High-dynamics energy storage battery cell single body and energy storage module applying single body

By designing the protective cover and matching boss structure of the highly dynamic energy storage battery cell monomer, combined with the movable sealing component and electrical connection mechanism, the battery cell body is simple in series and fixed, solving the problem of low assembly efficiency in the prior art, and improving the assembly efficiency of the energy storage module.

CN120184490AActive Publication Date: 2025-06-20智泰新能源(东台)有限公司
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Patent Information

Application Number
CN202510668182.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-06-20
Estimated Expiration
2045-05-23

AI Technical Summary

Technical Problem

In the energy storage module, the series and fixed operations of the highly dynamic energy storage battery cell monomers are cumbersome, resulting in low assembly efficiency, high labor intensity for staff, and requires a lot of time and energy.

Method used

A highly dynamic energy storage battery cell monomer is designed, using a protective cover and a matching boss structure, combining a movable sealing component and a movable electrical connection mechanism to realize the electrical connection and fixation between the battery cell body, and simplifying the assembly process through a threaded load rod and a box closure mechanism.

Benefits of technology

It greatly improves the assembly efficiency of battery cell singles, simplifies the operating process, reduces the labor intensity of staff, shortens assembly time, and improves the assembly efficiency of energy storage modules.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of batteries, in particular to a high-dynamics energy storage battery cell single body and an energy storage module applying the high-dynamics energy storage battery cell single body, the high-dynamics energy storage battery cell single body comprises a battery cell body, a protective carrying sleeve is fixedly arranged on one side of the battery cell body, a matched boss is fixedly arranged on the other side of the battery cell body, a movable sealing assembly is installed at the protective carrying sleeve, and the movable sealing assembly is connected with the matched boss. The movable sealing assembly can seal the protection carrying sleeve and the matching boss, a movable electrical connection mechanism is further installed in the protection carrying sleeve and connected with the movable sealing assembly, the movable electrical connection mechanism is driven by the movable sealing assembly to move, and electrical connection between the battery cell bodies is achieved. The invention further relates to an energy storage module which comprises a module carrying box, a battery cell carrying frame is fixedly arranged in the module carrying box, a battery cell body is positioned through the battery cell carrying frame, and a battery cell fixing rod is matched with the battery cell carrying frame to fix the battery cell body in the battery cell carrying frame.
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Description

Technical Field

[0001] The present invention relates to the technical field of batteries, and particularly to a high-kinetic energy storage cell monomer and an energy storage module using the monomer. Background Art

[0002] High-kinetic energy storage cells can meet the needs of large-scale energy storage applications by improving the cell capacity, energy density and safety. They have very promising application prospects in the field of new energy vehicles. When assembling multiple high-kinetic energy storage cell monomers on an energy storage module, it is necessary for workers to perform series operations between the high-kinetic energy storage cells one by one, which is very troublesome. This not only makes the series operation efficiency relatively low, but also increases the work intensity of the workers. In addition, when installing the high-kinetic energy storage cell monomers, it is also necessary to fix them one by one, which further makes the assembly of the battery module time-consuming and laborious, and the assembly efficiency is low. Summary of the Invention

[0003] The purpose of the present invention is to provide a high-kinetic energy storage cell monomer and an energy storage module using the monomer, so as to solve the problems raised in the above background art.

[0004] To achieve the above purpose, the present invention provides the following technical solutions: A high-kinetic energy storage cell monomer, including a cell body, a protective carrier sleeve is fixedly arranged on one side of the cell body, and a mating boss is fixedly arranged on the other side; An active sealing assembly is installed at the protective carrier sleeve, and the active sealing assembly can seal the protective carrier sleeve and the mating boss; An active electrical connection mechanism is also installed in the protective carrier sleeve. The active electrical connection mechanism is connected to the active sealing assembly. By driving the active electrical connection mechanism to move through the active sealing assembly, the electrical connection between the cell bodies is realized; The active sealing assembly can protect the active electrical connection mechanism, and the active sealing assembly is also connected to a cell fixing component.

[0005] Preferably, the active sealing assembly is a first sealing baffle. When the first sealing baffle seals the protective carrier sleeve, it is inserted into the protective carrier sleeve to close the sleeve opening of the protective carrier sleeve.

[0006] Preferably, a second sealing baffle is also arranged on the first sealing baffle, and the second sealing baffle closes the mating boss.

[0007] Preferably, the active electrical connection mechanism is a movable insulating carrier plate. The movable insulating carrier plate is inserted into the protective carrier sleeve, and electrical connection columns are fixedly arranged on the movable insulating carrier plate.

[0008] Preferably, the battery cell fixing component is a battery cell fixing rod, which is movably installed on the battery cell body, and the battery cell body is fixed by the battery cell fixing rod.

[0009] An energy storage module includes a module carrier box, and a battery cell carrier frame is fixedly arranged in the module carrier box; The battery cell body is positioned by the battery cell carrier frame, and the battery cell fixing rod cooperates with the battery cell carrier frame to fix the battery cell body in the battery cell carrier frame; A box body closing mechanism is installed on the module carrier box. The module carrier box can be closed by the box body closing mechanism, and when the box body closing mechanism moves, it can drive the battery cell fixing component to move and then drive the movable sealing component to move; A cooperating driving component is also installed on the module carrier box, and the cooperating driving component drives the box body closing mechanism to move.

[0010] Preferably, the box body closing mechanism is a box body sealing plate, and the box body sealing plates are respectively installed on both sides of the module carrier box, and the box body sealing plates are closed together to close the module carrier box.

[0011] Preferably, a pushing plate strip is fixedly arranged at the lower end of the box body sealing plate, and the pushing plate strip pushes the battery cell fixing rod to move.

[0012] Preferably, the cooperating driving component includes a displacement carrier plate and a threaded carrier rod. The displacement carrier plate is installed outside one end of the module carrier box, and the threaded carrier rod is movably installed on the module carrier box.

[0013] Preferably, the displacement carrier plate is movably connected to the box body sealing plate, and the box body sealing plate is driven to move by the displacement carrier plate.

[0014] Preferably, a connecting carrier platform is fixedly arranged at one end of the module carrier box away from the displacement carrier plate, and the electrical connection between the battery cell body and the module carrier box is carried out through the connecting carrier platform.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: The structure of the present invention is reasonably arranged and has strong functionality, and has the following advantages: 1. When assembling the battery cell body and the module carrier box, the battery cell body is placed into the module carrier box this time. The position of the battery cell body is determined by the cooperation between the battery cell body and the battery cell carrier frame, and then the threaded carrier rod can be rotated to realize the synchronous electrical connection between multiple battery cell bodies and the fixation of multiple battery cell bodies. The operation is very simple, convenient and fast, and can greatly improve the assembly work efficiency.

[0016] 2. When the threaded load rod moves, it will drive the box body sealing plate to move, and then the module carrier box can be closed under the action of the box body sealing plate. As the box body sealing plate moves, the push bar will push the battery cell fixing rod to move under its action, so that the battery cell fixing rod is inserted into the stable connection hole on the battery cell carrier frame. Through the cooperation of the battery cell fixing rod and the battery cell carrier frame, the fixing of the battery cell body can be realized, and there is no need to fix the battery cell body one by one, which is very fast.

[0017] 3. In addition, as the battery cell fixing rod moves, it will drive the second bearing plate frame to move downward under the action of the cooperation drive rod, and then drive the first sealing baffle and the second sealing baffle to move downward, so that the protective carrier sleeve is opened and the second electrical jack is exposed. At the same time, as the first sealing baffle moves downward, it will also drive the movable insulating carrier plate to move, so that the electrical connection column on the movable insulating carrier plate partially moves out of the protective carrier sleeve and is inserted into the second electrical jack on another battery cell body to realize the connection between the battery cell bodies, and there is no need to connect the battery cell bodies one by one. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a schematic diagram of the first perspective of the assembly of the battery cell body and the module carrier box.

[0019] Figure 2 It is a schematic diagram of the second perspective of the assembly of the battery cell body and the module carrier box.

[0020] Figure 3 It is a schematic diagram of the first perspective of the assembly of the battery cell body.

[0021] Figure 4 It is a schematic diagram of the second perspective of the assembly of the battery cell body.

[0022] Figure 5 It is a schematic diagram of the assembly of the battery cell body and the movable insulating carrier plate.

[0023] Figure 6 It is a schematic diagram of the first perspective structure of the battery cell body.

[0024] Figure 7 It is a schematic diagram of the second perspective structure of the battery cell body.

[0025] Figure 8 It is a schematic diagram of the structure of the first sealing baffle.

[0026] Figure 9 It is a schematic diagram of the structure of the movable closing plate.

[0027] Figure 10 It is a schematic diagram of the structure of the module carrier box.

[0028] Figure 11 For Figure 10 The enlarged schematic diagram of part A in

[0029] Figure 12 It is a structural schematic diagram of the box body sealing plate.

[0030] Figure 13 It is an assembly schematic diagram of the displacement carrier plate.

[0031] In the figure: 1. Battery cell body; 11. Protective carrier sleeve; 111. First electrical jack; 12. Matching carrier rod; 13. Connection channel; 14. Matching baffle; 15. Insertion channel; 16. Matching convex platform; 17. Recessed groove; 18. Second electrical jack; 19. Bearing convex plate; 191. Support guide hole; 2. First sealing baffle; 21. Lower bearing strip; 22. First bearing plate frame; 23. Matching guide hole; 24. First matching spring; 25. Driving connecting rod; 26. Second bearing plate frame; 27. Second sealing baffle; 28. Matching driving rod; 3. Moving insulating carrier plate; 31. Electrical connection column; 32. Movable closing plate; 33. Moving matching groove; 4. Battery cell fixing rod; 41. Movable matching block; 42. Moving connection disc; 43. Second matching spring; 5. Module carrier box; 51. Connection carrier platform; 52. Conductive hole; 53. Electrode; 54. Battery cell carrier frame; 55. Matching convex strip; 56. Stable connection hole; 57. Threaded through hole; 58. Moving insertion hole; 6. Box body sealing plate; 61. Pushing plate strip; 62. Hanging carrier block; 63. Moving guide rod; 64. Connection carrier strip; 7. Displacement carrier plate; 71. Installation through hole; 72. Matching bearing; 73. Threaded carrier rod; 74. Limiting disc; 75. Driving matching strip plate; 76. Displacement connecting rod. Detailed implementation manners

[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0033] The present invention provides a technical solution: Such as Figure 3 、 Figure 4 And Figure 5As shown, a high-dynamics energy storage battery cell monomer includes a battery cell body 1. On one side of the battery cell body 1, a protective carrier sleeve 11 is fixedly arranged, and on the other side, a mating boss 16 is fixedly arranged. An active sealing assembly is installed at the protective carrier sleeve 11. The active sealing assembly can seal the protective carrier sleeve 11 and the mating boss 16. An active electrical connection mechanism is also installed in the protective carrier sleeve 11. The active electrical connection mechanism is connected to the active sealing assembly. By driving the active electrical connection mechanism to move through the active sealing assembly, the electrical connection between the battery cell bodies 1 is realized. The active sealing assembly can protect the active electrical connection mechanism, and the active sealing assembly is also connected to a battery cell fixing component.

[0034] As Figure 6 and Figure 7 shown, a first electrical jack 111 is opened inside the protective carrier sleeve 11. A mating carrier rod 12 is fixedly arranged at the upper end of the protective carrier sleeve 11. Connecting channels 13 are also opened on both sides of the protective carrier sleeve 11. A mating baffle 14 is fixedly arranged at the connecting channels 13. The mating baffle 14 partially shields the outer ports of the connecting channels 13. A plugging channel 15 is also opened at the sleeve mouth of the protective carrier sleeve 11. An indentation groove 17 is arranged on the mating boss 16. A second electrical jack 18 is arranged at the bottom of the indentation groove 17. Bearing convex plates 19 are symmetrically and fixedly arranged on both sides of the battery cell body 1. Support guide holes 191 are opened on the bearing convex plates 19.

[0035] As Figure 3 , Figure 4 and Figure 8 shown, the active sealing assembly is a first sealing baffle 2. When the first sealing baffle 2 seals the protective carrier sleeve 11, it is plugged into the protective carrier sleeve 11 to close the sleeve mouth of the protective carrier sleeve 11. A second sealing baffle 27 is also arranged on the first sealing baffle 2 to close the mating boss 16. The first sealing baffle 2 passes through the plugging channel 15 to seal the protective carrier sleeve 11. A lower bearing strip 21 is fixedly arranged at the lower end of the first sealing baffle 2. A first bearing plate frame 22 is fixedly arranged on the lower bearing strip 21. A mating guide hole 23 is opened on the first bearing plate frame 22. The mating carrier rod 12 is plugged into the mating guide hole 23. A first mating spring 24 is sleeved on the mating carrier rod 12. Both ends of the first mating spring 24 are respectively fixed on the protective carrier sleeve 11 and the first bearing plate frame 22. Driving connecting rods 25 are symmetrically hinged on the first bearing plate frame 22. A second bearing plate frame 26 is also fixedly arranged on the lower bearing strip 21. The second sealing baffle 27 is fixedly arranged on the second bearing plate frame 26. When the second sealing baffle 27 seals the mating boss 16, it seals the second electrical jack 18. At this time, the second sealing baffle 27 is plugged into the indentation groove 17. Mating driving rods 28 are symmetrically hinged at the lower end of the second bearing plate frame 26.

[0036] As Figure 3 ,Figure 5 and Figure 9 As shown in Figure 9 , the movable electrical connection mechanism is the movable insulating carrier plate 3. The movable insulating carrier plate 3 is inserted into the protective carrier sleeve 11. And an electrical connection column 31 is fixedly arranged on the movable insulating carrier plate 3. One end of the electrical connection column 31 is inserted into the first electrical jack 111 in the protective carrier sleeve 11. And movable closing plates 32 are symmetrically and fixedly arranged at both ends of the movable insulating carrier plate 3. The movable closing plates 32 are located outside the protective carrier sleeve 11. And the movable closing plates 32 cover the connection channel 13. A movable matching groove 33 is formed on the inner end surface of the movable closing plate 32. A matching baffle 14 is inserted into the movable matching groove 33. The lower end of the driving connecting rod 25 is hinged to the movable closing plate 32.

[0037] In addition, when the movable insulating carrier plate 3 moves towards the mouth of the protective carrier sleeve 11, the movable closing plate 32 cooperates with the matching baffle 14 to close the connection channel 13.

[0038] As Figure 4 shown, the battery cell fixing component is the battery cell fixing rod 4. The battery cell fixing rod 4 is movably installed on the battery cell body 1. The battery cell body 1 is fixed by the battery cell fixing rod 4. A movable matching block 41 is fixedly arranged at one end of the battery cell fixing rod 4. And the battery cell fixing rod 4 is inserted into the support guide hole 191. A movable connection disk 42 is also fixedly arranged on the battery cell fixing rod 4. The lower end of the movable connection disk 42 is hinged to the matching driving rod 28. In addition, a second matching spring 43 is sleeved on the battery cell fixing rod 4. Both ends of the second matching spring 43 are respectively fixed on the movable connection disk 42 and the bearing convex plate 19.

[0039] As Figure 1 , Figure 2 and Figure 10 shown, an energy storage module includes a module carrier box 5. A battery cell carrier frame 54 is fixedly arranged in the module carrier box 5. The battery cell body 1 is positioned by the battery cell carrier frame 54. The battery cell fixing rod 4 cooperates with the battery cell carrier frame 54 to fix the battery cell body 1 in the battery cell carrier frame 54. A box body closing mechanism is installed on the module carrier box 5. The module carrier box 5 can be closed by the box body closing mechanism. And when the box body closing mechanism moves, it can drive the battery cell fixing component to move and then drive the movable sealing component to move. A matching driving component is also installed on the module carrier box 5. The matching driving component drives the box body closing mechanism to move.

[0040] As Figure 10 and Figure 11 shown, a matching convex strip 55 is fixedly arranged at one end of the battery cell carrier frame 54. A stable connection hole 56 is formed on the matching convex strip 55. A threaded through hole 57 is formed on the module carrier box 5. And movable insertion holes 58 are symmetrically formed on both sides of the module carrier box 5.

[0041] AsFigure 1 and Figure 12 As shown in Figure 1 and Figure 12 , the box body closing mechanism is the box body sealing plate 6. The box body sealing plates 6 are respectively installed on both sides of the module carrier box 5, and the box body sealing plates 6 are closed together to close the module carrier box 5. A pushing strip 61 is fixedly arranged at the lower end of the box body sealing plate 6. The pushing strip 61 pushes the battery cell fixing rod 4 to move, that is, when the pushing strip 61 moves, it will contact the movable mating block 41 on the battery cell fixing rod 4, and then push the battery cell fixing rod 4 to move, so that the battery cell fixing rod 4 is inserted into the stable connection hole 56 to realize the fixation of the battery cell body 1. Symmetrically fixed at the lower sides of both ends of the box body sealing plate 6 are hanging load blocks 62. A moving guide rod 63 is fixedly arranged on the hanging load block 62. The moving guide rod 63 is inserted into the moving insertion hole 58. The box body sealing plate 6 is supported and limited through the cooperation of the moving guide rod 63 and the moving insertion hole 58. A connecting load strip 64 is also fixedly arranged at the lower end of the box body sealing plate 6.

[0042] As Figure 1 、 Figure 2 and Figure 13 As shown in Figure 1 , Figure 2 and Figure 13 , the cooperating drive assembly includes a displacement carrier plate 7 and a threaded carrier rod 73. The displacement carrier plate 7 is installed on the outer side of one end of the module carrier box 5, and the threaded carrier rod 73 is movably installed on the module carrier box 5. The displacement carrier plate 7 is movably connected to the box body sealing plate 6. The box body sealing plate 6 is driven to move through the displacement carrier plate 7. An installation through hole 71 is opened on the displacement carrier plate 7. A cooperating bearing 72 is installed in the installation through hole 71. The cooperating bearing 72 cooperates with the threaded carrier rod 73, and the threaded carrier rod 73 is threadedly connected to the threaded through hole 57 on the module carrier box 5. A limit disk 74 is also fixedly arranged on the threaded carrier rod 73. The limit disk 74 is inside the module carrier box 5. When the module carrier box 5 is in the open state, the limit disk 74 plays a role in limiting the threaded carrier rod 73. Symmetrically fixed on the displacement carrier plate 7 are drive cooperating strip plates 75. A displacement connecting rod 76 is hinged on the drive cooperating strip plate 75. The other end of the displacement connecting rod 76 is hinged to the connecting load strip 64.

[0043] As Figure 2 and Figure 10 As shown in Figure 2 and Figure 10 , a connecting carrier platform 51 is fixedly arranged at one end of the module carrier box 5 far from the displacement carrier plate 7. The electrical connection between the battery cell body 1 and the module carrier box 5 is carried out through the connecting carrier platform 51. A conductive hole 52 is opened inside the connecting carrier platform 51, and an electrode 53 is fixedly arranged outside the connecting carrier platform 51.

[0044] When assembling the module carrier box 5 and the battery cell body 1, the battery cell bodies 1 are placed one by one into the battery cell carrier frame 54. The position of the battery cell bodies 1 is limited by the battery cell carrier frame 54. The protective sleeve 11 on one battery cell body 1 contacts the mating boss 16 on another battery cell body 1, and the protective sleeve 11 on the battery cell body 1 closest to the connecting carrier platform 51 contacts the connecting carrier platform 51. After the battery cell bodies 1 are placed, the threaded carrier rod 73 can be rotated, and under the action of the thread, it drives the displacement carrier plate 7 to move towards the module carrier box 5. With the movement of the displacement carrier plate 7, the box body sealing plate 6 is pulled to move under the action of the displacement connecting rod 76, so that the two box body sealing plates 6 are closed together to enclose the module carrier box 5. During the opposite movement of the box body sealing plates 6, the pushing strip 61 on the box body sealing plate 6 contacts the movable mating block 41 on the battery cell fixing rod 4. Then, under the action of the pushing strip 61, the battery cell fixing rod 4 is pushed to move, so that the battery cell fixing rod 4 is inserted into the stable connection hole 56 on the battery cell carrier frame 54, thereby realizing the fixed connection between the battery cell body 1 and the battery cell carrier frame 54, and further realizing the fixation of the battery cell body 1. There is no need to fix the battery cell bodies 1 one by one. When the two battery cell fixing rods 4 move towards each other, they will also drive the two moving connection disks 42 to move towards each other. Then, under the action of the mating drive rod 28, the second support plate frame 26 is driven to move downward. As the second support plate frame 26 moves downward, the second sealing baffle 27 moves downward, so that the second electrical jack 18 is exposed. At the same time, the first sealing baffle 2 also moves downward so that it no longer closes the protective sleeve 11. As the first sealing baffle 2 moves downward, it also drives the first support plate frame 22 to move downward. Then, under the action of the drive connecting rod 25, the movable insulating carrier plate 3 can be driven to move, so that a part of the electrical connection column 31 moves out of the protective sleeve 11 and is inserted into the second electrical jack 18 on another battery cell body 1 to realize the series connection between the battery cell bodies 1. At the same time, the electrical connection column 31 on the battery cell body 1 closest to the connecting carrier platform 51 is inserted into the conductive hole 52 on the connecting carrier platform 51 to realize electrical connection. There is no need to perform the series connection operation between the battery cell bodies 1 one by one, which is very convenient. When the battery cell bodies 1 are not installed, the sealing effects of the first sealing baffle 2 and the second sealing baffle 27 can prevent the electrical connection column 31 and the second electrical jack 18 from accumulating dust, thereby avoiding the occurrence of poor electrical connection. When the battery cell bodies 1 are connected in series, the electrical connection column 31 and the second electrical jack 18 are not exposed, and good protection can be provided. When the battery cell body 1 needs to be disassembled, only by rotating the threaded carrier rod 73 in the reverse direction can the box body sealing plate 6 be driven to move in the reverse direction to open the module carrier box 5. At the same time, under the action of the second mating spring 43, the battery cell fixing rod 4 is reset to unlock the battery cell body 1. At the same time, it will also drive the first sealing baffle 2 to reset, and the series connection between the battery cell bodies 1 can be quickly disconnected. The operation is simple, convenient and fast.

[0045] Although embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A high - kinetic - energy storage battery cell monomer, comprising a battery cell body, characterized in that: On one side of the battery cell body, a protective carrier sleeve is fixedly arranged, and on the other side, a mating boss is fixedly arranged. An active sealing assembly is installed at the protective carrier sleeve. The active sealing assembly can seal the protective carrier sleeve and the mating boss. The active sealing assembly is a first sealing baffle. When the first sealing baffle seals the protective carrier sleeve, it is inserted into the protective carrier sleeve to close the sleeve opening of the protective carrier sleeve. A second sealing baffle is also arranged on the first sealing baffle to close the mating boss. An active electrical connection mechanism is also installed in the protective carrier sleeve. The active electrical connection mechanism is connected to the active sealing assembly. The active electrical connection mechanism is driven to move by the active sealing assembly to realize the electrical connection between battery cell bodies. The active electrical connection mechanism is a movable insulating carrier plate. The movable insulating carrier plate is inserted into the protective carrier sleeve, and electrical connection columns are fixedly arranged on the movable insulating carrier plate. The active sealing assembly can protect the active electrical connection mechanism, and the active sealing assembly is also connected to a battery cell fixing component.

2. The high - kinetic - energy storage battery cell monomer according to claim 1, characterized in that: A lower bearing strip is fixedly arranged at the lower end of the first sealing baffle, and a first bearing plate frame is fixedly arranged on the lower bearing strip. A mating guide hole is formed in the first bearing plate frame. A mating carrier rod is inserted into the mating guide hole, and a first mating spring is sleeved on the mating carrier rod. The two ends of the first mating spring are respectively fixed on the protective carrier sleeve and the first bearing plate frame. Driving connecting rods are symmetrically hinged on the first bearing plate frame. A second bearing plate frame is also fixedly arranged on the lower bearing strip, and the second sealing baffle is fixedly arranged on the second bearing plate frame. The battery cell fixing component is a battery cell fixing rod. The battery cell fixing rod is movably installed on the battery cell body to fix the battery cell body through the battery cell fixing rod.

3. A energy storage module, characterized in that: This energy storage module is installed with the high-kinetics energy storage battery cell monomer described in any one of claims 1-2, including a module carrier box. A battery cell carrier frame is fixedly arranged in the module carrier box. The battery cell body is positioned through the battery cell carrier frame, and the battery cell fixing rod cooperates with the battery cell carrier frame to fix the battery cell body in the battery cell carrier frame. A box body closing mechanism is installed on the module carrier box. The module carrier box can be closed through the box body closing mechanism, and when the box body closing mechanism moves, it can drive the battery cell fixing component to move and then drive the active sealing assembly to move. A mating driving component is also installed on the module carrier box. The mating driving component drives the box body closing mechanism to move.

4. The energy storage module according to claim 3, characterized in that: The box body closing mechanism is a box body sealing plate. The box body sealing plates are respectively installed on both sides of the module carrier box, and the box body sealing plates are closed together to close the module carrier box.

5. The energy storage module according to claim 4, characterized in that: A pushing plate strip is fixedly arranged at the lower end of the box body sealing plate. The pushing plate strip pushes the battery cell fixing rod to move.

6. The energy storage module according to claim 5, characterized in that: The mating driving component includes a displacement carrier plate and a threaded carrier rod. The displacement carrier plate is installed outside one end of the module carrier box, and the threaded carrier rod is movably installed on the module carrier box.

7. The energy storage module according to claim 6, characterized in that: The displacement carrier plate is movably connected to the box body sealing plate, and the box body sealing plate is driven to move by the displacement carrier plate.

8. The energy storage module according to claim 7, characterized in that: A connecting carrier platform is fixedly arranged at one end of the module carrier box far from the displacement carrier plate. The electrical connection between the battery cell body and the module carrier box is carried out through the connecting carrier platform.

Citation Information

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