 and can slide in the groove 25.

[0038] In this embodiment, the lid 5 is snapped onto the box body, specifically by means of: combining... Figure 3 As shown, a rotating part 12 is provided on the side of the lid 5. The rotating part 12 and the lid 5 are connected by a folding piece, or by a hinge, pivot, or swivel, so that the rotating part 12 can fold relative to the lid 5. The rotating part 12 is provided with a locking hole, and a locking block 13 is integrally fixed on the side of the top of the box body 6. When the lid 5 is closed on the top of the box body, the rotating part 12 is folded and rotated, and hooked onto the locking block 13 through the locking hole, thereby realizing the connection between the rotating part 12 and the locking block 13, and the lid 5 is fixed to the box body.

[0039] In some embodiments, the lid 5 has a plurality of second placement slots 11 on the side facing the box body, and the second placement slots 11 are opposite to the mounting holes 17. A second elastic layer 10 is bonded and fixed to the bottom and inner wall of the second placement slot 11, and the second elastic layer 10 is made of, for example, rubber or sponge material.

[0040] In this embodiment, the length of the mounting hole 17 can be 30-40mm, and the depth of both the first placement groove 16 and the second placement groove 11 can be 5mm. The diameter of the mounting hole 17 can be 18-30mm.

[0041] When using the placement box in this embodiment, the box cover 5 is removed from the box body, and multiple cylindrical batteries are inserted into different mounting holes 17 of the fixing part 9. The bottom of the battery enters the first placement groove 16 of the push plate 14, and the bottom of the battery abuts against the push plate 14. At this time, the top of the battery protrudes a certain distance (e.g., 10mm) from the mounting hole 17. After all the mounting holes 17 are filled with batteries, the box cover 5 is closed, and the top of the battery is inserted into the second placement groove 11 on the box cover 5. The box cover 5 presses down on the top of the battery, and the battery pushes the push plate 14 downward. The push plate 14 compresses the compression spring 20, the first sliding cylinder 19 slides downward, the telescopic cylinder shortens, and the push plate 14 moves downward. The push plate 14 does not affect the downward movement of the battery. The box cover 5 pushes the battery downward in the mounting hole 17, and the battery does not obstruct the box cover 5 from closing on the box body. After the cover 5 is closed on the box body, it is hooked onto the snap-fit ​​block 13 by the rotating part 12, thereby fixing the cover 5 and the box body. The cover 5 will not open automatically. At this time, the battery is inserted into the mounting hole 17, the bottom of the battery abuts against the push plate 14, and the top of the battery abuts against the cover 5. In this way, the battery can be stably located in the mounting hole 17 and will not shake in the placement box. When the placement box is placed into the transport box 1, the battery can be stably located in the placement box during transportation.

[0042] After the battery is transported, when the battery is needed, the rotating part 12 is folded over, and the rotating part 12 is no longer hooked on the snap-fit ​​block 13. The cover 5 is opened from the box body, and the cover 5 no longer abuts against the top of the battery. The top of the battery is no longer restricted by the cover 5. The push plate 14 moves upward under the elastic force of the compression spring 20. At this time, the telescopic cylinder extends, and the push plate 14 pushes the battery upward. The battery moves upward in the mounting hole 17, and the top of the battery extends a distance from the mounting hole 17, making it easier to hold the battery and remove it from the mounting hole 17.

[0043] Since the bottom plate 7 and top plate 8 are both fixed to the body 6 with screws, both the bottom plate 7 and top plate 8 can be opened, allowing the corresponding fixing parts 9 and push plates 14 to be replaced. Different fixing parts 9 have different diameter mounting holes 17, and different push plates 14 have different diameters of first placement slots 16, allowing batteries of different diameters to be placed in the box by replacing the fixing parts 9 and push plates 14. The cover 5 itself can also be replaced; different covers 5 have second placement slots 11 of different diameters, allowing for the placement of batteries of different diameters by replacing the cover 5.

[0044] The above descriptions are merely embodiments of this utility model. Commonly known technical solutions and / or characteristics are not described in detail here. It should be noted that those skilled in the art can make various modifications and improvements without departing from the technical solution of this utility model. These modifications and improvements should also be considered within the scope of protection of this utility model, and will not affect the effectiveness of the implementation of this utility model or the practicality of the patent. The scope of protection claimed in this application should be determined by the content of its claims, and the specific embodiments described in the specification can be used to interpret the content of the claims.

Claims

1. A graphene battery transport device, comprising a placement box, the placement box including a box body and a box cover, a fixing part fixedly disposed inside the box body, the fixing part having a plurality of vertical mounting holes, characterized in that: The box body is provided with a push plate located below the fixing part. The push plate is horizontally arranged in the box body and vertically slidably connected in the box body. A compression spring is connected between the push plate and the bottom of the box body.

2. The graphene battery transport device according to claim 1, characterized in that: The top of the push plate is provided with a plurality of first placement slots, which are opposite to the mounting holes.

3. The graphene battery transport device according to claim 2, characterized in that: The bottom and inner wall of the first placement groove are both fixedly provided with a first elastic layer.

4. The graphene battery transport device according to claim 1, characterized in that: The box cover has multiple second placement slots on the side facing the box body, and the second placement slots are opposite to the mounting holes.

5. A graphene battery transport device according to claim 4, characterized in that: A second elastic layer is fixedly provided on the bottom and inner wall of the second placement groove.

6. The graphene battery transport device according to claim 1, characterized in that: The compression spring is fitted with a telescopic cylinder, which includes a first sliding cylinder fixedly connected to the top push plate and a second sliding cylinder fixedly connected to the bottom of the box body. The first sliding cylinder and the second sliding cylinder are slidably engaged.

7. A graphene battery transport device according to claim 6, characterized in that: The box includes a main body and a bottom plate. The bottom of the main body is open, and the bottom plate is detachably connected to the bottom of the main body; the bottom plate serves as the bottom of the box.

8. A graphene battery transport device according to claim 7, characterized in that: The inner wall of the box body is provided with a vertical sliding groove, and a slider is fixedly connected to the top push plate, the slider being located in the sliding groove.

9. A graphene battery transport device according to claim 6, characterized in that: The box body also includes a top plate. The top of the box body is open. A slot is provided on the inner wall of the box body. The top of the slot communicates with the outside of the box body. A locking block is fixed on the side of the fixing part. The locking block is placed in the slot. The top plate is detachably connected to the top of the box body and presses on the locking block.

10. A graphene battery transport device according to claim 1, characterized in that: The lid and body of the box are snapped together.