Battery cover assembly, battery cell and battery pack

By introducing a high-melting-point support structure into the battery cell cover assembly, the problem of the pole group clogging the explosion-proof valve at high temperatures is solved, ensuring the safety performance of the battery cell.

CN119742512BActive Publication Date: 2025-09-23SVOLT ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202411922692.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-25
Publication Date
2025-09-23
Estimated Expiration
2044-12-25

AI Technical Summary

Technical Problem

When high temperature is generated inside the battery cell, the lower plastic melts, causing the pole group to block the explosion-proof valve, affecting the exhaust and pressure relief effect and reducing the safety performance of the battery cell.

Method used

A battery cell cover assembly is designed, which includes a cover, an explosion-proof valve, a plastic part and a support structure. The melting point of the support structure is higher than that of the plastic part. It can form a connected exhaust channel between the supporting electrode group and the cover at high temperature, ensuring that the exhaust effect of the explosion-proof valve is not affected.

Benefits of technology

Through the design of the support structure, the pole group is prevented from blocking the explosion-proof valve under high-temperature and high-pressure airflow, the exhaust channel is kept unobstructed, and the safety performance of the battery cell is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of battery technology, and discloses a battery cell cover plate assembly, a battery cell, and a battery pack. The battery cell cover plate assembly includes a cover plate, an explosion-proof valve, a plastic part, and at least one supporting structure. The cover plate is provided with an assembly hole; the explosion-proof valve is provided in the assembly hole; the plastic part is provided on the first surface of the cover plate; the supporting structure is provided between the cover plate and the plastic part, the melting point of the supporting structure is higher than the melting point of the plastic part, and the supporting structure is suitable for supporting between the electrode group and the cover plate after the plastic part melts due to the high temperature inside the battery cell, forming an exhaust channel connected to the explosion-proof valve, and the areas between the various components of the supporting structure, the battery cell capacity, and the voltage meet the preset relationship. The present invention can support the electrode group with the supporting structure when thermal runaway occurs in the battery cell, to prevent the electrode group from randomly moving with the high-temperature and high-pressure airflow to block the explosion-proof valve on the cover plate, so that an exhaust channel connected to the explosion-proof valve is maintained between the electrode group and the cover plate, ensuring that the exhaust of the explosion-proof valve is not affected, thereby improving the safety performance of the battery cell.
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Description

Technical Field

[0001] The present invention relates to the field of battery technology, and in particular to a battery cover assembly, a battery cell and a battery pack. Background Art

[0002] Lithium-ion batteries have become the representative of modern high-performance batteries due to their advantages such as high operating voltage, high specific energy, large capacity, low self-discharge, good cycle performance, long service life, light weight and small size.

[0003] Long-cell lithium-ion batteries are usually designed with tabs on both sides. Their structure includes: a cell cover assembly, a shell, a pole group, an electrolyte, etc. The cell cover assembly integrates structural components such as pole posts, explosion-proof valves, and injection holes. After the cell cover assembly and the shell are welded, a closed space with a certain mechanical strength is formed to protect the pole group. The tabs on both sides of the pole group are fixed to the base of the pole posts on both sides of the cover by laser welding to achieve electrical connection. The length direction of the battery cell is mainly fixed by the lower plastic insulating material on the inside of the cover pressing against the pole group. The cover is integrated with an explosion-proof valve structure, which is mainly used for the directional discharge of internal high-temperature and high-pressure gases when the battery experiences thermal runaway due to an internal short circuit, thereby improving battery safety performance.

[0004] When this type of battery cell reaches high temperatures, the lower plastic melts, rendering it ineffective in securing the electrode assembly. The high-temperature, high-pressure gas inside the cell then vents toward the explosion-proof valve. Driven by this high-temperature, high-pressure gas, the electrode assembly can move toward the valve, blocking it and blocking the exhaust passage. This affects the cell's pressure relief and reduces its safety. Summary of the Invention

[0005] In view of this, the present invention provides a cell cover assembly, a cell and a battery pack to solve the problem that when high temperature is generated inside the cell and the lower plastic melts, the electrode group blocks the explosion-proof valve and affects the exhaust pressure relief.

[0006] In the first aspect, the present invention provides a battery cell cover plate assembly, comprising a cover plate, an explosion-proof valve, a plastic part, and at least one supporting structure. The cover plate is provided with an assembly hole, and the cover plate has a first surface facing the pole group of the battery cell; the explosion-proof valve is provided in the assembly hole; the plastic part is provided on the first surface of the cover plate; the supporting structure is provided between the cover plate and the plastic part, the melting point of the supporting structure is higher than the melting point of the plastic part, and the supporting structure is suitable for supporting between the pole group and the cover plate after the plastic part melts due to the high temperature inside the battery cell, thereby forming an exhaust channel connected to the explosion-proof valve; the supporting structure includes a bracket corresponding to the position of the explosion-proof valve, and the bracket is provided with a plurality of exhaust holes facing the explosion-proof valve, and the total area of ​​the exhaust holes is S2, in units of mm 2 The total area of ​​the support structure in the projection area along the Z direction in the XY plane is S, in mm 2 The effective support area of ​​the support structure in contact with the electrode group of the battery cell is S1, in mm2 The capacity of the battery cell is C, unit is Ah, the voltage is U, unit is V, and it satisfies: 0.30≤S1 / CU≤0.45, 0.15≤S2 / S≤0.30.

[0007] Beneficial effects: The battery cell cover plate assembly provided by the present invention is provided with an explosion-proof valve protection structure. By providing a support structure with a melting point greater than that of the plastic part, when high-temperature and high-pressure gas is generated inside the battery cell, the plastic part melts and fails. At this time, the support structure has not melted, and the pole group has a tendency to move toward the explosion-proof valve under the action of the high-temperature and high-pressure gas. At this time, the support structure can effectively support and fix the pole group, and avoid the pole group randomly moving with the high-temperature and high-pressure airflow to block the explosion-proof valve on the cover plate when the battery cell has thermal runaway, thereby affecting the exhaust effect of the explosion-proof valve. The support structure allows the pole group and the cover plate to maintain an exhaust channel connected to the explosion-proof valve, ensuring that the exhaust of the explosion-proof valve is not affected, thereby improving the safety performance of the battery cell. By limiting the relationship between the area, battery cell capacity and voltage of the various components of the support structure, it can be ensured that the support structure does not affect the exhaust effect of the explosion-proof valve while playing a stable supporting role for the pole group.

[0008] In an optional embodiment, the bracket includes a support plate arranged facing the explosion-proof valve and at least two supporting legs arranged at the edge of the support plate, and the exhaust hole is arranged on the support plate.

[0009] In an optional embodiment, the support structure further includes a boss provided on the first surface of the cover plate, and the legs of the bracket are connected to the boss.

[0010] In an optional embodiment, the height of the exhaust channel is H1, 3mm≤H1≤6mm; and / or the height of the boss protruding from the first surface of the cover plate is H2, 1.0mm≤H2≤2.0mm.

[0011] In an optional embodiment, two support structures are provided, and the two support structures are respectively provided on both sides of the explosion-proof valve along the X direction.

[0012] In an optional embodiment, the minimum distance between the boss close to the explosion-proof valve and the explosion-proof valve is L, 5mm≤L≤8mm.

[0013] In an optional embodiment, the support plate is provided with a plurality of exhaust holes; and / or, an exhaust gap communicating with the exhaust channel is provided between the support legs, the support plate and the cover plate.

[0014] In an optional embodiment, one of the boss and the leg is provided with a plug-in protrusion, and the other is provided with a plug-in hole that cooperates with the plug-in protrusion. The boss and the leg are plugged in through the cooperation of the plug-in protrusion and the plug-in hole, and are fixed by welding.

[0015] In a second aspect, the present invention also provides a battery cell, comprising a shell, a pole group and the battery cell cover assembly in the above technical solution, wherein the shell has an open end; the pole group is arranged in the shell; the battery cell cover assembly is arranged at the open end of the shell to encapsulate the pole group in the shell.

[0016] Beneficial effect: Because the battery cell includes the battery cell cover plate assembly, it has the same effect as the battery cell cover plate assembly and will not be described in detail here.

[0017] In a third aspect, the present invention further provides a battery pack comprising the battery cell in the above technical solution.

[0018] Beneficial effects: Since the battery pack includes battery cells, it has the same effects as the battery cells and will not be described in detail here. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the specific embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0020] Figure 1 This is a schematic diagram of the exploded structure of an existing battery cell;

[0021] Figure 2 This is a partial structural diagram of a battery cell cover assembly according to an embodiment of the present invention;

[0022] Figure 3 for Figure 2 Schematic diagram of the structure of the middle cover plate and boss;

[0023] Figure 4 for Figure 2 Schematic diagram of the structure of the middle bracket;

[0024] Figure 5 This is a schematic structural diagram of a battery cell according to an embodiment of the present invention;

[0025] Figure 6 for Figure 5 Schematic diagram of the exploded structure of the battery cell shown;

[0026] Figure 7 for Figure 5 A top view of the battery cell shown;

[0027] Figure 8 for Figure 7 Cross-sectional view along the middle line AA;

[0028] Figure 9 for Figure 8A magnified view of the local structure.

[0029] Description of reference numerals:

[0030] 1. Cell cover assembly; 11. Cover; 12. Explosion-proof valve; 13. Plastic parts; 14. Support structure; 141. Boss; 142. Bracket; 1421. Support plate; 1422. Support foot; 1423. Exhaust hole; 1424. Exhaust gap; 143. Plug-in protrusion; 144. Plug-in hole; 15. Exhaust channel; 2. Shell; 3. Pole group. DETAILED DESCRIPTION

[0031] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without making creative efforts shall fall within the scope of protection of the present invention.

[0032] At present, traditional battery cells, such as Figure 1 As shown, the battery cell includes a housing with two open ends. Two cell cover assemblies are located at the two open ends. The cell cover assemblies integrate a cover plate, a terminal post, an explosion-proof valve, and a plastic component. A pole group is located within the housing, with the plastic component positioned between the cover plate and the pole group to support and secure the pole group.

[0033] In the length direction of the battery cell, the pole group is mainly insulated and fixed by the lower plastic in the battery cell cover assembly, but this insulating material is generally made of PP material, and its strength and high temperature resistance are very limited, generally around 150 degrees Celsius, but the temperature at which the battery cell undergoes thermal runaway is usually much higher than the melting point of these insulating materials. When thermal runaway occurs inside the battery cell, these fixed structures inside the battery cell have melted and failed. At this time, only the pole group is left inside the battery cell. Due to the melting of the insulating protective material, the gap between the pole group and the cover and shell increases. At this time, the pole group has a high degree of freedom inside the battery cell. Since the high-temperature and high-pressure gas is exhausted in the direction of the explosion-proof valve, the pole group will randomly move with the high-temperature and high-pressure airflow and block the explosion-proof valve on the cover, thereby blocking the exhaust channel, greatly reducing the exhaust effect of the explosion-proof valve and reducing the safety performance of the battery cell.

[0034] The following combination Figures 2 to 9 , describing embodiments of the present invention.

[0035] According to an embodiment of the present invention, in a first aspect, a cell cover plate assembly 1 is provided, comprising a cover plate 11, an explosion-proof valve 12, a plastic part 13, and at least one supporting structure 14. The cover plate 11 is provided with an assembly hole, and the cover plate 11 has a first surface facing the pole group 3 of the cell; the explosion-proof valve 12 is provided in the assembly hole; the plastic part 13 is provided on the first surface of the cover plate 11; the supporting structure 14 is provided between the cover plate 11 and the plastic part 13, and the melting point of the supporting structure 14 is higher than the melting point of the plastic part 13. The supporting structure 14 is suitable for supporting the pole group 3 and the cover plate 11 after the plastic part 13 melts due to the high temperature inside the cell, thereby forming an exhaust channel 15 connected to the explosion-proof valve 12; the supporting structure 14 includes a bracket 142 corresponding to the position of the explosion-proof valve 12, and the bracket 142 is provided with a plurality of exhaust holes 1423 facing the explosion-proof valve 12, and the total area of ​​the exhaust holes 1423 is S2, in mm 2 The total area of ​​the projection area of ​​the support structure 14 along the Z direction in the XY plane is S, in mm 2 The effective support area of ​​the support structure 14 in contact with the electrode group 3 of the battery cell is S1, in mm 2 The capacity of the battery cell is C, unit is Ah, the voltage is U, unit is V, and it satisfies: 0.30≤S1 / CU≤0.45, 0.15≤S2 / S≤0.30.

[0036] The battery cell cover plate assembly 1 provided by the present invention is provided with an explosion-proof valve 12 protection structure. By providing a support structure 14 with a melting point greater than that of the plastic part 13, when high-temperature and high-pressure gas is generated inside the battery cell, the plastic part 13 melts and fails. At this time, the support structure 14 has not melted, and the electrode group 3 has a tendency to move toward the explosion-proof valve 12 under the action of the high-temperature and high-pressure gas. At this time, the support structure 14 can effectively support and fix the electrode group 3, thereby preventing the electrode group 3 from randomly moving with the high-temperature and high-pressure airflow to block the explosion-proof valve 12 on the cover plate 11 when thermal runaway occurs in the battery cell, thereby affecting the exhaust effect of the explosion-proof valve 12. The support structure 14 ensures that an exhaust channel 15 connected to the explosion-proof valve 12 is maintained between the electrode group 3 and the cover plate 11, thereby ensuring that the exhaust of the explosion-proof valve 12 is not affected, thereby improving the safety performance of the battery cell. By limiting the relationship between the area, cell capacity, and voltage of the various components of the support structure to meet the following conditions: 0.30≤S1 / CU≤0.45, 0.15≤S2 / S≤0.30, it can be ensured that the support structure provides stable support for the electrode group while not affecting the exhaust effect of the explosion-proof valve.

[0037] In some embodiments, the bracket 142 includes a support plate 1421 disposed facing the explosion-proof valve 12 and at least two legs 1422 disposed at the edge of the support plate 1421 . The exhaust hole 1423 is disposed on the support plate 1421 .

[0038] In some embodiments, the support structure 14 further includes a boss 141 disposed on the first surface of the cover plate 11 , and the legs 1422 of the bracket 142 are connected to the boss 141 .

[0039] The support structure 14 adopts a structure of a boss 141 and a bracket 142, which can facilitate the connection between the bracket 142 and the cover plate 11. Because the bracket 142 is connected to the boss 141, the bracket 142 and the boss 141 together constitute a protective structure for the explosion-proof valve 12. When the battery cell experiences thermal runaway and the plastic part 13 melts and fails, the battery cell moves toward the explosion-proof valve 12 under the impact of the high-temperature and high-pressure gas. The bracket 142 and the boss 141 are both located between the cover plate 11 and the electrode group 3, providing support. The sum of the height of the boss 141 protruding from the first surface of the cover plate 11 and the height of the bracket 142 is the height of the exhaust channel 15 between the electrode group 3 and the cover plate 11.

[0040] The height of the side of the bracket 142 away from the cover plate 11 protruding from the first surface of the cover plate 11 is the height of the exhaust channel 15. The height of the exhaust channel 15 is H1, and 3mm≤H1≤6mm.

[0041] In some embodiments, the boss 141 protrudes from the first surface of the cover plate 11 by a height H2, where 1.0 mm ≤ H2 ≤ 2.0 mm.

[0042] The height H2 of the boss 141 protruding from the first surface of the cover plate 11 is in the range of 1.0 mm to 2.0 mm. In this way, the boss 141 can constitute a part of the support structure 14 in the Z direction. At the same time, it ensures that the boss 141 is easy to process and easy to connect with the bracket 142, providing a stable connection support for the bracket 142.

[0043] In some embodiments, the boss 141 is configured as a prism, which facilitates processing.

[0044] In some embodiments, the bracket 142 includes a support plate 1421 and at least two legs 1422 arranged on the edge of the support plate 1421. The number and position of the bosses 141 correspond to the number and position of the legs 1422, and each leg 1422 is connected to a boss 141 respectively.

[0045] By providing a support leg 1422 on the edge of the support plate 1421 , the boss 141 and the bracket 142 are provided correspondingly. Thus, one support leg 1422 is connected to one boss 141 correspondingly, so that the bracket 142 and the cover plate 11 can be stably connected.

[0046] In this embodiment, two legs 1422 are provided on opposite sides of a support plate 1421, i.e., a support plate 1421 is provided with four legs 1422. A group of four bosses 141 is provided on the first surface of the cover plate 11. The four bosses 141 correspond to the positions of the four legs 1422. The legs 1422 are welded to the bosses 141 to achieve a fixed connection between the bracket 142 and the cover plate 11.

[0047] In some embodiments, the support plate 1421 is stamped from an aluminum plate. The legs 1422 of the support plate 1421 are fixed to the surface of the boss 141 away from the cover plate 11 by welding. The boss 141 and the bracket 142 form a protective structure for the explosion-proof valve 12.

[0048] In some embodiments, two support structures 14 are provided, and the two support structures 14 are respectively provided on both sides of the explosion-proof valve 12 along the X direction.

[0049] In this embodiment, two support structures 14 are provided. Specifically, on the first surface of the cover plate 11, two groups of bosses 141 are provided, and two brackets 142 are provided. The position and number of bosses 141 in each group correspond to the position and number of legs 1422 of the brackets 142. The two brackets 142 are welded to the two groups of bosses 141, respectively.

[0050] The provision of two support structures 14 enhances the support effect of the support structures 14 on the electrode assembly 3 in the event of thermal runaway of the battery cell. Furthermore, because the two support structures 14 are provided on either side of the explosion-proof valve 12, they provide stable support for the electrode assembly 3 along the X-direction. This ensures the stability of the support structures 14 supporting the electrode assembly 3 after the plastic component 13 fails due to melting, maintains the balance of the electrode assembly 3, and further ensures the smoothness of the exhaust passage 15.

[0051] Furthermore, in some embodiments, the two support structures 14 are symmetrically distributed on both sides of the explosion-proof valve 12 .

[0052] In some embodiments, the minimum distance between the boss 141 close to the explosion-proof valve 12 and the explosion-proof valve 12 is L, and 5 mm ≤ L ≤ 8 mm.

[0053] The boss 141 close to the explosion-proof valve 12 is spaced apart from the explosion-proof valve 12, and the minimum distance of the spacing is controlled within the range of 5 mm to 8 mm. Thus, the support structure 14 can support the electrode group 3 and keep the exhaust channel 15 unobstructed, thereby ensuring that the exhaust effect of the explosion-proof valve 12 is not affected.

[0054] In some embodiments, the support plate 1421 is provided with a plurality of exhaust holes 1423 ; and / or, an exhaust gap 1424 communicating with the exhaust channel 15 is provided between the support legs 1422 , the support plate 1421 and the cover plate 11 .

[0055] By providing a plurality of exhaust holes 1423 on the support plate 1421 , it is possible to facilitate the flow of gas through the exhaust holes 1423 , thereby improving the smoothness of the flow of high-temperature and high-pressure gas in the exhaust channel 15 .

[0056] Furthermore, compared to the technical solution of forming a long, outwardly extending flange from the support plate 1421, the support legs 1422 can create an exhaust gap 1424 between the support plate 1421 and the cover plate 11, further improving the flow of gas within the exhaust channel 15. At the same time, the material used for the support legs 142 can be reduced, thereby reducing the overall weight of the cell cover plate assembly 1.

[0057] When thermal runaway occurs inside the battery cell, the bracket 142 first supports the electrode group 3, so that the exhaust channel 15 is maintained between the electrode group 3 and the explosion-proof valve 12. In addition, the exhaust holes 1423 on the support plate 1421 and the exhaust gap 1424 in the Z direction between the support leg 1422, the bracket 142 and the cover plate 11 are connected to the exhaust channel 15, which can ensure the exhaust requirements.

[0058] In some embodiments, one of the boss 141 and the leg 1422 is provided with a plug-in protrusion 143, and the other is provided with a plug-in hole 144 that cooperates with the plug-in protrusion 143. The boss 141 and the leg 1422 are plugged together through the plug-in protrusion 143 and the plug-in hole 144, and are fixed by welding.

[0059] In this embodiment, the boss 141 is provided with a plug-in protrusion 143, and the leg 1422 is provided with a plug-in hole 144. When the bracket 142 and the boss 141 are fixedly connected, the plug-in hole 144 of the leg 1422 is plugged into the plug-in protrusion 143 of the boss 141, and then the boss 141 and the leg 1422 are welded and fixed. This arrangement can further improve the welding effect and ensure the overall structural strength of the support structure 14.

[0060] The plug hole 144 can be a through hole or a blind hole, depending on the actual situation.

[0061] The following provides specific cases for testing. A total of 12 groups were tested, with 6 test cells in each group, to verify the technical effects brought about by the technical solution of the present invention. The specific results are shown in Table 1.

[0062] Specifically, the test object is a battery cell assembled with the battery cell cover plate assembly. Except for the variables in Table 1, the other factors and test conditions are the same.

[0063] Table 1:

[0064]

[0065] As shown in Table 1, the size design of the support structure 14 has a significant impact on the safety performance of a single cell. First, S1 / CU is required to be ≥ 0.30 to ensure the support area. However, if the support surface is too large, it will affect the exhaust channel. Therefore, S1 / CU is required to be ≤ 0.45. In addition, 0.15 ≤ S2 / S ≤ 0.30 is required to ensure that the S2 area is appropriate. If S2 is too small, the exhaust effect is poor. If S2 is too large, the strength of the support structure 14 will be affected.

[0066] According to an embodiment of the present invention, in a second aspect, a battery cell is further provided, comprising a shell 2, a pole group 3 and the battery cell cover assembly 1 in the above embodiment, wherein the shell 2 has an open end; the pole group 3 is arranged in the shell 2; the battery cell cover assembly 1 is arranged at the open end of the shell 2, and the pole group 3 is encapsulated in the shell 2.

[0067] Because the battery cell includes the battery cell cover plate assembly 1 and has the same effect as the battery cell cover plate assembly 1 , it will not be described in detail here.

[0068] According to an embodiment of the present invention, in a third aspect, a battery pack is further provided, comprising the battery cell in the above embodiment.

[0069] Since the battery pack includes battery cells and has the same effect as the battery cells, it will not be described in detail here.

[0070] Although the embodiments of the present invention have been described with reference to the accompanying drawings, those skilled in the art may make various modifications and variations without departing from the spirit and scope of the present invention. Such modifications and variations are all within the scope defined by the appended claims.

Claims

1. A battery cover assembly, characterized in that: include: A cover plate, wherein the cover plate is provided with an assembly hole and has a first surface facing the electrode group of the battery cell; An explosion-proof valve, the explosion-proof valve being arranged in the assembly hole; a plastic part, the plastic part being disposed on the first surface of the cover plate; At least one supporting structure, the supporting structure being provided between the cover plate and the plastic part, the melting point of the supporting structure being higher than the melting point of the plastic part, and an exhaust passage communicating with the explosion-proof valve being formed between the electrode group and the cover plate; The support structure includes a bracket corresponding to the position of the explosion-proof valve, and the bracket is provided with a plurality of exhaust holes facing the explosion-proof valve. The total area of ​​the exhaust holes is S2, in mm. 2 The total area of ​​the projection area of ​​the support structure along the Z direction in the XY plane is S, in mm 2 The effective support area of ​​the support structure in contact with the electrode group of the battery cell is S1, in mm 2 , the capacity of the battery cell is C, the unit is Ah, the voltage is U, the unit is V, and it satisfies: 0.30≤S1 / CU≤0.45, 0.15≤S2 / S≤0.

30.

2. The battery cover assembly according to claim 1, characterized in that: The bracket includes a support plate arranged facing the explosion-proof valve and at least two supporting legs arranged at the edge of the support plate, and the exhaust hole is arranged on the support plate.

3. The battery cover assembly according to claim 2, characterized in that: The support structure further includes a boss provided on the first surface of the cover plate, and the legs of the bracket are connected to the boss.

4. The battery cover assembly according to claim 3, characterized in that: The height of the exhaust channel is H1, 3mm≤H1≤6mm; And / or, the height of the boss protruding from the first surface of the cover plate is H2, 1.0 mm ≤ H2 ≤ 2.0 mm.

5. The battery cell cover assembly according to any one of claims 1 to 4, characterized in that: There are two supporting structures, and the two supporting structures are respectively arranged on both sides of the explosion-proof valve along the X direction.

6. The battery cover assembly according to claim 3 or 4, characterized in that: The minimum distance between the boss close to the explosion-proof valve and the explosion-proof valve is L, 5mm≤L≤8mm.

7. The battery cover assembly according to claim 4, characterized in that: The support plate is provided with a plurality of exhaust holes; And / or, an exhaust gap communicating with the exhaust channel is provided between the support legs, the support plate and the cover plate.

8. The battery cover assembly according to claim 4, characterized in that: One of the boss and the leg is provided with a plug-in protrusion, and the other is provided with a plug-in hole that cooperates with the plug-in protrusion. The boss and the leg are plugged together through the plug-in protrusion and the plug-in hole, and are fixed by welding.

9. A battery cell, characterized in that: include: a housing having an open end; a pole group, the pole group being arranged in the shell; The battery cell cover plate assembly according to any one of claims 1 to 8, wherein the battery cell cover plate assembly is arranged at the open end of the shell, and the electrode group is encapsulated in the shell.

10. A battery pack, characterized in that: Including the battery cell according to claim 9.

Citation Information

Patent Citations

  • Battery and power equipment

    CN115842212A

  • Battery and battery pack

    CN117748047A