Battery cells, batteries and electrical devices

A parallel configuration of two cell cores within a battery cell case, with optimized electrode connections, addresses the challenge of reducing volume and improving structural efficiency, while minimizing short circuit risks and material usage.

JP7783974B2Active Publication Date: 2025-12-10CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
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Patent Information

Application Number
JP2024509035
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-02-25
Filing Date
2022-12-29
Publication Date
2025-12-10
Estimated Expiration
2042-12-29

AI Technical Summary

Technical Problem

Existing battery designs face challenges in reducing the volume of battery cells while maintaining efficient electrical connections and avoiding the risks of short circuits and high-pressure exposure of electrolyte.

Method used

The battery cell design incorporates two cell cores arranged in a parallel configuration within a single case, with electrode lead parts extending from opposite side surfaces for electrical connection, optimizing the internal layout and reducing volume by arranging connections in a specific direction, and using cover plates to minimize tab lengths and distances for improved connections.

Benefits of technology

This design effectively reduces the volume of the battery cell, minimizes the risk of short circuits, and optimizes the internal structural layout, while also reducing material usage and assembly complexity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application provides a battery cell, a battery, and an electric device, the battery cell including a case, a first cell core, and a second cell core, the first cell core being provided inside the case, the first cell core including a first main body portion, a first electrode lead part extending from a first side surface of the first main body portion, and a second electrode lead part extending from a second side surface of the first main body portion, the first side surface and the second side surface being disposed opposite each other, the second cell core being provided inside the case, and the second The cell core includes a second body portion, a third electrode lead part extending from a third side surface of the second body portion, and a fourth electrode lead part extending from a fourth side surface of the second body portion, the third side surface and the fourth side surface being disposed opposite each other, wherein the first cell core and the second cell core are disposed along a first direction, and the first side surface and the third side surface are disposed adjacent to each other and opposite each other, and the first electrode lead part and the third electrode lead part are electrically connected. The present application is advantageous in reducing the volume of the battery cell by optimizing the arrangement of the internal structure of the case.
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Description

[Technical Field]

[0001] [CROSS-REFERENCE TO RELATED APPLICATIONS] This application is based on and claims priority from a Chinese patent application having application number 202220401018.2 and filing date February 25, 2022, the disclosure of which is incorporated herein by reference in its entirety.

[0002] This application relates to the field of battery technology, and more particularly to battery cells, batteries, and electrical devices. [Background technology]

[0003] Energy conservation and emission reduction are key to the sustainable development of the automotive industry, and electric vehicles have become an important part of this due to their advantages in energy conservation and environmental protection. Battery technology is one of the key factors related to the development of electric vehicles.

[0004] The capacity of a battery is related to the volume of the battery, and the layout of the internal structure of the battery determines the size of the volume of the battery. Summary of the Invention

[0005] The present application provides a battery cell, a battery, and an electric device that can effectively reduce the volume of the battery cell.

[0006] In a first aspect, the present application provides a battery cell including a case, a first cell core, and a second cell core, wherein the first cell core is disposed inside the case, and the first cell core includes a first main body portion, a first electrode lead part extending from a first side surface of the first main body portion, and a second electrode lead part extending from a second side surface of the first main body portion, with the first side surface and the second side surface arranged opposite each other; the second cell core is disposed inside the case, and the second cell core includes a second main body portion, a third electrode lead part extending from a third side surface of the second main body portion, and a fourth electrode lead part extending from a fourth side surface of the second body portion, with the third side surface and the fourth side surface arranged opposite each other; the first cell core and the second cell core are disposed along a first direction, and the first side surface and the third side surface are adjacent to each other and arranged opposite each other; and the first electrode lead part and the third electrode lead part are electrically connected.

[0007] In an embodiment of a battery cell provided herein, the first cell core and the second cell core are arranged in a first direction, and the center line of the first cell core and the center line of the second cell core are on the same line and parallel to the first direction. The first side surface of the first cell core and the third side surface of the second cell core are arranged adjacent to and facing each other, whereby the first electrode lead part located on the first side surface and the third electrode lead part located on the third side surface are adjacent to each other, and electrical connection between the first cell and the second cell is realized via the electrical connection between the first electrode lead part and the third electrode lead part. At the same time, the second side surface of the first cell core and the fourth side surface of the second cell core are spaced apart from each other, the second electrode lead part extends from the second side surface, and the fourth electrode lead part extends from the fourth side surface, and the second electrode lead part and the fourth electrode lead part may respectively be two electrodes of the battery cell, so that the connection between the first cell core and the second cell core and the two electrode connection parts of the battery cell are all arranged in the first direction, which is advantageous for optimizing the internal structural layout of the battery cell and for reducing the volume of the battery cell.

[0008] In some embodiments, the first electrode lead part includes a first positive electrode tab and a first negative electrode tab, and the third electrode lead part includes a second positive electrode tab and a second negative electrode tab, the first positive electrode tab and the second positive electrode tab being electrically connected, and the first negative electrode tab and the second negative electrode tab being electrically connected. This achieves a parallel connection between the first cell core and the second cell core. Compared to a series connection, adopting a parallel connection between the first cell core and the second cell core can reduce the risk of a short circuit in a local circuit and can also avoid exposing the electrolyte to a high-pressure environment.

[0009] In some embodiments, the second electrode lead part includes a third tab, the fourth electrode lead part includes a fourth tab, and the third tab has an opposite polarity to the fourth tab. The first cell core and the second cell core each include three tabs.

[0010] In some embodiments, the battery cell further includes a first pole and a second pole, the first pole being electrically connected to the third tab and the second pole being electrically connected to the fourth tab. In some embodiments, the battery cell includes two poles, the two poles being electrically connected to the third tab extending from the second side of the first body portion and the fourth tab extending from the fourth side of the second body portion, respectively.

[0011] In some embodiments, the battery cell further includes a first cover plate and a second cover plate, the case has a first opening and a second opening arranged opposite each other along a first direction, the first cover plate and the second cover plate are sealed to the first opening and the second opening, respectively, the first pole is provided on the first cover plate, and the second pole is provided on the second cover plate.

[0012] In this embodiment, the first opening and the second opening are arranged opposite each other in the first direction, so that the first cover plate sealed in the first opening is close to the third tab and the first pole is provided on the first cover plate, effectively shortening the distance between the third tab and the first pole, facilitating connection between the third tab and the first pole, shortening the length of the third tab, further reducing the space occupied by the third tab, and advantageously reducing the volume of the battery cell.Similarly, the second cover plate sealed in the second opening is close to the fourth tab and the second pole is provided on the second cover plate, effectively shortening the distance between the fourth tab and the second pole, facilitating connection between the fourth tab and the second pole, shortening the length of the fourth tab, further reducing the space occupied by the fourth tab, and advantageously reducing the volume of the battery cell.

[0013] In some embodiments, the first body portion includes a first positive electrode sheet, a first negative electrode sheet, and a first separator, the first positive electrode sheet and the first negative electrode sheet being wound or stacked to form the first body portion, the first separator being formed between the first positive electrode sheet and the first negative electrode sheet, a first end of the first positive electrode sheet extending from the second side surface of the first body portion to form a third tab, and a first end of the first negative electrode sheet being flush with the third side surface of the first body portion, or a first end of the first negative electrode sheet extending from the third side surface of the first body portion to form a third tab, and a first end of the first positive electrode sheet being flush with the third side surface of the first body portion; and / or The second body portion includes a second positive electrode sheet, a second negative electrode sheet, and a second separator, the second positive electrode sheet and the second negative electrode sheet being wound or stacked to form the second body portion, the second separator being provided between the second positive electrode sheet and the second negative electrode sheet, a first end of the second positive electrode sheet extending from a fourth side surface of the second body portion to form a fourth tab, and a first end of the second negative electrode sheet being flush with the fourth side surface of the second body portion, or a first end of the second negative electrode sheet extending from a fourth side surface of the second body portion to form a fourth tab, and a first end of the second positive electrode sheet being flush with the fourth side surface of the second body portion.

[0014] By providing a sheet having the opposite polarity to the third tab flush with the third side, the sheet does not protrude and the length of the sheet is shortened, thereby not only saving material for the sheet but also reducing the work involved in insulating the sheet and eliminating insulating components used to insulate the sheet from other current-carrying components.

[0015] By providing a sheet having the opposite polarity to the fourth tab flush with the fourth side, the sheet does not protrude and the length of the sheet is shortened, which not only saves material for the sheet but also reduces the work involved in insulating the sheet and eliminates insulating components used to insulate the sheet from other current-carrying components.

[0016] In some embodiments, the second electrode lead part includes a third positive electrode tab and a third negative electrode tab, the fourth electrode lead part includes a fourth positive electrode tab and a fourth negative electrode tab, and the first cell core and the second cell core each include four tabs.

[0017] In some embodiments, the battery cell further includes a first pole, a second pole, a third pole, and a fourth pole, where the first pole is electrically connected to the third positive electrode tab, the third pole is electrically connected to the third negative electrode tab, the second pole is electrically connected to the fourth positive electrode tab, and the fourth pole is electrically connected to the fourth negative electrode tab. In some embodiments, the battery cell includes four poles, where the four poles are electrically connected to two tabs extending from the second side of the first body portion and two tabs extending from the fourth side of the second body portion, respectively. Providing four poles effectively improves the current carrying capacity of the cell core.

[0018] In some embodiments, the battery cell further includes a first cover plate and a second cover plate, the case has a first opening and a second opening arranged opposite each other along a first direction, the first cover plate and the second cover plate are sealed to the first opening and the second opening, respectively, the first pole and the third pole are both provided on the first cover plate, and the second pole and the fourth pole are both provided on the second cover plate.

[0019] In this embodiment, the first opening and the second opening are arranged opposite each other in the first direction. Therefore, the first cover plate sealed in the first opening is adjacent to the third positive electrode tab and the third negative electrode tab. Furthermore, the first pole and the third pole are both provided on the first cover plate. This effectively reduces the distance between the first pole and the third positive electrode tab and the distance between the third pole and the third negative electrode tab, facilitating the connection between the first pole and the third positive electrode tab and the connection between the third pole and the third negative electrode tab. This shortens the lengths of the third positive electrode tab and the third negative electrode tab, further reducing the space occupied by the third positive electrode tab and the third negative electrode tab, and is also advantageous for reducing the volume of the battery cell. Similarly, because the second cover plate sealed in the second opening is close to the fourth positive electrode tab and the fourth negative electrode tab, and the second pole and the fourth pole are provided on the second cover plate, the distance between the second pole and the fourth positive electrode tab and the distance between the fourth pole and the fourth negative electrode tab can be effectively shortened, facilitating the connection between the second pole and the fourth positive electrode tab and the connection between the fourth pole and the fourth negative electrode tab. This shortens the lengths of the fourth positive electrode tab and the fourth negative electrode tab, further reducing the space occupied by the fourth positive electrode tab and the fourth negative electrode tab, and is also advantageous for reducing the volume of the battery cell.

[0020] In some embodiments, the longitudinal direction of the first cell core is parallel to the first direction, and the longitudinal direction of the second cell core is parallel to the first direction. By arranging the first cell core and the second cell core in this manner, the first cell core and the second cell core are arranged in their longitudinal directions, and the electrode lead parts extending from both ends of the first cell core and the second cell core can be located on the shorter sides of the cell cores, thereby effectively reducing the volume of the battery cell.

[0021] In some embodiments, the first electrode lead part includes a first connection surface inclined with respect to the first direction, the third electrode lead part includes a second connection surface inclined with respect to the first direction, and the first electrode lead part and the third electrode lead part are electrically connected via the first connection surface and the second connection surface.

[0022] By providing a first connection surface inclined with respect to the first direction and a second connection surface inclined with respect to the first direction, and electrically connecting the first electrode lead part and the third electrode lead part via the first connection surface and the second connection surface, part of the pressing force that brings the first cell core and the second cell core closer to each other is resolved in a direction perpendicular to the first direction, thereby mitigating the extrusion impact on the first electrode lead part and the third electrode lead part and extending the service life of the first cell core and the second cell core.

[0023] Furthermore, by arranging the first connection surface and the second connection surface so as to be inclined with respect to the first direction, the lengths of the first electrode lead part and the third electrode lead part along the first direction are shortened, thereby further reducing the space occupied by the first electrode lead part and the third electrode lead part, thereby achieving the objective of reducing the volume of the battery cell.

[0024] In some embodiments, the first connection surface is planar and perpendicular to the first direction, and / or the second connection surface is planar and perpendicular to the first direction. By arranging the first connection surface and the second connection surface on a plane perpendicular to the first direction, the first connection surface and the second connection surface can withstand pressing forces, greatly mitigating impacts on the first electrode lead part and the third electrode lead part, extending the service life of the first cell core and the second cell core, greatly reducing the space occupied by the first electrode lead part and the third electrode lead part, reducing the volume of the battery cell, and improving the energy density of the battery cell.

[0025] In some embodiments, the battery cell further includes an adapter sheet, which is connected between the first connection surface and the second connection surface. By providing the adapter sheet between the first connection surface and the second connection surface, the compression resistance ability of the first cell core and the second cell core can be improved and the service life of the first cell core and the second cell core can be further extended. By providing the adapter sheet, the risk of the first electrode lead part and the third electrode lead part being inserted into each other when subjected to compression can be reduced.

[0026] In some embodiments, the adapter sheet includes a compressible portion. The compressible portion has a deformable ability, and the deformation of the compressible portion relieves the pressing force. The compressible portion may include an elastic portion or a grooved part. The elastic portion may be a spring or a rubber pad, etc.

[0027] In some embodiments, the adapter sheet includes a first support portion and a second support portion connected to each other, the first support portion being supported on the first connection surface and the second support portion being supported on the second connection surface, and a groove being provided between the first support portion and the second support portion. The provision of the groove gives the adapter sheet compressibility, and when a pressing force is applied by the first support portion or the second support portion, the presence of the groove causes the first support portion and the second support portion to incline toward each other and absorb a portion of the pressing force, thereby reducing the impact on the first electrode lead part and the third electrode lead part and effectively protecting the first cell core and the second cell core.

[0028] In some embodiments, the first support portion includes a first support surface that mates with the first connecting surface, and the second support portion includes a second support surface that mates with the second connecting surface. By providing the first support surface that mates with the first connecting surface and the second support surface that mates with the second connecting surface, it is possible to improve the support stability of the first support portion and the second support portion relative to the first connecting surface and the second connecting surface, respectively.

[0029] In some embodiments, the first electrode lead part further includes a first connecting part extending along the first direction, the third electrode lead part further includes a second connecting part extending along the first direction, the adapter sheet includes a third supporting part connected to the first supporting part and a fourth supporting part connected to the second supporting part, the third supporting part being used to support the first connecting part, and the fourth supporting part being used to support the second connecting part. By providing the third supporting part and the fourth supporting part, the support ability of the adapter sheet for the first electrode lead part and the third electrode lead part can be increased, the connection between the first electrode lead part and the third electrode lead part can be strengthened, and the pressure resistance ability of the first electrode lead part and the third electrode lead part can be improved.

[0030] In a second aspect, the present application provides a battery including the battery cell of the above embodiment.

[0031] In a third aspect, the present application provides an electric device, the electric device including a battery cell and / or a battery according to any of the above embodiments for supplying electric energy to the electric device.

[0032] The above description is merely a summary of the technical solution of the present application. In order to more clearly understand the technical means of the present application, and to facilitate understanding of the above-mentioned and other objects, features and advantages of the present application, specific embodiments of the present application are given below. [Brief explanation of the drawings]

[0033] In order to more clearly explain the technical solutions of the embodiments of the present application, the drawings used in the embodiments of the present application will be briefly introduced below. It is obvious that the drawings described below are only some embodiments of the present application, and those skilled in the art can also obtain other drawings according to the drawings without making creative efforts.

[0034] [Figure 1] 1A-1C are structural schematic diagrams of some embodiments of electrical devices disclosed herein. [Figure 2]1A to 1C are structural schematic diagrams of some embodiments of the battery disclosed herein. [Figure 3] 1A-1C are explosion diagrams of some embodiments of battery cells disclosed herein. [Figure 4] 1A to 1C are structural schematic diagrams of some embodiments of battery cells disclosed herein. [Figure 5] 1A-1C are front views of some embodiments of battery cells disclosed herein. [Figure 6] 1A-1C are top views of some embodiments of battery cells disclosed herein. [Figure 7] FIG. 7 is an enlarged view of a portion indicated by the symbol A in FIG. 6. [Figure 8] 1A-1C are top views of some other embodiments of the battery cells disclosed herein. [Figure 9] FIG. 9 is an enlarged view of a portion indicated by the symbol B in FIG. 8. [Figure 10] 2 is a structural schematic diagram of a first cell core in some embodiments of a battery cell disclosed herein. FIG. [Figure 11] FIG. 2 is a structural schematic diagram of a second cell core in some embodiments of the battery cell disclosed herein. [Figure 12] 10A-10C are explosion diagrams of some other embodiments of the battery cells disclosed herein. [Figure 13] 1A to 1C are structural schematic diagrams of several other embodiments of the battery cells disclosed in the present application. [Figure 14] 10A-10C are front views of some other embodiments of the battery cells disclosed herein.

[0035] In the drawings, the drawings are not drawn to scale. [Explanation of symbols]

[0036] 1000-vehicle, 100-battery, 200-controller, 300-motor,

[0037] 10a—housing, 101a—first cover, 102a—second cover, 20a—battery cell,

[0038] 1 - case, 11 - first opening, 12 - second opening,

[0039] 2—first cell core, 21—first main body portion, 2a—first electrode lead part, 2b—second electrode lead part, 22—first positive electrode tab, 221—first connection surface, 222—first connection part, 23—first negative electrode tab, 24—third tab, 25—third positive electrode tab, 26—third negative electrode tab,

[0040] 3—second cell core, 31—second main body portion, 3a—third electrode lead part, 3b—fourth electrode lead part, 32—second positive electrode tab, 321—second connection surface, 322—second connection part, 33—second negative electrode tab, 34—fourth tab, 35—fourth positive electrode tab, 36—fourth negative electrode tab,

[0041] 4 - first cover plate, 5 - second cover plate, 61 - first pole, 62 - third pole, 71 - second pole, 72 - fourth pole, 8 - bracket, 9 - explosion-proof valve, 9a - patch,

[0042] 10 - adapter seat, 101 - first support, 101A - first support surface, 102 - second support, 102A - second support surface, 103 - third support, 104 - fourth support, 105 - groove,

[0043] x - first direction, S1 - first side, S2 - second side, S3 - third side, S4 - fourth side. DETAILED DESCRIPTION OF THE INVENTION

[0044] Hereinafter, the embodiments of the technical solution of the present application will be described in detail with appropriate reference to the drawings. The following embodiments are only used to further explain the technical solution of the present application, and are merely examples, and do not limit the protection scope of the present application.

[0045] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains. The terms used herein are for the purpose of describing specific examples only and are not intended to limit the present application. The terms "including" and "having" and any variations thereof in the specification, claims, and brief description of the drawings of this application are intended to cover a non-exclusive inclusion.

[0046] In describing the embodiments of the present application, technical terms such as "first" and "second" are used only to distinguish between different objects and should not be understood as indicating or implying relative importance, or as implying the quantity, specific order, or hierarchical relationship of the technical features shown. Furthermore, the term "orthogonal" does not refer to orthogonal in the strict sense, but rather to orthogonal within a margin of error. The term "parallel" does not refer to parallel in the strict sense, but rather to parallel within a margin of error.

[0047] As used herein, the term "embodiment" means that any combination of specific features, structures, or characteristics described in the embodiment may be included in at least one embodiment of the present application. Appearances of the term in various places in the present specification do not necessarily refer to the same embodiment, nor do they imply mutually exclusive, independent, or alternative embodiments with other embodiments. Those skilled in the art will understand, explicitly or implicitly, that the embodiments described herein can be combined with other embodiments.

[0048] In the description of the embodiments of the present application, the term "and / or" merely describes the relationship between related objects, and means that there are three possible relationships. For example, "A and / or B" can mean just A, both A and B, or just B. In addition, " / " in the text generally indicates that the related objects before and after it have an "or" relationship.

[0049] In the description of the examples of the present application, the term "plurality" refers to two or more unless otherwise clearly limited. Similarly, unless otherwise clearly limited, "multiple groups" refers to two or more groups, and "plurality" refers to two or more sheets.

[0050] In describing the examples of the present application, the orientations and positional relationships indicated by technical terms such as "center," "longitudinal," "lateral," "length," "width," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "upper," "clockwise," "counterclockwise," "axial direction," "radial," and "circumferential" are based on the orientations and positional relationships in the drawings, and are intended merely to facilitate and simplify the description of the embodiments of the present application. They do not indicate or imply that the devices or elements shown must have a specific orientation or be configured and operated in a specific orientation, and therefore should not be construed as limiting the examples of the present application.

[0051] In the description of the embodiments of the present application, unless otherwise clearly defined or limited, the technical terms "attached," "connected," "connected," "fixed," etc. should be understood in a broad sense. For example, they may refer to a fixed connection, a detachable connection, or integral molding, a mechanical connection, an electrical connection, a direct connection, an indirect connection via an intermediate medium, an internal communication between the two elements, or an interactive relationship between the two elements. Those skilled in the art will be able to understand the specific meanings of these terms described in the embodiments of the present application depending on the specific circumstances.

[0052] At present, in view of the development of the market situation, the application of power batteries is becoming more and more widespread. Power batteries are not only used in energy storage and power generation systems such as hydroelectric power plants, thermal power plants, wind power plants, and solar power plants, but also in many fields such as electric mobile tools such as electric bicycles, electric motorcycles, and electric cars, military equipment, aerospace, etc. With the continuous expansion of the application fields of power batteries, their market demand is also expanding.

[0053] As the popularity of power batteries continues to grow, users are placing higher demands on the capacity of power batteries. The inventors of the present application have noticed that in order to meet the gradually increasing capacity demand, many designers are choosing to increase the length of the cell core.

[0054] However, the inventors of the present invention have found through their research that the winding manufacturing process of a long cell core is prone to the problem of wrinkles occurring in the sheet, which affects the production rate.

[0055] To solve the problem of sheet wrinkles, the inventors came up with the idea of ​​placing multiple cell cores of standard lengths within a single battery cell. This not only avoids the problem of sheet wrinkles that tend to occur during the winding manufacturing process of long cell cores, but also achieves the goal of increasing the number of batteries and thereby increasing battery capacity. Furthermore, compared to the idea of ​​placing a case and electrical connection components outside each cell core of standard lengths, placing multiple cell cores within the same case effectively saves part of the assembly process and some of the electrical connection components, thereby significantly reducing costs.

[0056] Furthermore, the inventors of the present application realized that providing multiple cell cores in the same case would inevitably increase the volume of the case and further increase the space occupied by the battery. In order to make this as small as possible, the inventors proposed arranging two cell cores in a first direction, extending electrode lead parts from opposite side surfaces of the two cell cores, respectively, achieving electrical connection between the two cell cores through the electrical connection between the two electrode lead parts, and simultaneously extending electrode lead parts from side surfaces of the two cell cores that are spaced apart from each other to connect the two electrodes of the corresponding battery cell. In this way, the connection between the two cell cores and the electrode connection parts of the battery cell are both arranged in the first direction, optimizing the internal structural layout of the battery cell and reducing the volume of the battery cell.

[0057] Based on the above-mentioned concept, the inventors of the present application have achieved the objective of reducing the volume of the battery cell by improving the structure of the battery cell.

[0058] The present embodiment provides a battery including a battery cell. The battery may be used in, but is not limited to, an electric device such as a vehicle, a ship, or an aircraft. The battery cell, battery, etc. disclosed herein may be used to configure a power supply system for the electric device.

[0059] An embodiment of the present application provides an electric device that uses a battery as a power source, the battery being configured to supply electric energy to the electric device. The electric device may be, but is not limited to, a mobile phone, a portable device, a laptop computer, a battery car, an electric vehicle, a boat, a spacecraft, an electric toy, an electric tool, etc. For example, the spacecraft may include an airplane, a rocket, a space shuttle, a spaceship, etc. The electric toy may include, for example, a game console, an electric toy car, an electric toy boat, an electric toy airplane, or other stationary or mobile electric toy. The electric tool may include a metal cutting power tool such as a drill, an electric grinder, an electric wrench, an electric screwdriver, an electric hammer, an impact drill, a concrete vibrator, an electric planer, a grinding power tool, an assembly power tool, and a railroad power tool.

[0060] In the following embodiments, for convenience of explanation, an example will be described in which the electrical device in some embodiments of the present application is a vehicle 1000.

[0061] Referring to FIG. 1, FIG. 1 is a structural schematic diagram of a vehicle 1000 provided in some embodiments of the present application. The vehicle 1000 may be a gasoline-powered vehicle, a natural gas-powered vehicle, or a new energy vehicle. The new energy vehicle may be a pure electric vehicle, a hybrid vehicle, or a range-extender electric vehicle, etc. A battery 100 is provided inside the vehicle 1000, and may be provided at the bottom, head, or rear of the vehicle 1000. The battery 100 can be used to power the vehicle 1000, for example, as an operating power source for the vehicle 1000. The vehicle 1000 may further include a controller 200 and a motor 300. The battery 100 is used to supply electrical energy to the motor 300 and other components of the vehicle, and the controller 200 is used to control the operation of the motor 300 to meet operating power needs, for example, when starting, navigating, or driving the vehicle 1000.

[0062] In some embodiments of the present application, the battery 100 can provide not only the operating power source for the vehicle 1000, but also the driving power for the vehicle 1000, as an alternative or partial alternative to gasoline or natural gas.

[0063] Referring to FIG. 2, FIG. 2 is an explosion diagram of a battery 100 provided in some embodiments of the present application. The battery 100 includes a housing 10a and a battery cell 20a, and the battery cell 20a is housed within the housing 10a. The housing 10a is used to provide a housing space for the battery cell 20a, and the housing 10a may adopt various structures. In some embodiments, the housing 10a includes a first cover 101a and a second cover 102a, which are fitted to each other and together define a housing space for housing the battery cell 20a. The second cover 102a may have a hollow structure with an opening on one side, and the first cover 101a may have a plate-like structure, with the first cover 101a fitting to the opening side of the second cover 102a so that the first cover 101a and the second cover 102a jointly define a storage space, or the first cover 101a and the second cover 102a may both have a hollow structure with an opening on one side, with the opening side of the first cover 101a fitting to the opening side of the second cover 102a. Of course, the housing 10a consisting of the first cover 101a and the second cover 102a may have various shapes, such as a cylinder or a rectangular parallelepiped.

[0064] The battery 100 may include multiple battery cells 20a, and the multiple battery cells 20a may be connected in series, parallel, or series-parallel. A series-parallel connection refers to the fact that some of the multiple battery cells 20a are connected in series and others are connected in parallel. The multiple battery cells 20a may be connected in series, parallel, or series-parallel, and then the entire battery cell set 20a may be housed within the housing 10a. Of course, the battery 100 may also be formed by first connecting multiple battery cells 20a in series, parallel, or series-parallel to form a battery module, and then connecting multiple battery modules in series, parallel, or series-parallel to form the entire battery set and housed within the housing 10a. The battery 100 may also include other structures, such as bus components for electrically connecting the multiple battery cells 20a.

[0065] Among these, the battery cell 20a is the smallest unit constituting a battery. The battery cell 20a may be a lithium-ion secondary battery, a lithium-ion primary battery, a lithium-sulfur battery, a sodium-lithium ion battery, a sodium ion battery, or a magnesium ion battery, etc., but is not limited to these in the embodiments of the present disclosure. The battery cell may be cylindrical, flat, rectangular, or have other shapes, etc., but is not limited to these in the embodiments of the present disclosure. Battery cells are generally classified into three types depending on the packaging method: cylindrical battery cells, prismatic battery cells, and soft-pack battery cells, but are not limited to these in the embodiments of the present disclosure.

[0066] 3 to 6 are an exploded view, a schematic diagram of a three-dimensional structure, a front view, and a top view, respectively, of a battery cell 20a provided in some embodiments of the present application. In some embodiments of the present application, the battery cell 20a includes a case 1, a first cell core 2, and a second cell core 3, and the first cell core 2 and the second cell core 3 are both provided inside the case 1.

[0067] The case 1 is a component that provides a storage space for accommodating the first cell core 2, the second cell core 3, the electrolyte, and other components. The case 1 may have various shapes and sizes, such as a rectangular parallelepiped, cylindrical, or hexagonal shape. Specifically, the shape of the case 1 can be determined depending on the specific shapes and sizes of the first cell core 2 and the second cell core 3. The material of the case 1 may be selected from metal materials such as copper, iron, aluminum, stainless steel, and aluminum alloys, or non-metal materials such as plastics.

[0068] As shown in Figure 5, the first cell core 2 is provided inside the case 1, and the first cell core 2 includes a first main body portion 21, a first electrode lead part 2a and a second electrode lead part 2b, the first electrode lead part 2a extending from a first side surface S1 of the first main body portion 21, and the second electrode lead part 2b extending from a second side surface S2 of the first main body portion 21, and the first side surface S1 and the second side surface S2 are two side surfaces of the first main body portion 21 arranged opposite each other.

[0069] The second cell core 3 is provided inside the case 1, and includes a second main body portion 31, a third electrode lead part 3a, and a fourth electrode lead part 3b, the third electrode lead part 3a extending from a third side surface S3 of the second main body portion 31, the fourth electrode lead part 3b extending from a fourth side surface S4 of the second main body portion 31, and the third side surface S3 and the fourth side surface S4 being two side surfaces of the second main body portion 31 arranged opposite each other.

[0070] Among them, the first cell core 2 and the second cell core 3 are arranged along the first direction x, and the first side surface S1 and the third side surface S3 are arranged adjacent to and opposite each other, and the first electrode lead part 2a is electrically connected to the third electrode lead part 3a.

[0071] As shown in Figure 5, the direction indicated by the double-arrowed indicator line is the first direction x. In the battery cell embodiment provided herein, the first cell core 2 and the second cell core 3 are arranged along the first direction x, and the center lines of the first cell core 2 and the second cell core 3 are collinear and parallel to the first direction x. The first side surface S1 of the first cell core 2 and the third side surface S3 of the second cell core 3 are adjacent to and opposed to each other, so that the first electrode lead part 2a located on the first side surface S1 and the third electrode lead part 3a located on the third side surface S3 are adjacent to each other, and electrical connection between the first electrode lead part 2a and the third electrode lead part 3a is achieved between the first cell core 2 and the second cell core 3. At the same time, the second side surface S2 of the first cell core 2 and the fourth side surface S4 of the second cell core 3 are spaced apart from each other, the second electrode lead part 2b extends from the second side surface S2, and the fourth electrode lead part 3b extends from the fourth side surface S4, and the second electrode lead part 2b and the fourth electrode lead part 3b may respectively be two electrodes of the battery cell. As a result, the connection between the first cell core 2 and the second cell core 3 and the two electrode connection parts of the battery cell are all arranged in the first direction x, which is advantageous for optimizing the internal structural layout of the battery cell and for reducing the volume of the battery cell.

[0072] In some embodiments, three or more cell cores may be provided in the case 1, and the three or more cell cores are arranged along the first direction x.

[0073] In some embodiments, the first cell core 2 and the second cell core 3 may be connected in series, parallel, or series-parallel.

[0074] In some embodiments, the first electrode lead part 2a includes a first positive electrode tab 22 and a first negative electrode tab 23, and the third electrode lead part 3a includes a second positive electrode tab 32 and a second negative electrode tab 33, with the first positive electrode tab 22 electrically connected to the second positive electrode tab 32 and the first negative electrode tab 23 electrically connected to the second negative electrode tab 33. In this manner, a parallel connection is achieved between the first cell core 2 and the second cell core 3. Compared to a series connection, adopting a parallel connection between the first cell core 2 and the second cell core 3 can reduce the risk of a short circuit in the local circuit and also avoid exposing the electrolyte to a high-pressure environment.

[0075] In some embodiments, the second electrode lead part 2b includes a third tab 24, and the fourth electrode lead part 3b includes a fourth tab 34, and the third tab 24 has an opposite polarity to the fourth tab 34. The third tab 24 is a positive electrode tab and the fourth tab 34 is a negative electrode tab, or the third tab 24 is a negative electrode tab and the fourth tab 34 is a positive electrode tab.

[0076] 3 to 9, the first cell core 2 and the second cell core 3 each include three tabs. Two tabs extend from the first side surface S1 of the first main body portion 21, which are the first positive electrode tab 22 and the first negative electrode tab 23, respectively. One tab, i.e., the third tab 24, extends from the second side surface S2 of the first main body portion 21. Two tabs extend from the third side surface S3 of the second main body portion 31, which are the second positive electrode tab 32 and the second negative electrode tab 33, respectively. One tab, i.e., the fourth tab 34, extends from the fourth side surface S4 of the second main body portion 31. The first side S1 of the first main body portion 21 and the third side S3 of the second main body portion 31 are adjacent and arranged opposite each other, and the first side S1 and the third side S3 are both located between the second side S2 of the first main body portion 21 and the fourth side S4 of the second main body portion 31.

[0077] In some embodiments, the battery cell further includes a first pole 61 and a second pole 71, where the first pole 61 is electrically connected to the third tab 24 and the second pole 71 is electrically connected to the fourth tab 34. In some embodiments, the battery cell includes two poles, where the two poles are electrically connected to the third tab 24 extending from the second side surface S2 of the first body portion 21 and the fourth tab 34 extending from the fourth side surface S4 of the second body portion 31, respectively.

[0078] In some embodiments, the battery cell further includes a first cover plate 4 and a second cover plate 5, the case 1 is provided with a first opening 11 and a second opening 12 arranged opposite each other in a first direction x, the first cover plate 4 and the second cover plate 5 are sealed to the first opening 11 and the second opening 12, respectively, the first pole 61 is provided on the first cover plate 4, and the second pole 71 is provided on the second cover plate 5.

[0079] In the present embodiment, the first opening 11 and the second opening 12 are arranged opposite each other along the first direction x. Therefore, the first cover plate 4 sealed in the first opening 11 is close to the third tab 24, and the first pole 61 is provided on the first cover plate 4. This effectively reduces the distance between the third tab 24 and the first pole 61, facilitating the connection between the third tab 24 and the first pole 61. This shortens the length of the third tab, further reducing the space occupied by the third tab, and is advantageous for reducing the volume of the battery cell. Similarly, since the second cover plate 5 sealed in the second opening 12 is close to the fourth tab 34 and the second pole 71 is provided on the second cover plate 5, the distance between the fourth tab 34 and the second pole 71 can be effectively shortened, facilitating the connection between the fourth tab 34 and the second pole 71, shortening the length of the fourth tab 34 and further reducing the space occupied by the fourth tab 34, which is also advantageous for reducing the volume of the battery cell.

[0080] In some embodiments, the first body portion 21 includes a first positive electrode sheet, a first negative electrode sheet, and a first separator, and the first positive electrode sheet and the first negative electrode sheet are wound or stacked to form the first body portion 21, and the first separator is provided between the first positive electrode sheet and the first negative electrode sheet, and when the third tab 24 is a positive electrode tab, a first end of the first positive electrode sheet extends from the second side surface S2 of the first body portion 21 to form the third tab 24, and a first end of the first negative electrode sheet is flush with the third side surface S3 of the first body portion 21, and when the third tab 24 is a negative electrode tab, a first end of the first negative electrode sheet extends from the third side surface S3 of the first body portion 21 to form the third tab 24, and a first end of the first positive electrode sheet is flush with the third side surface S3 of the first body portion 21.

[0081] By providing a sheet having the opposite polarity to the third tab 24 flush with the third side S3, the sheet does not extend and the length of the sheet is shortened, which not only saves material for the sheet but also reduces the work involved in insulating the sheet and eliminates insulating components used to insulate the sheet from other current-carrying components.

[0082] As shown in FIG. 10, the third tab 24 is a negative electrode tab, the length of the first positive electrode sheet is d1, the length of the first negative electrode sheet is d2, and d2>d1.

[0083] In some embodiments, the second body portion 31 includes a second positive electrode sheet, a second negative electrode sheet, and a second separator, and the second positive electrode sheet and the second negative electrode sheet are wound or stacked to form the second body portion 31, and the second separator is provided between the second positive electrode sheet and the second negative electrode sheet. When the fourth tab 34 is a positive electrode tab, a first end of the second positive electrode sheet extends from the fourth side surface S4 of the second body portion 31 to form the fourth tab 34, and a first end of the second negative electrode sheet is flush with the fourth side surface S4 of the second body portion 31. When the fourth tab 34 is a negative electrode tab, a first end of the second negative electrode sheet extends from the fourth side surface S4 of the second body portion 31 to form the fourth tab 34, and a first end of the second positive electrode sheet is flush with the fourth side surface S4 of the second body portion 31.

[0084] By providing a sheet having the opposite polarity to the fourth tab 34 flush with the fourth side S4, the sheet does not protrude and the length of the sheet is shortened, which not only saves material for the sheet but also reduces the work involved in insulating the sheet and eliminates insulating components used to insulate the sheet from other current-carrying components.

[0085] As shown in FIG. 11, the fourth tab 34 is a positive electrode tab, the length of the second positive electrode sheet is d3, and the length of the second negative electrode sheet is d4, where d3>d4.

[0086] In some embodiments, the second electrode lead part 2b includes a third positive electrode tab 25 and a third negative electrode tab 26, and the fourth electrode lead part 3b includes a fourth positive electrode tab 35 and a fourth negative electrode tab 36.

[0087] 12 to 14, the first cell core 2 and the second cell core 3 each include four tabs. Two tabs extend from the first side surface S1 of the first main body portion 21 and are a first positive electrode tab 22 and a first negative electrode tab 23, respectively. Two tabs extend from the second side surface S2 of the first main body portion 21 and are a third positive electrode tab 25 and a third negative electrode tab 26, respectively. Two tabs extend from the third side surface S3 of the second main body portion 31 and are a second positive electrode tab 32 and a second negative electrode tab 33, respectively. Two tabs also extend from the fourth side surface S4 of the second main body portion 31 and are a fourth positive electrode tab 35 and a fourth negative electrode tab 36, respectively. The first side S1 of the first main body portion 21 and the third side S3 of the second main body portion 31 are adjacent and arranged opposite each other, and the first side S1 and the third side S3 are both located between the second side S2 of the first main body portion 21 and the fourth side S4 of the second main body portion 31.

[0088] In some embodiments, the battery cell further includes a first electrode pole 61, a second electrode pole 71, a third electrode pole 62, and a fourth electrode pole 72, where the first electrode pole 61 is electrically connected to the third positive electrode tab 25, the third electrode pole 62 is electrically connected to the third negative electrode tab 26, the second electrode pole 71 is electrically connected to the fourth positive electrode tab 35, and the fourth electrode pole 72 is electrically connected to the fourth negative electrode tab 36. In these embodiments, the battery cell includes four electrode poles, which are electrically connected to two tabs extending from the second side surface S2 of the first body portion 21 and two tabs extending from the fourth side surface S4 of the second body portion 31, respectively. The provision of four electrode poles can effectively improve the current carrying capacity of the cell core.

[0089] In some embodiments, the battery cell further includes a first cover plate 4 and a second cover plate 5, the case 1 is provided with a first opening 11 and a second opening 12 arranged opposite each other along a first direction x, the first cover plate 4 and the second cover plate 5 are sealed to the first opening 11 and the second opening 12, respectively, the first pole 61 and the third pole 62 are both provided on the first cover plate 4, and the second pole 71 and the fourth pole 72 are both provided on the second cover plate 5.

[0090] In this embodiment, the first opening 11 and the second opening 12 are arranged opposite each other in the first direction x. Therefore, the first cover plate 4 sealed in the first opening 11 is close to the third positive electrode tab 25 and the third negative electrode tab 26. Furthermore, the first electrode post 61 and the third electrode post 62 are both provided on the first cover plate 4. This effectively reduces the distance between the first electrode post 61 and the third positive electrode tab 25 and the distance between the third electrode post 62 and the third negative electrode tab 26. This facilitates the connection between the first electrode post 61 and the third positive electrode tab 25 and the connection between the third electrode post 62 and the third negative electrode tab 26. This shortens the lengths of the third positive electrode tab 25 and the third negative electrode tab 26, further reducing the space occupied by the third positive electrode tab 25 and the third negative electrode tab 26, which is also advantageous for reducing the volume of the battery cell. Similarly, because the second cover plate 5, which seals the second opening 12, is close to the fourth positive electrode tab 35 and the fourth negative electrode tab 36, and the second electrode post 71 and the fourth electrode post 72 are provided on the second cover plate 5, the distance between the second electrode post 71 and the fourth positive electrode tab 35 and the distance between the fourth electrode post 72 and the fourth negative electrode tab 36 can be effectively shortened, facilitating the connection between the second electrode post 71 and the fourth positive electrode tab 35 and the connection between the fourth electrode post 72 and the fourth negative electrode tab 36. This shortens the lengths of the fourth positive electrode tab 35 and the fourth negative electrode tab 36, further reducing the space occupied by the fourth positive electrode tab 35 and the fourth negative electrode tab 36, and is also advantageous for reducing the volume of the battery cell.

[0091] In some embodiments, the case 1, the first cover plate 4, and the second cover plate 5 may be separate components, or the case 1, the first cover plate 4, and the second cover plate 5 may be integrated. Specifically, the first cover plate 4 and the second cover plate 5 each form a common connection surface with the case before other components are placed inside the case. When it is necessary to seal the case 1, the first cover plate 4 and the second cover plate 5 are mated to the case 1, and the case 1 is sealed together with the first cover plate 4 and the second cover plate 5.

[0092] The case 1 is an assembly that, in combination with the first cover plate 4 and the second cover plate 5, forms the internal environment of the battery cell 20a. The first cover plate 4 and the second cover plate 5 are components that cover the opening of the case 1 and isolate the internal environment of the battery cell 20a from the external environment. The shapes of the first cover plate 4 and the second cover plate 5 can be adapted to the shape of the case 1 to fit the case 1, but are not limited thereto. Optionally, the first cover plate 4 and the second cover plate 5 may be made of a material with a certain degree of hardness and strength. In this way, the first cover plate 4 and the second cover plate 5 are less likely to deform when they expand under pressure, and the battery cell 20a has higher structural strength and improved safety.

[0093] In some embodiments, the first cover plate 4 and the second cover plate 5 may also be provided with a pressure relief mechanism for releasing the internal pressure of the battery cell 20a when the internal pressure or temperature reaches a threshold value.

[0094] In some embodiments, the longitudinal direction of the first cell core 2 is parallel to the first direction x, and the longitudinal direction of the second cell core 3 is parallel to the first direction x. By arranging them in this manner, the first cell core 2 and the second cell core 3 are arranged in their longitudinal directions, and the electrode lead parts extending from both ends of the first cell core 2 and the second cell core 3 can be located on the shorter sides of the cell cores, which can effectively reduce the volume of the battery cell.

[0095] 7, in some embodiments, the first electrode lead part 2a includes a first connection surface 221 inclined with respect to the first direction x, and the third electrode lead part 3a includes a second connection surface 321 inclined with respect to the first direction x, and the first electrode lead part 2a and the third electrode lead part 3a are electrically connected via the first connection surface 221 and the second connection surface 321. Here, "inclined" means provided at a certain angle with respect to the first direction x.

[0096] By providing a first connection surface 221 inclined with respect to the first direction x and a second connection surface 321 inclined with respect to the first direction x, and electrically connecting the first electrode lead part 2a and the third electrode lead part 3a via the first connection surface 221 and the second connection surface 321, part of the pressing force that brings the first cell core 2 and the second cell core 3 closer to each other is resolved in a direction perpendicular to the first direction x, thereby mitigating the extrusion impact on the first electrode lead part 2a and the third electrode lead part 3a and extending the service life of the first cell core 2 and the second cell core 3.

[0097] Furthermore, by providing the first connection surface 221 and the second connection surface 321 so as to be inclined with respect to the first direction x, the lengths of the first electrode lead part 2a and the third electrode lead part 3a along the first direction x are shortened, thereby further reducing the space occupied by the first electrode lead part 2a and the third electrode lead part 3a, and achieving the objective of reducing the volume of the battery cell.

[0098] In some embodiments, the first connection surface 221 is planar and perpendicular to the first direction x, and / or the second connection surface 321 is planar and perpendicular to the first direction x. By arranging the first connection surface 221 and the second connection surface 321 in a plane perpendicular to the first direction x, the pressing force can be withstood by the first connection surface 221 and the second connection surface 321, which greatly reduces the impact on the first electrode lead part 2 a and the third electrode lead part 3 a, prolongs the service life of the first cell core 2 and the second cell core 3, greatly reduces the space occupied by the first electrode lead part 2 a and the third electrode lead part 3 a, reduces the volume of the battery cell, and improves the energy density of the battery cell.

[0099] 9, in some embodiments, the battery cell further includes an adapter sheet 10, which is connected between the first connection surface 221 and the second connection surface 321. By providing the adapter sheet 10 between the first connection surface 221 and the second connection surface 321, the compression resistance ability of the first cell core 2 and the second cell core 3 can be improved, and the service life of the first cell core 2 and the second cell core 3 can be further extended. By providing the adapter sheet 10, the risk of the first electrode lead part 2a and the third electrode lead part 3a being inserted into each other when subjected to compression can be reduced.

[0100] In some embodiments, the adapter sheet 10 includes a compressible portion. The compressible portion has a deformable ability, and the deformation of the compressible portion relieves the pressing force. The compressible portion may include an elastic portion or a grooved part. The elastic portion may be a spring or a rubber pad, etc.

[0101] In some embodiments, the adapter sheet 10 includes a first support portion 101 and a second support portion 102 connected to each other, the first support portion 101 being supported by the first connection surface 221, and the second support portion 102 being supported by the second connection surface 321, and a groove 105 being provided between the first support portion 101 and the second support portion 102. By providing the groove 105, the adapter sheet 10 has compressibility, and when a pressing force is applied to the first support portion 101 or the second support portion 102, the presence of the groove 105 causes the first support portion 101 or the second support portion 102 to incline toward each other and absorb part of the pressing force, thereby reducing the impact on the first electrode lead part 2 a and the third electrode lead part 3 a and effectively protecting the first cell core 2 and the second cell core 3.

[0102] In some embodiments, the first support part 101 includes a first support surface 101A that is bonded to the first connecting surface 221, and the second support part 102 includes a second support surface 102A that is bonded to the second connecting surface 321. By providing the first support surface 101A that is bonded to the first connecting surface 221 and the second support surface 102A that is bonded to the second connecting surface 321, it is possible to improve the support stability of the first support part 101 and the second support part 102 with respect to the first connecting surface 221 and the second connecting surface 321, respectively.

[0103] In some embodiments, the first electrode lead part 2a further includes a first connection portion 222 extending along the first direction x, the third electrode lead part 3a further includes a second connection portion 322 extending along the first direction x, the adapter sheet 10 includes a third support portion 103 connected to the first support portion 101 and a fourth support portion 104 connected to the second support portion 102, the third support portion 103 being used to support the first connection portion 222, and the fourth support portion 104 being used to support the second connection portion 322.

[0104] By providing the third support portion 103 and the fourth support portion 104, the support ability of the adapter sheet 10 for the first electrode lead part 2a and the third electrode lead part 3a can be further increased, the connection between the first electrode lead part 2a and the third electrode lead part 3a can be strengthened, and the pressure resistance ability of the first electrode lead part 2a and the third electrode lead part 3a can be improved.

[0105] In some embodiments, the first connection surface 221 is provided on the first positive electrode tab 22, the second connection surface 321 is provided on the second positive electrode tab 32, the first negative electrode tab 23 may include a third connection surface inclined with respect to the first direction x, and the second negative electrode tab 33 may include a fourth connection surface inclined with respect to the first direction x, and the third connection surface is electrically connected to the fourth connection surface.

[0106] In some embodiments, another adapter sheet may be provided between the third and fourth connection surfaces, and the structure of the adapter sheet may be the same as or different from the structure of adapter sheet 10.

[0107] In some embodiments, the battery cell further includes a bracket 8, which is disposed between the first cell core 2 and the second cell core 3. The bracket 8 is used to support the first cell core 2 and the second cell core 3.

[0108] Hereinafter, the structures of several embodiments of the battery cells provided in the present application will be described with reference to FIGS.

[0109] In the embodiment of the battery cell provided in the present application, the battery cell includes a case 1 , and a first cell core 2 and a second cell core 3 provided inside the case 1 .

[0110] The case 1 may have a rectangular parallelepiped shape. The first cell core 2 and the second cell core 3 may also have a rectangular parallelepiped shape.

[0111] The length of the case 1 is longer than the sum of the lengths of the first cell core 2 and the second cell core 3. The first cell core 2 and the second cell core 3 are arranged inside the case 1 along the longitudinal direction. The longitudinal direction of the first cell core 2 and the longitudinal direction of the second cell core 3 are parallel to the longitudinal direction of the case 1.

[0112] A first opening 11 and a second opening 12 are provided at both ends of the case 1, and the plane on which the first opening 11 and the second opening 12 are located are perpendicular to the longitudinal direction of the case 1. The first cover plate 4 is sealed in the first opening 11, and the second cover plate 5 is sealed in the second opening 12.

[0113] A bracket 8 is further provided within the case 1 and is positioned between the first cell core 2 and the second cell core 3. An explosion-proof valve 9 and a patch 9a that is attached to the outside of the explosion-proof valve 9 are provided on the side of the case 1.

[0114] 3 to 9, the first cell core 2 and the second cell core 3 each include three tabs. The first cell core 2 includes a first main body portion 21. Two tabs extend from a first side surface S1 of the first main body portion 21, namely, a first positive electrode tab 22 and a first negative electrode tab 23, and one tab, namely, a third tab 24, extends from a second side surface S2 of the first main body portion 21. The second cell core 3 includes a second main body portion 31. Two tabs extend from a third side surface S3 of the second main body portion 31, namely, a second positive electrode tab 32 and a second negative electrode tab 33, and one tab, namely, a fourth tab 34, extends from a fourth side surface S4 of the second main body portion 31. The first side S1 of the first main body portion 21 and the third side S3 of the second main body portion 31 are adjacent to and arranged opposite each other, and the first side S1 and the third side S3 are both located between the second side S2 of the first main body portion 21 and the fourth side S4 of the second main body portion 31.

[0115] As shown in Figures 3 to 5, the battery cell includes two poles, pole 61 is provided on the first cover plate 4 and is electrically connected to the third tab 24, and second pole 71 is provided on the second cover plate 5 and is electrically connected to the fourth tab 34.

[0116] The first positive electrode tab 22 and the second positive electrode tab 32 are electrically connected, and the first negative electrode tab 23 and the second negative electrode tab 33 are electrically connected.

[0117] The first positive electrode tab 22 and the second positive electrode tab 32 may be directly attached to each other and electrically connected, or may be connected via an adapter sheet 10. The first negative electrode tab 23 and the second negative electrode tab 33 may be directly attached to each other and electrically connected, or may be connected via another adapter sheet 10.

[0118] 6 and 7, the first positive electrode tab 22 includes an L-shaped connection portion, which includes a first connection surface 221 perpendicular to the first direction x. The second positive electrode tab 32 includes an L-shaped connection portion, which includes a second connection surface 321 perpendicular to the first direction x. The first positive electrode tab 22 and the second positive electrode tab 32 are connected by welding the first connection surface 221 and the second connection surface 321. The first connection surface 221 and the second connection surface 321 are attached to each other.

[0119] In the embodiment shown in FIGS. 8 and 9, the adapter sheet 10 is connected between the first connecting surface 221 and the second connecting surface 321 .

[0120] The adapter sheet 10 has an overall "box" shape. The adapter sheet 10 includes a first support portion 101, a second support portion 102, a third support portion 103, and a fourth support portion 104. The first support portion 101 and the second support portion 102 are connected to form a U-shaped structure, and a groove 105 is formed between the first support portion 101 and the second support portion 102. The third support portion 103 is connected to the first support portion 101, and the fourth support portion 104 is connected to the second support portion 102. The first support portion 101 and the second support portion 102 each include a portion perpendicular to the longitudinal direction of the case 1 and a portion parallel to the longitudinal direction of the case 1. The third support portion 103 and the fourth support portion 104 are both parallel to the longitudinal direction of the case 1.

[0121] The first positive electrode tab 22 includes an L-shaped connection portion, which includes a first connection portion 222 parallel to the longitudinal direction of the case 1 and a third connection portion perpendicular to the longitudinal direction of the case 1, and the first connection surface 221 is located at the third connection portion. The second positive electrode tab 32 includes an L-shaped connection portion, which includes a second connection portion 322 parallel to the longitudinal direction of the case 1 and a fourth connection portion perpendicular to the longitudinal direction of the case 1, and the second connection surface 321 is located at the fourth connection portion.

[0122] The first support part 101 is used to support the third connection part, and the first support surface 101A of the first support part 101 is adhered to and welded to the first connection surface 221. The second support part 102 is used to support the fourth connection part, and the second support surface 102A of the second support part 102 is adhered to and welded to the second connection surface 321. The third support part 103 is used to support the first connection part 222, and the fourth support part 104 is used to support the second connection part 322.

[0123] 10, for a first cell core 2 including three tabs, the first body portion 21 includes a first positive electrode sheet, a first negative electrode sheet, and a first separator, the first positive electrode sheet and the first negative electrode sheet are wound or stacked to form the first body portion 21, the first separator is provided between the first positive electrode sheet and the first negative electrode sheet, the third tab 24 is a negative electrode tab, and the first end of the first negative electrode sheet extends from the third side surface S3 of the first body portion 21 to form the third tab 24, and the first end of the first positive electrode sheet is flush with the third side surface S3 of the first body portion 21. The length of the first positive electrode sheet is d1, and the length of the first negative electrode sheet is d2, where d2>d1.

[0124] 11, for the second cell core 3 including three tabs, the second body portion 31 includes a second positive electrode sheet, a second negative electrode sheet, and a second separator, the second positive electrode sheet and the second negative electrode sheet are wound or stacked to form the second body portion 31, the second separator is provided between the second positive electrode sheet and the second negative electrode sheet, the fourth tab 34 is a positive electrode tab, the first end of the second positive electrode sheet extends from the fourth side surface S4 of the second body portion 31 to form the fourth tab 34, and the first end of the second negative electrode sheet is flush with the fourth side surface S4 of the second body portion 31. The length of the second positive electrode sheet is d3, and the length of the second negative electrode sheet is d4, where d3>d4.

[0125] 12 to 14, the first cell core 2 and the second cell core 3 each include four tabs. Two tabs extend from the first side surface S1 of the first main body portion 21, and are a first positive electrode tab 22 and a first negative electrode tab 23, respectively. Two tabs also extend from the second side surface S2 of the first main body portion 21, and are a third positive electrode tab 25 and a third negative electrode tab 26, respectively. Two tabs extend from the third side surface S3 of the second main body portion 31, and are a second positive electrode tab 32 and a second negative electrode tab 33, respectively. Two tabs also extend from the fourth side surface S4 of the second main body portion 31, and are a fourth positive electrode tab 35 and a fourth negative electrode tab 36, respectively.

[0126] In this embodiment, the battery cell includes four poles, with the first pole 61 and the third positive electrode tab 25 electrically connected, the third pole 62 and the third negative electrode tab 26 electrically connected, the second pole 71 and the fourth positive electrode tab 35 electrically connected, and the fourth pole 72 and the fourth negative electrode tab 36 electrically connected. The first pole 61 and the third pole 62 are both mounted on the first cover plate 4, and the second pole 71 and the fourth pole 72 are both mounted on the second cover plate 5. In this embodiment, there are two poles on each side of the battery cell, which provides better current passing capacity.

[0127] Although the present application has been described with reference to preferred embodiments, various modifications may be made and parts may be replaced with equivalents without departing from the scope of the present application. In particular, the technical features mentioned in each embodiment may be combined in any manner unless structural contradictions exist. The present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.

Claims

1. Case (1), a first cell core (2) provided inside the case (1), the first cell core (2) including a first main body portion (21), a first electrode lead part (2a) extending from a first side surface (S1) of the first main body portion (21), and a second electrode lead part (2b) extending from a second side surface (S2) of the first main body portion (21), the first cell core (2) being arranged with the first side surface (S1) and the second side surface (S2) facing each other; a second cell core (3) provided inside the case (1), the second cell core (3) including a second main body portion (31), a third electrode lead part (3a) extending from a third side surface (S3) of the second main body portion (31), and a fourth electrode lead part (3b) extending from a fourth side surface (S4) of the second main body portion (31), the third side surface (S3) and the fourth side surface (S4) being arranged opposite to each other; A battery cell comprising: wherein the first cell core (2) and the second cell core (3) are arranged along a first direction (x), and the first side surface (S1) and the third side surface (S3) are adjacent to and arranged opposite each other, and the first electrode lead part (2a) and the third electrode lead part (3a) are electrically connected; a battery cell in which the first electrode lead part (2a) includes a first connection surface (221) bent and inclined with respect to the first direction (x), the third electrode lead part (3a) includes a second connection surface (321) bent and inclined with respect to the first direction (x), and the first electrode lead part (2a) and the third electrode lead part (3a) are directly bonded together and electrically connected via the first connection surface (221) and the second connection surface (321).

2. Case (1), a first cell core (2) provided inside the case (1), the first cell core (2) including a first main body portion (21), a first electrode lead part (2a) extending from a first side surface (S1) of the first main body portion (21), and a second electrode lead part (2b) extending from a second side surface (S2) of the first main body portion (21), the first cell core (2) being arranged with the first side surface (S1) and the second side surface (S2) facing each other; a second cell core (3) provided inside the case (1), the second cell core (3) including a second main body portion (31), a third electrode lead part (3a) extending from a third side surface (S3) of the second main body portion (31), and a fourth electrode lead part (3b) extending from a fourth side surface (S4) of the second main body portion (31), the third side surface (S3) and the fourth side surface (S4) being arranged opposite to each other; A battery cell comprising: wherein the first cell core (2) and the second cell core (3) are arranged along a first direction (x), and the first side surface (S1) and the third side surface (S3) are adjacent to and arranged opposite each other, and the first electrode lead part (2a) and the third electrode lead part (3a) are electrically connected; the first electrode lead part (2a) includes a first connection surface (221) bent and inclined with respect to the first direction (x), the third electrode lead part (3a) includes a second connection surface (321) bent and inclined with respect to the first direction (x), and the first electrode lead part (2a) and the third electrode lead part (3a) are electrically connected via the first connection surface (221) and the second connection surface (321); The battery cell further includes an adapter sheet (10), the adapter sheet (10) being connected between the first connection surface (221) and the second connection surface (321).

3. 3. The battery cell according to claim 1, wherein the first electrode lead part (2a) includes a first positive electrode tab (22) and a first negative electrode tab (23), the third electrode lead part (3a) includes a second positive electrode tab (32) and a second negative electrode tab (33), the first positive electrode tab (22) and the second positive electrode tab (32) are electrically connected, and the first negative electrode tab (23) and the second negative electrode tab (33) are electrically connected.

4. 3. The battery cell according to claim 1, wherein the second electrode lead part (2b) includes a third tab (24), the fourth electrode lead part (3b) includes a fourth tab (34), and the third tab (24) has an opposite polarity to the fourth tab (34).

5. 5. The battery cell of claim 4, further comprising a first pole (61) and a second pole (71), wherein the first pole (61) is electrically connected to the third tab (24) and the second pole (71) is electrically connected to the fourth tab (34).

6. 6. The battery cell according to claim 5, further comprising a first cover plate (4) and a second cover plate (5), wherein the case (1) is provided with a first opening (11) and a second opening (12) arranged opposite each other along the first direction (x), the first cover plate (4) and the second cover plate (5) are sealed in the first opening (11) and the second opening (12), respectively, the first electrode post (61) is provided on the first cover plate (4), and the second electrode post (71) is provided on the second cover plate (5).

7. The first body portion (21) includes a first positive electrode sheet, a first negative electrode sheet, and a first separator, the first positive electrode sheet and the first negative electrode sheet are wound or stacked to form the first body portion (21), the first separator is provided between the first positive electrode sheet and the first negative electrode sheet, a first end of the first positive electrode sheet extends from a second side surface (S2) of the first body portion (21) to form the third tab (24), and a first end of the first negative electrode sheet is flush with the second side surface (S2) of the first body portion (21), or a first end of the first negative electrode sheet extends from the second side surface (S2) of the first body portion (21) to form the third tab (24), and a first end of the first positive electrode sheet is flush with the second side surface (S2) of the first body portion (21), and / or 5. The battery cell according to claim 4, wherein the second body portion (31) includes a second positive electrode sheet, a second negative electrode sheet, and a second separator, the second positive electrode sheet and the second negative electrode sheet being wound or stacked to form the second body portion (31), the second separator being provided between the second positive electrode sheet and the second negative electrode sheet, a first end of the second positive electrode sheet extending from a fourth side surface (S4) of the second body portion (31) to form the fourth tab (34), and a first end of the second negative electrode sheet being flush with the fourth side surface (S4) of the second body portion (31), or a first end of the second negative electrode sheet extending from the fourth side surface (S4) of the second body portion (31) to form the fourth tab (34), and a first end of the second positive electrode sheet being flush with the fourth side surface (S4) of the second body portion (31).

8. 3. The battery cell according to claim 1, wherein the second electrode lead part (2b) includes a third positive electrode tab (25) and a third negative electrode tab (26), and the fourth electrode lead part (3b) includes a fourth positive electrode tab (35) and a fourth negative electrode tab (36).

9. 9. The battery cell of claim 8, further comprising a first pole (61), a second pole (71), a third pole (62), and a fourth pole (72), wherein the first pole (61) is electrically connected to the third positive electrode tab (25), the third pole (62) is electrically connected to the third negative electrode tab (26), the second pole (71) is electrically connected to the fourth positive electrode tab (35), and the fourth pole (72) is electrically connected to the fourth negative electrode tab (36).

10. 10. The battery cell of claim 9, further comprising a first cover plate (4) and a second cover plate (5), wherein the case (1) is provided with a first opening (11) and a second opening (12) arranged opposite each other along the first direction (x), the first cover plate (4) and the second cover plate (5) are sealed in the first opening (11) and the second opening (12), respectively, the first electrode post (61) and the third electrode post (62) are both provided on the first cover plate (4), and the second electrode post (71) and the fourth electrode post (72) are both provided on the second cover plate (5).

11. 3. The battery cell according to claim 1, wherein the longitudinal direction of the first cell core (2) is parallel to the first direction (x), and the longitudinal direction of the second cell core (3) is parallel to the first direction (x).

12. 3. The battery cell according to claim 1, wherein the first connection surface (221) is planar and perpendicular to the first direction (x), and / or the second connection surface (321) is planar and perpendicular to the first direction (x).

13. The battery cell of claim 2, wherein the adapter sheet (10) includes a compressible portion.

14. 3. The battery cell of claim 2, wherein the adapter sheet (10) includes a first support portion (101) and a second support portion (102) connected to each other, the first support portion (101) being supported by the first connection surface (221), and the second support portion (102) being supported by the second connection surface (321), and a groove (105) being provided between the first support portion (101) and the second support portion (102).

15. 15. The battery cell of claim 14, wherein the first support portion (101) includes a first support surface (101A) bonded to the first connection surface (221), and the second support portion (102) includes a second support surface (102A) bonded to the second connection surface (321).

16. 15. The battery cell of claim 14, wherein the first electrode lead part (2a) further includes a first connection part (222) extending along the first direction (x), the third electrode lead part (3a) further includes a second connection part (322) extending along the first direction (x), the adapter sheet (10) includes a third support part (103) connected to the first support part (101) and a fourth support part (104) connected to the second support part (102), the third support part (103) being used to support the first connection part (222), and the fourth support part (104) being used to support the second connection part (322).

17. A battery comprising the battery cell according to claim 1 or 2.

18. 3. An electric device comprising a battery cell according to claim 1 or 2 for supplying electric energy to said electric device.

19. 20. An electrical device comprising the battery of claim 17.

Citation Information

Patent Citations

  • Single battery with internal battery cells sequentially connected in series or in parallel

    CN111816800A

  • Lithium ion battery

    CN112259858A

  • Battery pack and electric vehicle

    CN212625802U

  • Battery and battery module

    CN212695280U

  • Battery

    CN214898768U