Dual-mode compatible energy storage case stacking structure

The structure, consisting of a base plate, a middle partition plate, and a top plate, combined with components such as side plates, shafts, bushings, baffles, bolts, and guardrails, solves the problem of unstable position after stacking energy storage enclosures, achieving tight connection and convenient operation, and improving the stability and working efficiency of energy storage enclosures.

CN224288447UActive Publication Date: 2026-05-26ZAOZHUANG HAIDI ENERGY TECH

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZAOZHUANG HAIDI ENERGY TECH
Filing Date
2025-06-06
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing energy storage enclosures lack effective reinforcement structures when stacked, resulting in unstable positions. Furthermore, the external wrapping and entanglement of the enclosures with film leads to resource waste and affects work efficiency.

Method used

The structure consists of a base plate, a middle partition plate, and a top plate, combined with components such as side plates, shafts, bushings, baffles, bolts, and guardrails. The tight connection and fixed position of the chassis are achieved through threaded connections and limit groove design.

Benefits of technology

It improves the stability and convenience of the energy storage chassis stacking structure, reduces manual labor, avoids resource waste, and improves work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a dual-mode compatible energy storage case stacking structure which comprises a bottom plate, a first middle partition plate, a second middle partition plate and a top plate are sequentially arranged above the bottom plate, and case bodies are stacked among the bottom plate, the first middle partition plate, the second middle partition plate and the top plate. After the case body is placed on the surface of the bottom plate, the case body can abut against the outer sides of the side plates and the fixing rods, the position of the case body is limited, a worker can conveniently push the case body in the position, the first middle partition plate, the second middle partition plate and the top plate can be sequentially stacked on the bottom plate upwards in the follow-up process, and the work efficiency is improved. Then a first bolt rotates in a first threaded hole, one end of the first bolt is tightly attached to the outer side of the shaft body, the baffle can be tightly attached to the outer side of the case body, then a T-shaped block rotates in a T-shaped groove, a second bolt is meshed with the interior of a second threaded hole, and a breast board can be tightly attached to the outer sides of the bottom plate, the first middle partition plate, the second middle partition plate and the top plate; therefore, tight connection of the whole structure is completed.
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Description

Technical Field

[0001] This utility model relates to the field of energy storage chassis stacking technology, specifically a dual-mode compatible energy storage chassis stacking structure. Background Technology

[0002] An energy storage enclosure is a device used to store and release electrical energy. It typically consists of a series of batteries that store electrical energy inside the enclosure and release it to power the system when needed. Energy storage enclosures play an important role in modern society, especially in the field of renewable energy. Due to the instability of renewable energy, energy storage enclosures can help balance the gap between energy supply and demand.

[0003] Currently, after the energy storage chassis are manufactured, they are stacked on pallets to facilitate subsequent relocation. However, existing pallets only serve as support for the stacking and lack reinforcement structures for the pallets and chassis after stacking, leading to instability. Wrapping the chassis with external film is wasteful and hinders personnel. Therefore, we propose a dual-mode compatible energy storage chassis stacking structure to solve these problems. Utility Model Content

[0004] The purpose of this invention is to provide a dual-mode compatible energy storage chassis stacking structure to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a dual-mode compatible energy storage chassis stacking structure, including a base plate, with a first middle partition, a second middle partition, and a top plate arranged sequentially above the base plate. A chassis is stacked between the base plate, the first middle partition, the second middle partition, and the top plate. Side plates abut against the outer side of the chassis, and the side plates are respectively disposed on the base plate, the first middle partition, the second middle partition, and the top plate. Grooves are formed on the outer sides of the first middle partition, the second middle partition, and the top plate, and a fixture is fixedly disposed on the groove. The shaft has a bushing fitted on its outer side, and a baffle is fixedly installed on the bushing. The baffle abuts against the outer side of the housing. A threaded hole is opened on the outer side of the bushing, and a bolt is engaged inside the threaded hole. A T-slot is opened on the outer side of the base plate, and a T-block is inserted inside the T-slot. A guard plate is fixedly installed on the outer side of the T-block, and a bolt is provided on the guard plate. The bolt can engage inside the threaded hole. The threaded holes are respectively opened on the outer sides of the base plate and the top plate.

[0006] As a further preferred embodiment of this technical solution, the outer side of the railing abuts against the outer sides of the first and second middle partitions respectively, and the railing can be horizontally stored on the outer side of the base plate.

[0007] As a further preferred embodiment of this technical solution, the threads on both bolt one and bolt two are fine-pitch threads, and one end of bolt one is tightly attached to the outer side of the shaft.

[0008] As a further preferred embodiment of this technical solution, anti-slip textures are provided on the outer sides of both bolt one and bolt two, and the anti-slip textures are evenly distributed on the outer sides of bolt one and bolt two.

[0009] As a further preferred embodiment of this technical solution, the bushing is slidably connected to the outer side of the shaft body, and both ends of the bushing abut against the outer side of the groove. The groove is arranged in two groups on the outer side of the first partition plate, the second partition plate, and the top plate, respectively.

[0010] As a further preferred embodiment of this technical solution, a bolt three is inserted into the side plate, and the bolt three engages with the interior of a threaded hole three, which is respectively opened on the bottom plate, the middle partition plate one, the middle partition plate two and the top plate.

[0011] As a further preferred embodiment of this technical solution, limiting grooves are provided on the bottom plate, the first partition plate, the second partition plate, and the top plate. A fixing rod is fixedly installed inside the limiting groove, and a roller is fixedly installed on the outside of the fixing rod. The outside of the roller abuts against the housing. The rollers are evenly distributed on the bottom plate, the first partition plate, the second partition plate, and the top plate.

[0012] This utility model provides a dual-mode compatible energy storage chassis stacking structure, which has the following advantages:

[0013] After the chassis is placed on the surface of the base plate, it can abut against the side plates and the outer side of the fixing rod. This not only restricts the position of the chassis but also facilitates the movement of the chassis by personnel. Subsequently, the first partition plate, the second partition plate, and the top plate can be stacked on the base plate in sequence. Then, by rotating the first bolt in the threaded hole, one end of the first bolt is tightly attached to the outer side of the shaft, so that the baffle can be tightly attached to the outer side of the chassis. Then, by rotating the T-block in the T-slot and engaging the second bolt in the threaded hole, the baffle can be tightly attached to the outer side of the base plate, the first partition plate, the second partition plate, and the top plate, thus completing a tight connection of the entire structure.

[0014] This utility model, by providing three bolts and three threaded holes, can effectively fasten the side plate and adjust its position. In addition, by providing a limit groove, a fixing rod and a roller, the machine body can slide on the outside of the roller when the personnel stack or remove the bottom plate, middle partition plate one and middle partition plate two. This facilitates the personnel to push the machine body in position, thereby reducing the labor required. Attached Figure Description

[0015] Figure 1 This is a front view schematic diagram of the structure of this utility model;

[0016] Figure 2 This is a front sectional view of the structure of this utility model;

[0017] Figure 3 This utility model Figure 2 Enlarged structural diagram of A in the middle;

[0018] Figure 4 This is a right-side view of the structure of the side plate and fixing rod of this utility model.

[0019] In the diagram: 1. Base plate; 2. Middle partition 1; 3. Middle partition 2; 4. Top plate; 5. Chassis; 6. Side plate; 7. Groove; 8. Shaft; 9. Bushing; 10. Baffle; 11. Threaded hole 1; 12. Bolt 1; 13. T-slot; 14. T-block; 15. Side panel; 16. Bolt 2; 17. Threaded hole 2; 18. Bolt 3; 19. Threaded hole 3; 20. Limiting groove; 21. Fixing rod; 22. Roller. Detailed Implementation

[0020] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.

[0021] This utility model provides a technical solution: such as Figure 1 , Figure 2 , Figure 3 and Figure 4As shown in this embodiment, a dual-mode compatible energy storage chassis stacking structure includes a base plate 1. A first partition plate 2, a second partition plate 3, and a top plate 4 are sequentially arranged above the base plate 1. A chassis 5 is stacked between the base plate 1, the first partition plate 2, the second partition plate 3, and the top plate 4. Side plates 6 abut against the outer side of the chassis 5. The side plates 6 are respectively disposed on the base plate 1, the first partition plate 2, the second partition plate 3, and the top plate 4. Grooves 7 are formed on the outer sides of the first partition plate 2, the second partition plate 3, and the top plate 4. A shaft 8 is fixedly disposed on the groove 7. A bushing 9 is sleeved on the outer side of the shaft 8. A baffle 10 is fixedly installed on the bushing 9, abutting against the outer side of the chassis 5. Threads are formed on the outer side of the bushing 9. A bolt 12 is internally engaged with the threaded hole 11. A T-slot 13 is provided on the outer side of the base plate 1, and a T-block 14 is inserted into the T-slot 13. A guardrail 15 is fixedly installed on the outer side of the T-block 14. A bolt 16 is provided on the guardrail 15, and the bolt 16 can engage with the inside of the threaded hole 17. The threaded holes 17 are respectively opened on the outer sides of the base plate 1 and the top plate 4. After the chassis 5 is placed on the surface of the base plate 1, the chassis 5 can abut against the outer side of the side plate 6 and the fixing rod 21, which not only restricts the position of the chassis 5, but also facilitates the personnel to push the chassis 5 in position. Subsequently, the middle partition 2, middle partition 3, and top plate 4 can be stacked on the base plate 1 in sequence. By rotating bolt 12 within threaded hole 11, one end of bolt 12 is pressed tightly against the outside of shaft 8, thus allowing baffle 10 to press tightly against the outside of housing 5. Then, by rotating T-block 14 within T-slot 13 and engaging bolt 16 within threaded hole 17, baffle 15 is pressed tightly against the outside of bottom plate 1, middle partition 2, middle partition 3, and top plate 4, thus achieving a tight connection of the entire structure. The outside of baffle 15 abuts against the outside of middle partition 2 and middle partition 3 respectively. Baffle 15 can be laterally stored on the outside of bottom plate 1 for easy access and use. The threads on bolts 12 and 16 are both fine-pitch threads, with one end of bolt 12 pressed tightly against the shaft. The outer side of the body 8 is provided with fine thread, which has self-locking performance and thus improves the stability of the connection. The outer sides of the first bolt 12 and the second bolt 16 are provided with anti-slip texture. The anti-slip texture is evenly distributed on the outer side of the first bolt 12 and the second bolt 16. The anti-slip texture facilitates the rotation of the first bolt 12 and the second bolt 16. The bushing 9 is slidably connected to the outer side of the body 8. The two ends of the bushing 9 abut against the outer side of the groove 7. The groove 7 is arranged in two groups on the outer side of the first partition plate 2, the second partition plate 3 and the top plate 4 respectively. As the bushing 9 slides on the outer side of the body 8 and the first bolt 12 engages in the threaded hole 11, the baffle 10 can effectively restrict the position of the chassis 5.

[0022] like Figure 2 and Figure 4 As shown, a bolt 18 is inserted into the side plate 6, and the bolt 18 engages in the threaded hole 19. The threaded holes 19 are respectively opened on the bottom plate 1, the middle partition 2, the middle partition 3, and the top plate 4. By providing the bolt 18 and the threaded holes 19, the side plate 6 can be effectively fastened and its position can be adjusted. Limiting grooves 20 are opened on the bottom plate 1, the middle partition 2, the middle partition 3, and the top plate 4. A fixing rod 21 is fixedly installed inside the limiting groove 20. A roller 22 is fixedly installed on the outer side of the fixing rod 21. The outer side of the roller 22 abuts against the chassis 5. The roller 22 is evenly distributed on the bottom plate 1, the middle partition 2, the middle partition 3 and the top plate 4. Through the cooperation between the limiting groove 20, the fixing rod 21 and the roller 22, when the personnel stack or remove the bottom plate 1, the middle partition 2 and the middle partition 3, the chassis 5 can slide on the outer side of the roller 22. This facilitates the personnel to push the chassis 5 in position, thereby reducing the labor force.

[0023] This utility model provides a dual-mode compatible energy storage chassis stacking structure, the specific working principle of which is as follows:

[0024] In use, the base plate 1 is positioned on the ground. The pre-machined chassis 5 is then placed on the surface of the base plate 1, with the outer sides of the chassis 5 abutting against the fixing rod 21 and the outer sides of the side plate 6. The chassis 5 is then pushed to smoothly move, aligning it side-by-side on the base plate 1. Through the cooperation of the first partition plate 2, the second partition plate 3, and the top plate 4, the first partition plate 2, the second partition plate 3, the top plate 4, and the chassis 5 are sequentially stacked upwards above the base plate 1. Then, the baffle plate 10 is pushed and pressed against the outer side of the chassis 5, and bolt 12 is inserted into the threaded hole 11. Rotation causes one end of bolt 12 to be tightly pressed against the outer side of shaft 8, thereby restricting the position of the chassis 5 from front to back by baffle 10. Then, the operator rotates the baffle 15 ninety degrees and pushes it to the center position of the outer side of the base plate 1. During this process, T-block 14 rotates and slides inside T-slot 13, so that the baffle 15 abuts against the outer side of partition 2, partition 3 and top plate 4. Then, bolt 2 16 engages with the threaded hole 2 17 on the outer side of top plate 4, thereby connecting the base plate 1, partition 2, partition 3 and top plate 4, thus further improving the overall tightness of the connection.

[0025] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A dual-mode compatible energy storage chassis stacking structure, characterized in that: Includes a base plate (1), above which are arranged a first partition plate (2), a second partition plate (3), and a top plate (4). A chassis (5) is stacked between the base plate (1), the first partition plate (2), the second partition plate (3), and the top plate (4). Side plates (6) abut against the outer side of the chassis (5). The side plates (6) are respectively disposed on the base plate (1), the first partition plate (2), the second partition plate (3), and the top plate (4). Grooves (7) are provided on the outer sides of the first partition plate (2), the second partition plate (3), and the top plate (4). A shaft (8) is fixedly disposed on the groove (7). A bushing (9) is sleeved on the outer side of the shaft (8). 9) A baffle (10) is fixedly installed on the top. The baffle (10) abuts against the outer side of the housing (5). A threaded hole (11) is opened on the outer side of the bushing (9). A bolt (12) is engaged inside the threaded hole (11). A T-slot (13) is opened on the outer side of the bottom plate (1). A T-block (14) is inserted inside the T-slot (13). A guardrail (15) is fixedly installed on the outer side of the T-block (14). A bolt (16) is provided on the guardrail (15). The bolt (16) can be engaged inside the threaded hole (17). The threaded hole (17) is opened on the outer side of the bottom plate (1) and the top plate (4).

2. The dual-mode compatible energy storage chassis stacking structure according to claim 1, characterized in that: The outer side of the guardrail (15) abuts against the outer side of the first partition (2) and the second partition (3) respectively, and the guardrail (15) can be horizontally stored on the outer side of the bottom plate (1).

3. The dual-mode compatible energy storage chassis stacking structure according to claim 1, characterized in that: The threads on both bolt one (12) and bolt two (16) are fine threads, and one end of bolt one (12) is tightly attached to the outside of the shaft (8).

4. The dual-mode compatible energy storage chassis stacking structure according to claim 1, characterized in that: Both bolt one (12) and bolt two (16) have anti-slip patterns on their outer sides, and the anti-slip patterns are evenly distributed on the outer sides of bolt one (12) and bolt two (16).

5. The dual-mode compatible energy storage chassis stacking structure according to claim 1, characterized in that: The bushing (9) is slidably connected to the outside of the shaft (8). The two ends of the bushing (9) abut against the outside of the groove (7). The groove (7) is arranged in two groups on the outside of the first partition plate (2), the second partition plate (3) and the top plate (4).

6. The dual-mode compatible energy storage chassis stacking structure according to claim 1, characterized in that: Bolt 3 (18) is inserted on the side plate (6), and bolt 3 (18) engages in the interior of threaded hole 3 (19). Threaded hole 3 (19) is respectively opened on bottom plate (1), middle partition 1 (2), middle partition 2 (3) and top plate (4).

7. The dual-mode compatible energy storage chassis stacking structure according to claim 1, characterized in that: Limiting grooves (20) are provided on the bottom plate (1), middle partition one (2), middle partition two (3) and top plate (4). A fixing rod (21) is fixedly installed inside the limiting groove (20). A roller (22) is fixedly installed on the outside of the fixing rod (21). The outside of the roller (22) abuts against the housing (5). The rollers (22) are evenly distributed on the bottom plate (1), middle partition one (2), middle partition two (3) and top plate (4).