Battery cell, battery, power consumption device, method for manufacturing a battery cell and system
The battery cell design addresses short circuits by using an insulating member with an extension portion to isolate the tab from the case and a double isolation mechanism, improving safety and energy density.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
- Filing Date
- 2024-02-27
- Publication Date
- 2026-04-10
AI Technical Summary
Battery cells experience short circuits due to overlapping contact between tabs and the case, which compromises their safety during use.
The battery cell design incorporates an insulating member with an extension portion that guides and restricts the tab within a recess, forming a protective isolation structure to prevent contact with the case, and includes a double isolation mechanism using a second insulating member to further reduce the risk of short circuits.
The design effectively reduces the likelihood of short circuits by isolating the tab from the case and preventing external conductive impurities from contacting the tab, enhancing safety and energy density.
Smart Images

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Abstract
Description
Technical Field
[0001] This application relates to the technical field of batteries, and in particular to battery cells, batteries, power consumption devices, methods for manufacturing battery cells, and systems.
Background Art
[0002] Rechargeable batteries have advantages such as high energy density, high power density, a large number of charge-discharge cycles, and a long storage time, and are therefore commonly applied to electric vehicles, mobile devices, or power tools. A battery includes battery cells. However, during the use process of battery cells, there is a problem of short circuit, which affects the use safety of battery cells.
Summary of the Invention
[0003] Embodiments of this application are battery cells, batteries, power consumption devices, methods for manufacturing battery cells, and systems, and aim to solve the problem that the presence of a short circuit in a battery cell affects its use safety.
[0004] Embodiments of this application provide a battery cell including a case, an electrode assembly, and an end cover assembly. The case has an opening. The electrode assembly is provided inside the case. The electrode assembly includes a main body portion, a tab, and a separation portion. The tab extends from an end of the main body portion towards the opening. The separation portion is provided on the outer periphery of the tab. The end cover assembly is used to seal the opening. The end cover assembly includes an end cover and a first insulating member. The end cover is arranged to cover the opening and be connected to the case. The first insulating member is provided on the side of the end cover closer to the inside of the case. The first insulating member has a recess. At least a part of the tab is accommodated in the recess. The first insulating member is arranged to press against the separation portion so as to isolate the tab from the case.
[0005] In one embodiment of the present invention, the first insulating member comprises a body and an extension connected to each other. The body is positioned to be connected to an end cover. The extension extends and protrudes from the body toward the electrode assembly, forming a recess, and is positioned on the outer circumference of the tab and pressed against the isolation portion. Because the first insulating member has an extension, when assembling, the extension of the first insulating member can be inserted into the gap between the tab and the case, thereby guiding the tab to be accurately inserted into the recess of the first insulating member, reducing the possibility of the tab deforming due to the first insulating member applying extrusion stress to the tab during the assembly process, and at the same time, the extension can form protection and restriction on the tab earlier during the assembly process.
[0006] In one embodiment of the present invention, the extension portion is located on the side of the isolation portion adjacent to the end cover and is pressed against the isolation portion in a direction away from the end cover. The extension portion can form a restrictive constraint with respect to the isolation portion, reducing the possibility of the isolation portion moving toward or away from the end cover, thereby reducing the possibility of the extension portion and the isolation portion being released from the pressed state by the isolation portion moving toward or away from the end cover. At the same time, the extension portion can form a restrictive constraint with respect to the electrode assembly, reducing the possibility of the electrode assembly moving toward or away from the end cover.
[0007] In one embodiment of the present invention, the extended portion is a continuously extending closed ring structure. Since the end face of the extended portion that separates from the end cover exhibits a closed ring structure, the extended portion can form protection or isolation from the tab over the entire outer circumference of the tab, which helps to further improve the isolation effect. Alternatively, the extended portion is an annular structure with a notch. The notch in the extended portion can provide a retraction space.
[0008] In one embodiment of the present invention, the isolation portion is annular. The isolation portion is fitted around the entire outer circumference of the tab, thereby protecting the tab in its entire circumferential direction.
[0009] In one embodiment of the present invention, the tab has a stepped portion. The stepped portion has a first side surface, a transition surface, and a second side surface. The first side surface is close to the main body, the transition surface connects the first side surface and the second side surface, the transition surface faces the end cover, the minimum radial dimension of the first side surface is greater than the maximum radial dimension of the second side surface, and at least a portion of the inner wall of the recess surrounds the second side surface. The portion of the tab corresponding to the second side surface is located within the recess. In this way, a portion of the tab can be located within the recess of the first insulating member, which helps to reduce the overall axial dimensions of the electrode assembly of the battery cell for a battery cell of the same capacity, thereby helping to improve the energy density of the battery cell.
[0010] In one embodiment of the present invention, the extended portion surrounds the second side surface, and the isolation portion is located on the transition surface. The end face of the extended portion faces the transition surface and is pressed against the isolation portion, thereby reducing the possibility of the electrode assembly moving toward or away from the end cover.
[0011] In one embodiment of the present invention, the electrode assembly comprises a first electrode sheet, a second electrode sheet, and a separator. Both the first and second electrode sheets have coated and uncoated areas. The portion of the electrode assembly corresponding to the coated areas of the first and second electrode sheets is the main body, the uncoated area of the first or second electrode sheet forms a tab, and the separator is used to separate the first and second electrode sheets. The separation portion is a part of the separator that extends beyond the main body and is located on the outer circumference of the tab, which helps to reduce the number of parts used and the difficulty of assembly. Furthermore, because the separator has an integrated structure, the formed separation portion is less likely to fall off.
[0012] In one embodiment of the present invention, the electrode assembly further comprises a second insulating member. The second insulating member isolates the pressing area from the case by surrounding the pressing area of the isolation portion with the first insulating member. The extension portion, the pressing area of the isolation portion, and the second insulating member can form a double isolation and protection structure with respect to the tab, which helps to further reduce the possibility of the tab and the case coming into contact and short-circuiting.
[0013] In one embodiment of the present invention, the second insulating member is pressed against the outer surface facing the first insulating member case and is in contact with the isolation portion. Contact areas can be formed between the second insulating member and the first insulating member, and between the second insulating member and the isolation portion, thereby allowing the second insulating member to block conductive impurities.
[0014] In one embodiment of the present invention, the outer surface has a guide slope. The guide slope is inclined toward a recess along the direction away from the end cover. When assembling the end cover assembly after placing the electrode assembly with the second insulating member into the case, the guiding action of the guide slope allows the portion of the first insulating member corresponding to the guide slope to easily enter the space limited by the second insulating member.
[0015] In one embodiment of the present invention, the second insulating member is bonded to the outer surface, which helps to improve the reliability and stability of the connection between the second insulating member and the first insulating member.
[0016] In one embodiment of the present invention, on the outer surface, the area in which the second insulating member is pressed is closer to the end cover than to the tab, and during the assembly process, the possibility of conductive impurities entering the tab through the gap between the first insulating member and the second insulating member, which do not come into contact, can be reduced.
[0017] In one embodiment of the present invention, the end cover assembly further comprises an adapter sheet housed in a recess. The adapter sheet has a first adapter portion, which is positioned to connect to a tab, and the first insulating member and electrode assembly push out the first adapter portion. The first adapter portion is less prone to displacement relative to the electrode assembly, which helps to reduce the possibility of the first adapter portion and the tab becoming disconnected due to movement of the first adapter portion relative to the electrode assembly.
[0018] The battery cell of the present invention comprises a case, an electrode assembly, and an end cover assembly. A recess in the first insulating member of the end cover assembly accommodates the tab of the electrode assembly. At the same time, the first insulating member and the isolation portion of the electrode assembly press against each other to form an isolation structure around the tab, thereby isolating the tab from the case. Thus, on the one hand, during the use of the battery cell, if the tab deforms by releasing its elastic restoring force and comes into contact with the first insulating member and isolation portion, it is blocked by the first insulating member and isolation portion, thereby effectively reducing the possibility of the tab making contact with the case and causing a short circuit. On the other hand, because the first insulating member and isolation portion press against each other, at least a portion of the tab is housed in the recess of the first insulating member, so the tab is protected by the first insulating member and isolation portion, thereby making it difficult for external conductive impurities to come into contact with the tab, and reducing the possibility of conductive impurities conducting between the tab and the case and causing a short circuit.
[0019] The embodiments of the present invention further provide a battery comprising the battery cell described in the above embodiments.
[0020] Embodiments of the present invention further provide a power consumption device comprising the battery cell described in the above embodiment, which is used to provide electrical energy.
[0021] The embodiment of the present application is a method for manufacturing a battery cell as described in the above embodiment, An electrode assembly comprising a main body, a tab, and an isolation part is placed inside a case having an opening, where the tab extends from the end of the main body toward the opening, and the isolation part is installed on the outer circumference of the tab. The end cover assembly, comprising the end cover and the first insulating member, is assembled to the case, the end cover is placed over the opening so as to connect to the case, and the first insulating member is positioned on the side of the end cover closest to the inside of the case, wherein the first insulating member has a recess, at least some of the tabs are housed in the recess, and the first insulating member is pressed against the isolation portion so as to isolate the tabs from the case. The present invention further provides a method for manufacturing battery cells, including the method described above.
[0022] An embodiment of the present application is a manufacturing system for a battery cell described in the above embodiment, which is arranged to place an electrode assembly including a main body portion, tabs, and a separator portion into a case having an opening, where the tabs extend from an end of the main body portion toward the opening, and the separator portion is installed on the outer periphery of the tabs, a first assembling device; which is arranged to assemble an end cover assembly including an end cover and a first insulating member to the case, cover the opening with the end cover so as to be connected to the case, and position the first insulating member on a side close to the inside of the case of the end cover, where the first insulating member has a recess, at least a part of the tabs is accommodated in the recess, and the first insulating member is pressed against the separator portion so as to isolate the tabs from the case, a second assembling device; and further provides a manufacturing system for a battery cell including the above.
Brief Description of the Drawings
[0023] To more clearly illustrate the technical solutions of the embodiments of the present application, the drawings necessary for the embodiments of the present application are briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application, and those skilled in the art can obtain other drawings based on these drawings without creative labor. [Figure 1] It is a schematic structural diagram of a vehicle disclosed in one embodiment of the present application. [Figure 2] It is a schematic structural diagram of a battery disclosed in one embodiment of the present application. [Figure 3] It is a schematic structural diagram of a battery module disclosed in one embodiment of the present application. [Figure 4] It is a schematic exploded structural diagram of a battery module disclosed in one embodiment of the present application. [Figure 5] It is a schematic exploded structural diagram of a battery cell disclosed in one embodiment of the present application. [Figure 6] It is a schematic structural diagram of an electrode assembly disclosed in one embodiment of the present application. [Figure 7] It is a schematic plan view of a battery cell disclosed in one embodiment of the present application. [Figure 8] This is a schematic diagram of the cross-sectional structure along point AA in Figure 7. [Figure 9] This is a magnified view of area B in Figure 8. [Figure 10] This is a schematic diagram of the structure of an end cover assembly disclosed in one embodiment of the present application. [Figure 11] This is a schematic diagram of the structure of an end cover assembly disclosed in other embodiments of the present application. [Figure 12] This is a schematic diagram of the disassembled structure of a battery cell disclosed in another embodiment of the present application. [Figure 13] Figure 12 is a schematic diagram of the cross-sectional structure of the battery cell in the embodiment shown. [Figure 14] This is a magnified view of area C in Figure 13. [Figure 15] This is a schematic diagram of a partial cross-sectional structure of a battery cell disclosed in one embodiment of the present application. [Figure 16] This is a schematic diagram of the exploded structure of a battery cell disclosed in further embodiments of the present application. [Figure 17] Figure 16 is a schematic diagram of the cross-sectional structure of the battery cell in the embodiment shown. [Figure 18] This is a magnified view of area D in Figure 17. [Figure 19] This is a flowchart of a method for manufacturing a battery cell according to one embodiment of the present invention. [Figure 20] This is a schematic diagram of a battery cell manufacturing system according to one embodiment of the present invention. [Modes for carrying out the invention]
[0024] Embodiments of the present application will be described in more detail below with reference to the drawings and examples. The detailed description of the following embodiments and the drawings are used to illustrate the principles of the present application, but are not intended to limit the scope of the present application, that is, the present application is not limited to the embodiments described.
[0025] In the description of this application, unless otherwise stated, "multiple" means two or more. The indicated directions or positional relationships of terms such as "up," "down," "left," "right," "inside," and "outside" are merely for the purpose of simplifying the description of this application and making it easier to explain. They do not indicate or imply that the specified device or element has a specific direction, or that it must be composed and operated in a specific direction, and therefore should not be understood as limiting this application. Furthermore, terms such as "first," "second," and "third" are used simply to explain the purpose and should not be understood as indicating or implying relative importance. "Perpendicular" does not mean perpendicular in the strict sense, but is within an acceptable margin of error. "Parallel" does not mean parallel in the strict sense, but is within an acceptable margin of error.
[0026] All directional terms used in the following description refer to the directions shown in the diagrams and do not limit the specific structure of the present invention. Furthermore, in this description, unless otherwise explicitly stated and limited, the terms “attachment,” “connection,” and “connection” should be understood in a broad sense. For example, they may be fixed connections, removable connections, or integral connections. They may be directly connected or indirectly connected via an intermediate medium. Those skilled in the art will be able to understand the specific meaning of these terms in this invention depending on the specific circumstances.
[0027] The applicant, noting the existence of short-circuit problems in conventional battery cells, studied and analyzed the structure of a battery cell. A battery cell comprises a case, an electrode assembly, an end cover, electrode terminals, and an adapter sheet. The electrode assembly is housed within the case. The end cover is connected to the case. The electrode terminals are located on the end cover. The electrode assembly comprises a main body and tabs. The tabs extend from the main body away from it. The adapter sheet connects the electrode terminals to the tabs of the electrode assembly. The applicant discovered that the tabs of the battery cell and the case overlap, causing a short circuit. Further research by the applicant revealed that the tabs of the electrode assembly deform through a bending or flattening process to meet assembly requirements, thus accumulating elastic restorative force. When the battery cell assembly is complete, the tabs do not overlap with the case, preventing a short circuit. However, after a certain period of use, the tabs release their accumulated elastic restorative force, causing springback, which leads to overlapping contact between the tabs and the case and a short circuit.
[0028] Based on the problems identified above, the applicant improves the structure of the battery cell and reduces the possibility of overlapping contact between the tab and the case by pressing the insulating member of the end cover assembly against the outer isolation portion of the tab. Embodiments of the present application are further described below.
[0029] To better understand this application, embodiments of this application will be described below with reference to Figures 1 to 20.
[0030] Embodiments of the present application provide a power consumption device that uses a battery 10 as a power source. The power consumption device may be, but is not limited to, a vehicle, a ship, or an aircraft. As shown in Figure 1, one embodiment of the present application provides a vehicle 1. The vehicle 1 may be a fuel-powered vehicle, a gas vehicle, or a new energy vehicle. The new energy vehicle may be a pure electric vehicle, a hybrid vehicle, or an extended-range vehicle. In one embodiment of the present application, the vehicle 1 may include a motor 1a, a controller 1b, and a battery 10. The controller 1b controls the battery 10 to supply power to the motor 1a. The motor 1a is connected to the wheels by a transmission mechanism, thereby driving the vehicle 1 to move. The battery 10 can provide driving power to the vehicle 1 by replacing or partially replacing fuel oil or natural gas as the driving power source for the vehicle 1. In one example, the battery 10 may be installed at the bottom, front, or rear of the vehicle 1. The battery 10 may be used to supply power to the vehicle 1. In one example, the battery 10 may be used in the circuit system of the vehicle 1 as the operating power source for the vehicle 1. For example, the battery 10 can be used to meet the power consumption requirements for starting, navigating, and driving the vehicle 1.
[0031] As shown in Figures 2 and 3, the battery 10 includes a housing. The type of housing is not limited. The housing may be a frame-shaped housing, a disc-shaped housing, or a box-shaped housing, etc. Exemplarily, the housing includes a first part 11 and a second part 12 covered by the first part 11, and the covering of the first part 11 and the second part 12 forms a housing. The battery 10 has a plurality of battery cells 40. The plurality of battery cells 40 may constitute the battery 10, or they may first constitute a battery module 20 and then further constitute the battery 10. Figure 3 schematically shows a battery module 20 of one embodiment, and the battery module 20 is installed in the housing of the housing.
[0032] In some embodiments, the battery 10 may have multiple battery cells 40 to meet different power consumption demands. Here, the multiple battery cells 40 may be arranged in series, parallel, or mixed, with mixed being a combination of series and parallel. That is, the multiple battery cells 40 can be directly installed in the housing of the casing to constitute the battery 10. The battery cells 40 may have a cylindrical structure or a rectangular structure with six sides, and the external structure of the battery cells 40 is not limited here. In the embodiments of this application, the example will be given of the battery cells 40 having a cylindrical structure, but this will not limit the scope of protection of this application.
[0033] As shown in Figures 3 and 4, the battery module 20 has a housing 30 and a battery cell 40 installed inside the housing 30. In one example, the housing 30 comprises a cylindrical body 31, a first cover 32, and a second cover 33. The first cover 32 and the second cover 33 are provided at both ends of the cylindrical body 31, respectively. The first cover 32 and the second cover 33 are each detachably connected to the cylindrical body 31. For example, the first cover 32 and the second cover 33 can be locked to the cylindrical body 31 or connected with screws, respectively. The assembly of the cylindrical body 31, the first cover 32, and the second cover 33 forms a housing space. The battery cell 40 is provided inside the housing space of the housing 30.
[0034] As shown in Figure 5, the battery cell 40 of the embodiment of the present application comprises a case 41 and an electrode assembly 42 installed inside the case 41. The case 41 of the embodiment of the present application has a cylindrical structure. The case 41 has an internal space for housing the electrode assembly 42 and electrolyte, and an opening 411 communicating with the internal space. The electrode assembly 42 can be inserted into the case 41 through the opening 411. The case 41 can be manufactured from a material such as aluminum, an aluminum alloy, or plastic. The electrode assembly 42 comprises a main body 421 and a tab 422. The main body 421 has an end 421a. The electrode assembly 42 is installed inside the case 41, with the end 421a of the main body 421 facing the opening 411 of the case 41, and the tab 422 extending from the end 421a of the main body 421 to the opening 411 of the case 41.
[0035] As shown in Figure 5, the battery cell 40 of the embodiment of the present application further comprises an end cover assembly 43 and an adapter sheet 44. The end cover assembly 43 is used to close the opening 411 of the case 41. The end cover assembly 43 includes an end cover 431, a first insulating member 432, and electrode terminals 433. The end cover 431 is positioned to cover the opening 411 of the case 41 and is connected to the case 41. For example, the end cover 431 may be welded to the case 41. The first insulating member 432 and the electrode terminals 433 are both provided on the end cover 431. The first insulating member 432 is provided on the side of the end cover 431 closer to the interior of the case 41. The first insulating member 432 has a recess 432a. The recess 432a is formed recessed toward the end cover 431 from the surface of the first insulating member 432 away from the end cover 431, with the opening of the recess facing the electrode assembly 42. The electrode terminals 433 are electrically connected to the electrode assembly 42 by adapter sheets 44. In one example, there are two end cover assemblies 43 and two adapter sheets 44. The end cover assemblies 43 and adapter sheets 44 are installed correspondingly at each of the opposing ends of the electrode assembly 42.
[0036] As shown in Figure 6, the electrode assembly 42 of the embodiment of the present application can be formed by winding together a first electrode sheet 42a, a second electrode sheet 42b, and a separator 42c. Here, the separator 42c is an insulator interposed between the first electrode sheet 42a and the second electrode sheet 42b. The separator 42c is used to insulate and isolate the first electrode sheet 42a and the second electrode sheet 42b to avoid contact between them. Both the first electrode sheet 42a and the second electrode sheet 42b include a coated area and an uncoated area. The active material of the first electrode sheet 42a is coated in the coated area of the first electrode sheet 42a, and the active material of the second electrode sheet 42b is coated in the coated area of the second electrode sheet 42b. The active material is coated on a current collector formed of a thin metal plate in the coated area, and the active material is not coated in the uncoated area. In the electrode assembly 42, the portion corresponding to the coated areas of the first electrode sheet 42a and the second electrode sheet 42b is the main body 421. The uncoated areas of the first electrode sheet 42a or the second electrode sheet 42b form tabs 422. The main body 421 has two opposing ends 421a. The tabs 422 extend from one end 421a of the main body 421. The tabs 422 have a multilayer structure. For example, the uncoated areas of the first electrode sheet 42a are stacked to form a positive electrode tab, and the uncoated areas of the second electrode sheet 42b are stacked to form a negative electrode tab. The positive electrode tab and the negative electrode tab extend from one end 421a of the main body 421, respectively. When winding the first electrode sheet 42a, the second electrode sheet 42b, and the separator 42c together, at the end of the winding process, the separator 42c is wound further by itself a predetermined number of times, so that the separator 42c that extends beyond the first electrode sheet 42a and the second electrode sheet 42b can wrap around them. Along the direction of the winding axis of the electrode assembly 42, the dimensions of the separator 42c are larger than the dimensions of the coating area of the first electrode sheet 42a and larger than the dimensions of the coating area of the second electrode sheet 42b. Therefore, along the direction of the winding axis of the electrode assembly 42, a portion of the separator 42c of the electrode assembly 42 extends beyond the main body 421, and a portion of the separator 42c that extends beyond the main body 421 is located on the outer circumference of the tab 422.
[0037] As shown in Figures 7 and 8, the end cover 431 is connected to the case 41 to enclose the electrode assembly 42 within the case 41. The first insulating member 432 can isolate the electrode assembly 42 from the end cover 431. Exemplarily, the case 41 has two opposing openings 411. The two end covers 431 each cover the two openings 411 and are both connected to the case 41. The electrode assembly 42 has two opposing tabs 422. The two tabs 422 extend from both ends 421a of the main body 421, respectively. The polarity of the two tabs 422 is opposite. The two electrode terminals 433 are each connected to the two tabs 422. The two first insulating members 432 are each connected to the two end covers 431.
[0038] As shown in Figures 8 and 9, the electrode assembly 42 further comprises an isolation portion 423. The isolation portion 423 is located on the outer circumference of the tab 422, thereby positioning the tab 422 inside the isolation portion 423. Here, "inside" refers to the side away from the case 41. The isolation portion 423 extends along the circumferential side of the tab 422. The isolation portion 423 does not extend beyond the tab 422 in the direction of the winding axis of the electrode assembly 42. The first insulating member 432 of the embodiment of the present application has a recess 432a. The tab 422 extends toward the recess 432a. At least a portion of the tab 422 is housed within the recess 432a of the first insulating member 432. The first insulating member 432 can act as a restricting restraint on the electrode assembly 42, reducing the possibility that the electrode assembly 42 may move into the case 41 due to shock or vibration of the battery cell 40. The first insulating member 432 is positioned by pressing it against the isolation portion 423 to isolate the tab 422 from the case 41. After the first insulating member 432 and the isolation portion 423 are pressed together, a pressing region is formed, and the tab 422 is located inside the pressing region. Both the first insulating member 432 and the isolation portion 423 form an isolation structure around the tab 422, thereby isolating the tab 422 from the case 41.
[0039] The battery cell 40 of the embodiment of the present invention comprises a case 41, an electrode assembly 42, and an end cover assembly 43. The recess 432a of the first insulating member 432 of the end cover assembly 43 accommodates the tab 422 of the electrode assembly 42. At the same time, the first insulating member 432 and the isolation portion 423 of the electrode assembly 42 press against each other to form an isolation structure around the tab 422, thereby isolating the tab 422 from the case 41. In this way, during the use of the battery cell 40, when the tab 422 deforms by releasing its elastic restoring force and comes into contact with the first insulating member 432 and the isolation portion 423, it is isolated by the first insulating member 432 and the isolation portion 423, thereby effectively reducing the possibility of the tab 422 overlapping contact with the case 41 and short-circuiting. On the other hand, the first insulating member 432 and the isolation portion 423 press against each other, and at least a portion of the tab 422 is housed in the recess 432a of the first insulating member 432, so that the tab 422 is protected by the first insulating member 432 and the isolation portion 423, thereby making it difficult for external conductive impurities to come into contact with the tab 422 and reducing the possibility of conductive impurities conducting electricity between the tab 422 and the case 41 and causing a short circuit.
[0040] In some embodiments, as shown in Figure 9, the first insulating member 432 comprises a main body 4321 and an extension portion 4322 connected to each other. The first insulating member 432 is connected to the end cover 431 by the main body 4321. Exemplarily, after the electrode terminal 433 is connected to and fixed to the end cover 431, a portion of the electrode terminal 433 is located on the side of the main body 4321 away from the end cover 431, and this portion applies a pressing force to the main body 4321 toward the end cover 431, thereby achieving connection between the first insulating member 432 and the end cover 431. The extension portion 4322 extends from the main body 4321 toward the electrode assembly 42. The main body 4321 and the extension portion 4322 are provided intersecting. The main body 4321 and the extension portion 4322 form a recess 432a. The extension portion 4322 is provided on the outer circumference of the tab 422. The extension portion 4322 extends along the circumferential side of the tab 422. The first insulating member 432 is abutted and fitted into the isolation portion 423 by the extension portion 4322. The first insulating member 432 is pre-connected and fixed to the end cover 431 by the main body 4321, and then the end cover 431 with the first insulating member 432 attached and the case 41 can be assembled. Because the first insulating member 432 has an extension portion 4322, when assembling, the extension portion 4322 of the first insulating member 432 can be inserted into the gap between the tab 422 and the case 41. This allows the extension portion 4322 to guide the tab 422 to be accurately inserted into the recess 432a of the first insulating member 432. Furthermore, during the assembly process, the first insulating member 432 applies compressive stress to the tab 422, reducing the possibility of deformation of the tab 422, while the extension portion 4322 can form protection and restriction to the tab 422 earlier during the assembly process. In this embodiment, at least a portion of the isolation portion 423 is located within the recess 432a. The extension portion 4322 is pressed from the outside of the isolation portion 423 toward the case 41, thereby allowing the extension portion 4322 and the isolation portion 423 to protect or isolate the tab 422 from its outer circumference. Here, the outside refers to the side adjacent to the case 41.
[0041] In some examples, the isolation portion 423 may be a standalone structural member, and it is necessary to assemble the isolation portion 423 on the outer circumference of the tab 422. Alternatively, the isolation portion 423 is a portion of the separator 42c that extends beyond the main body 421 and is located on the outer circumference of the tab 422. During the winding process, a portion of the separator 42c extends beyond the first electrode sheet 42a and the second electrode sheet 42b. The separator 42c extends beyond the portion of the first electrode sheet 42a and the second electrode sheet 42b (i.e., the separator 42c that has been wound a predetermined number of times on its own at the end of the winding process described above), and at the same time extends beyond the main body 421 along the axial direction of the electrode assembly 42. A portion of the separator 42c that extends beyond the main body 421 and is located on the outer circumference of the tab 422 can be used to form the isolation portion 423. This eliminates the need to specifically install the isolation portion 423, which helps to reduce the number of parts used and the difficulty of assembly. Furthermore, because the separator 42c has an integrated structure, the formed isolation portion 423 is less likely to fall off.
[0042] In some examples, the isolation portion 423 may be an annular structure having a central hole. The tab 422 passes through the central hole of the isolation portion 423. The isolation portion 423 is fitted around the entire outer circumference of the tab 422, thereby providing protection for the tab 422 in the entire circumferential direction.
[0043] In some examples, the first insulating member 432 may be a spherical cover. The surface of the first insulating member 432 on which the recess 432a is formed is a spherical surface, that is, the inner wall of the recess 432a is a spherical surface.
[0044] In some embodiments, as shown in Figures 9 and 10, the adapter sheet 44 comprises a first adapter portion 441 and a second adapter portion 442. The first adapter portion 441 and the second adapter portion 442 are connected. The adapter sheet 44 is connected to the tab 422 of the electrode assembly 42 by the first adapter portion 441. For example, the first adapter portion 441 and the tab 422 are welded together. The adapter sheet 44 is connected to the electrode terminal 433 by the second adapter portion 442. For example, the second adapter portion 442 and the electrode terminal 433 are connected by rivets. As shown in Figure 9, after the assembly of the battery cell 40 is complete, the first adapter portion 441 is bent relative to the second adapter portion 442. The first adapter portion 441 is located between the first insulating member 432 and the electrode assembly 42 and is located within the recess 432a. The first insulating member 432 and the electrode assembly 42 both push out the first adapter portion 441, thereby making the first adapter portion 441 less susceptible to displacement relative to the electrode assembly 42, which helps reduce the possibility of the first adapter portion 441 and the tab 422 becoming disconnected due to the first adapter portion 441 moving relative to the electrode assembly 42. In one example, the main body 4321 of the first insulating member 432 and the electrode assembly 42 both push out the first adapter portion 441.
[0045] In some embodiments, Figure 10 schematically shows that the adapter sheet 44 is connected to the electrode terminal 433 in an unfolded state. As shown in Figure 10, the stretched portion 4322 has an annular structure with a notch 43221, and the stretched portion 4322 separates from the end face of the end cover 431 to form an open ring structure. The notch 43221 of the stretched portion 4322 can accommodate the second adapter portion 442. The second adapter portion 442 of the adapter sheet 44 can pass through the notch 43221, thereby allowing the first adapter portion 441 and the second adapter portion 442 of the adapter sheet 44 to remain flat during the manufacturing process of the adapter sheet 44, and reducing the number of manufacturing steps for the adapter sheet 44. Any portion of the stretched portion 4322 other than the notch 43221 may be pushed out into the isolation portion 423.
[0046] In some embodiments, Figure 11 schematically shows the adapter sheet 44 connected to the electrode terminal 433 in an unbent state. As shown in Figure 11, the stretched portion 4322 is a continuously stretched ring-bound structure, and the stretched portion 4322 exhibits a ring-bound structure away from the end face of the end cover 431. The first adapter portion 441 and the second adapter portion 442 of the adapter sheet 44 need to be bent during manufacturing, so that after the second adapter portion 442 is connected to the electrode terminal 433, the adapter sheet 44 can avoid the stretched portion 4322. The stretched portion 4322 can be pushed out into the isolation portion 423, and since the end face of the stretched portion 4322 away from the end cover 431 exhibits a ring-bound structure, the stretched portion 4322 can form protection and isolation from the tab 422 around the entire outer circumference of the tab 422, which helps to further improve the isolation effect. In embodiments in which the isolation portion 423 also has an annular structure, the extended portion 4322 forms a closed ring isolation region that is continuously extended after being pressed against the isolation portion 423, thereby isolating the tab 422 from the case 41 at each circumferential position of the tab 422.
[0047] In some embodiments, as shown in Figures 12 to 14, the extension portion 4322 is located on the side of the isolation portion 423 that is close to the end cover 431. Along the direction away from the end cover 431, the extension portion 4322 is pressed against the isolation portion 423. One end of the extension portion 4322 that is away from the end cover 431 is pressed against the isolation portion 423. In this way, the extension portion 4322 can form a restrictive constraint with respect to the isolation portion 423, reducing the possibility of the isolation portion 423 moving toward or away from the end cover 431, thereby reducing the possibility of the extension portion 4322 and the isolation portion 423 being released from the pressed state by the isolation portion 423 moving toward or away from the end cover 431. At the same time, the extension portion 4322 can form a restrictive constraint with respect to the electrode assembly 42, reducing the possibility of the electrode assembly 42 moving toward or away from the end cover 431.
[0048] In some embodiments, as shown in Figure 14, the tab 422 has a stepped portion 422a. The stepped portion 422a has a first side surface 4221, a transition surface 4222, and a second side surface 4223. The tab 422 has a first extension segment corresponding to the first side surface 4221 and a second extension segment corresponding to the second side surface 4223. The first side surface 4221 is close to the main body 421, and the second side surface 4223 is close to the end cover 431. The transition surface 4222 connects the first side surface 4221 and the second side surface 4223. The transition surface 4222 faces the end cover 431. The minimum radial dimension of the first side surface 4221 is greater than the maximum radial dimension of the second side surface 4223, i.e., the minimum radial dimension of the first extension segment is greater than the maximum radial dimension of the second extension segment. The portion of tab 422 corresponding to the second side surface 4223 is located within the recess 432a, that is, the second extended segment of tab 422 is located within the recess 432a. In this way, a portion of tab 422 can be located within the recess 432a of the first insulating member 432, which helps to reduce the overall axial dimension of the electrode assembly 42 of the battery cell 40 for a battery cell 40 of the same capacity, thereby helping to improve the energy density of the battery cell 40. In one example, the extended portion 4322 is positioned around the second side surface 4223. The portion of the inner wall of the recess 432a corresponding to the extended portion 4322 surrounds the second side surface 4223.
[0049] In one example, as shown in Figure 14, the entire tab 422 is flattened by a flattening process to form a stepped portion 422a. The isolation portion 423 is a separate structure. After the tab 422 is flattened, the isolation portion 423 is placed on the transition surface 4222 and pressed against the isolation portion 423 by the first insulating member 432. In another example, as shown in Figure 15, before the electrode sheet is wound, the portion of the electrode sheet intended to form the second stretched segment is cut so that the width of this portion is smaller than the width of the rest of the electrode sheet. After the winding of the electrode sheet is complete, the second stretched segment is formed on the cut portion and the first stretched segment is formed on the uncut portion. The separator 42c may have a portion that extends axially beyond the second stretched segment and is located on the outer circumference of the first stretched segment that forms the isolation portion 423.
[0050] In one example, the isolation portion 423 is located on the transition surface 4222. The end face of the extension portion 4322 faces the transition surface 4222 and is pressed against the isolation portion 423. Because the isolation portion 423 is located on the transition surface 4222 of the tab 422, when the extension portion 4322 applies a pressing stress to the isolation portion 423, the isolation portion 423 can transmit the force to the transition surface 4222, thereby allowing the tab 422 to absorb the pressing stress. In this way, on the one hand, the possibility of the electrode assembly 42 moving towards or away from the end cover 431 is reduced. On the other hand, the pressing stress of the extension portion 4322 on the isolation portion 423 directly acts on the main body 421, causing the separator 42c of the main body 421 to shift position, thereby reducing the possibility of the first electrode sheet 42a and the second electrode sheet 42b coming into contact with each other and short-circuiting.
[0051] In some embodiments, as shown in Figures 16 to 18, the electrode assembly 42 further includes a second insulating member 424. The second insulating member 424 is installed surrounding the first insulating member 432 and the pressing area of the isolation portion 423, thereby isolating the case 41 from the first insulating member 432 and the pressing area of the isolation portion 423. In one example, the second insulating member 424 forms an isolation structure on the outside of the extended portion 4322 of the first insulating member 432, thereby reducing the possibility of conductive impurities entering the pressing area of the extended portion 4322 and the isolation portion 423. Furthermore, isolation protection can be formed for the tab 422, reducing the possibility of the tab 422 coming into contact with the case 41 when the extended portion 4322 and the isolation portion 423 unexpectedly release from the pressed state. Thus, the pressing region between the extended portion 4322 and the isolation portion 423, and the second insulating member 424 can form a double isolation and protection structure with respect to the tab 422, which helps to further reduce the possibility of contact between the tab 422 and the case 41 and short-circuit. In one example, the second insulating member 424 has an annular structure. The second insulating member 424 extends continuously along the circumferential side of the extended portion 4322, thereby providing protection over the entire circumferential direction of the extended portion 4322.
[0052] In some examples, the second insulating member 424 may be a standalone structural member. Two second insulating members 424 are provided, each corresponding to two tabs 422. In the assembly process, the second insulating member 424 must be pre-assembled around the outer circumference of the tabs 422, and the second insulating member 424 does not cover the main body 421. Next, the electrode assembly 42 with the second insulating member 424 is placed inside the case 41. Alternatively, the second insulating member 424 may be a standalone structural member. The second insulating member 424 has a cylindrical structure. The second insulating member 424 encloses the main body 421 and the tabs 422. The portion of the second insulating member 424 that extends beyond the main body 421 surrounds the pressing area between the first insulating member 432 and the isolation portion 423.
[0053] In some embodiments, the first insulating member 432 has an outer surface 432b facing the case 41. The second insulating member 424 is pressed against the first insulating member 432 and faces the outer surface 432b of the case 41 and is in contact with the isolation portion 423, thereby forming contact areas between the second insulating member 424 and the first insulating member 432 and between the second insulating member 424 and the isolation portion 423. The second insulating member 424 can block conductive impurities, further reducing the possibility of conductive impurities entering between the second insulating member 424 and the first insulating member 432 or between the second insulating member 424 and the isolation portion 423, and then entering the pressing area between the extension portion 4322 and the isolation portion 423.
[0054] In some examples, the outer surface 432b of the first insulating member 432 has a guide slope. Along the direction away from the end cover 431, the guide slope is inclined toward a recess 432a. In this way, when assembling the end cover assembly 43 after attaching the electrode assembly 42 with the second insulating member 424 to the case 41, the guiding action of the guide slope helps the portion of the first insulating member 432 corresponding to the guide slope to easily enter the space confined to the second insulating member 424, and helps reduce the possibility that the second insulating member 424 will collapse and lose its isolation function due to the first insulating member 432 being directly pressed against the second insulating member 424. In embodiments in which the first insulating member 432 comprises a main body 4321 and an extension portion 4322, the guide slope installed on the first insulating member 432 causes the outer circumferential surface of the extension portion 4322 to be conical.
[0055] In some examples, the second insulating member 424 is bonded to the outer surface 432b of the first insulating member 432, which helps to improve the reliability and stability of the connection between the second insulating member 424 and the first insulating member 432. This reduces the possibility that the second insulating member 424 and the first insulating member 432 will detach from contact due to operating conditions such as shock and vibration during the use of the battery cell 40. For example, the second insulating member 424 can be bonded to the outer surface 432b of the first insulating member 432 with tape or adhesive.
[0056] In some examples, the area in which the second insulating member 424 is pressed against the outer surface 432b of the first insulating member 432 is closer to the end cover 431 than to the tab 422, thereby bringing the contact area between the second insulating member 424 and the first insulating member 432 closer to the end cover 431. During the assembly process, the first insulating member 432 can contact the second insulating member 424 more quickly, thereby allowing the first insulating member 432 to contact the second insulating member 424 before being pressed against the isolation portion 423. This reduces the possibility of conductive impurities entering the tab 422 through the gap between the non-contacting first insulating member 432 and the second insulating member 424 during the assembly process.
[0057] The battery cell 40 of the embodiment of the present application comprises an electrode assembly 42 having tabs 422 and isolation portions 423, and a first insulating member 432 having a recess 432a. The isolation portion 423 is provided along the circumferential side of the tabs 422. After the assembly of the battery cell 40 is completed, at least a portion of the tabs 422 are housed in the recess 432a, and the first insulating member 432 is pressed against the isolation portion 423, thereby allowing the first insulating member 432 and the isolation portion 423 to isolate the tabs 422 from the case 41. In this way, during the use of the battery cell 40, when the tabs 422 deform by releasing the elastic restoring force accumulated within them, if the tabs 422 reach the first insulating member 432 and the isolation portion 423, the tabs 422 are restricted by the first insulating member 432 and the isolation portion 423, thereby making it difficult for them to come into contact with the case 41, and reducing the possibility of the battery cell 40 short-circuiting due to contact between the tabs 422 and the case 41.
[0058] As shown in Figure 19, based on the battery cell 40 of the above embodiment, the embodiment of the present application is, An electrode assembly 42 comprising a main body 421, a tab 422, and an isolation portion 423 is placed inside a case 41 having an opening 411, where the tab 422 extends from the end 421a of the main body 421 toward the opening 411, and the isolation portion 423 is installed on the outer circumference of the tab 422. The end cover assembly 43, comprising the end cover 431 and the first insulating member 432, is assembled with the case 41, the end cover 431 is placed over the opening 411 so as to be connected to the case 41, and the first insulating member 432 is positioned on the side of the end cover 431 that is close to the inside of the case 41, wherein the first insulating member 432 has a recess 432a, at least a portion of the tab 422 is housed in the recess 432a, and the first insulating member 432 is pressed against the isolation portion 423 so as to isolate the tab 422 from the case 41. The present invention further provides a method for manufacturing a battery cell 40, including the method described above.
[0059] The battery cell 40 manufactured by the manufacturing method of the embodiment of the present application is formed by placing an electrode assembly 42, which includes a main body 421, tabs 422 and isolation parts 423, into a case 41, and oriented the tabs 422 toward the opening 411 of the case 41. An end cover assembly 43, which consists of a first insulating member 432 having a recess 432a and an end cover 431, is assembled with the case 41. At least a portion of the tabs 422 are housed in the recess 432a of the first insulating member 432, and the first insulating member 432 is pressed against the isolation part 423. According to the structural design that allows the tab 422 and case 41 to be isolated by the first insulating member 432 and isolation part 423, when the tab 422 deforms by releasing the elastic restoring force accumulated within it during the use of the battery cell 40, if it reaches the first insulating member 432 and isolation part 423, it will be restricted by the first insulating member 432 and isolation part 423, making it less likely to come into contact with the case 41, thereby reducing the possibility of the battery cell 40 being short-circuited due to contact between the tab 422 and case 41.
[0060] As shown in Figure 20, based on the battery cell 40 of the above embodiment, the embodiment of the present application is, An electrode assembly 42 comprising a main body 421, a tab 422, and an isolation part 423 is placed inside a case 41 having an opening 411, where the tab 422 extends from the end 421a of the main body 421 toward the opening 411, and the isolation part 423 is installed on the outer circumference of the tab 422, in a first assembly device 51, A second assembly device 52 assembles an end cover assembly 43, which includes an end cover 431 and a first insulating member 432, with a case 41, covers the opening 411 with the end cover 431 so as to connect to the case 41, and positions the first insulating member 432 so as to be on the side of the end cover 431 closer to the inside of the case 41, where the first insulating member 432 has a recess 432a, at least a portion of the tab 422 is housed in the recess 432a, and the first insulating member 432 is pressed against an isolation portion 423 so as to isolate the tab 422 from the case 41. The present invention further provides a manufacturing system 50 for battery cells 40, which includes the above features.
[0061] While the present application has been described with reference to preferred embodiments, various improvements can be made thereto, and components therein can be replaced with equivalents, without departing from the scope of the application. In particular, any technical feature mentioned in each embodiment can be combined in any way, provided that no structural conflicts exist. The present application is not limited to the specific embodiments disclosed herein, but includes all technical ideas within the scope of the claims.
Claims
1. A battery cell comprising a case, an electrode assembly, and an end cover assembly, The case has an opening, The electrode assembly comprises a main body, a tab, and an isolation part, and is installed inside the case. The tab extends from the end of the main body toward the opening, and the isolation portion is installed on the outer circumference of the tab. The end cover assembly comprises an end cover and a first insulating member, and is used to close the opening. The end cover is positioned to cover the opening and connect to the case, the first insulating member is installed on the side of the end cover closest to the inside of the case and has a recess, at least a portion of the tab is housed in the recess, and the first insulating member is positioned in pressure with the isolation portion to isolate the tab from the case. The end cover assembly further comprises an adapter sheet used for electrical connection, the adapter sheet is housed in the recess and has a first adapter portion, the first adapter portion is arranged to connect the tab and is extruded by the first insulating member and the electrode assembly, The tab has a stepped portion, The stepped portion has a first side surface, a transition surface, and a second side surface. The first side surface is close to the main body, the transition surface connects the first side surface and the second side surface and faces the end cover, the minimum radial dimension of the first side surface is greater than the maximum radial dimension of the second side surface, and at least a portion of the inner wall of the recess surrounds the second side surface. Battery cell.
2. The first insulating member comprises a main body and an extension portion connected to each other, The main body is positioned to be connected to the end cover, The extended portion extends and protrudes from the main body toward the electrode assembly to form the recess, is installed on the outer circumference of the tab, and is pressed against the isolation portion. The battery cell according to claim 1.
3. The battery cell according to claim 2, wherein the extended portion is located on the side of the isolation portion that is close to the end cover and is pressed against the isolation portion in a direction away from the end cover.
4. The battery cell according to claim 2 or 3, wherein the extended portion is a continuously extended closed ring structure or an annular structure having a notch.
5. The battery cell according to any one of claims 1 to 4, wherein the isolation portion is annular.
6. The battery cell according to claim 2, wherein the extended portion surrounds the second side surface and the isolation portion is installed on the transition surface.
7. The electrode assembly comprises a first electrode sheet, a second electrode sheet, and a separator. The first electrode sheet and the second electrode sheet each have a coated area and an uncoated area, the portion of the electrode assembly corresponding to the coated areas of the first electrode sheet and the second electrode sheet is the main body, the uncoated area of the first electrode sheet or the second electrode sheet forms the tab, the separator is used to separate the first electrode sheet and the second electrode sheet, and the separating portion is a part of the separator that extends beyond the main body and is located on the outer circumference of the tab. The battery cell according to claim 5 or 6.
8. The battery cell according to claim 7, wherein the isolation portion is a part of the separator that extends beyond the first side surface and is located on the outer circumference of the second side surface.
9. The electrode assembly further comprises a second insulating member, The battery cell according to any one of claims 1 to 8, wherein the second insulating member surrounds the first insulating member and the pressing area of the isolation portion, thereby isolating the pressing area from the case.
10. The battery cell according to claim 9, wherein the second insulating member is pressed against the outer surface of the first insulating member facing the case and is in contact with the isolation portion.
11. The outer surface of the first insulating member has a guide slope, The battery cell according to claim 10, wherein the guide slope is inclined toward the recess in a direction away from the end cover.
12. The battery cell according to claim 10 or 11, wherein the second insulating member is bonded to the outer surface of the first insulating member.
13. The battery cell according to any one of claims 10 to 12, wherein the region in which the second insulating member is pressed against the outer surface of the first insulating member is closer to the end cover than to the tab.
14. A battery comprising a battery cell according to any one of claims 1 to 13.
15. A power consumption device comprising a battery cell according to any one of claims 1 to 13, used for supplying electrical energy.
16. An electrode assembly comprising a main body, a tab, and an isolation part is placed inside a case having an opening, wherein the tab extends from the end of the main body toward the opening, and the isolation part is installed on the outer circumference of the tab. An end cover assembly comprising an end cover, an adapter sheet used for electrical connection, and a first insulating member is assembled with the case, the end cover is placed over the opening so as to be connected to the case, and the first insulating member is positioned on the side of the end cover closest to the inside of the case, wherein the first insulating member has a recess, at least a portion of the tab is housed in the recess, the first insulating member is pressed against the isolation portion so as to isolate the tab from the case, the adapter sheet is housed in the recess and has a first adapter portion, the first adapter portion is positioned to connect the tab and is pushed out by the first insulating member and the electrode assembly, Includes, The tab has a stepped portion, The stepped portion has a first side surface, a transition surface, and a second side surface. The first side surface is close to the main body, the transition surface connects the first side surface and the second side surface and faces the end cover, the minimum radial dimension of the first side surface is greater than the maximum radial dimension of the second side surface, and at least a portion of the inner wall of the recess surrounds the second side surface. A method for manufacturing battery cells.
17. An electrode assembly comprising a main body, a tab, and an isolation part is placed inside a case having an opening, where the tab extends from the end of the main body toward the opening, and the isolation part is installed on the outer circumference of the tab, and the first assembly device is... A second assembly device comprises an end cover assembly comprising an end cover, an adapter sheet used for electrical connection, and a first insulating member, which is assembled onto the case; the end cover is placed over the opening so as to be connected to the case; and the first insulating member is positioned on the side of the end cover closer to the inside of the case, wherein the first insulating member has a recess, at least a portion of the tab is housed in the recess, and the first insulating member is pressed into the isolation portion so as to isolate the tab from the case; the adapter sheet is housed in the recess and has a first adapter portion, the first adapter portion is positioned to connect the tab and is pushed out by the first insulating member and the electrode assembly; Equipped with, The tab has a stepped portion, The stepped portion has a first side surface, a transition surface, and a second side surface. The first side surface is close to the main body, the transition surface connects the first side surface and the second side surface and faces the end cover, the minimum radial dimension of the first side surface is greater than the maximum radial dimension of the second side surface, and at least a portion of the inner wall of the recess surrounds the second side surface. Battery cell manufacturing system.
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