Battery cell, its manufacturing method and manufacturing system, battery, and power consumption device

The battery cell design with a current collecting member and specific geometric configurations addresses high internal resistance by shortening conductive paths, enhancing current density, and improving current passing capacity and charging efficiency, while simplifying mounting processes.

JP7745706B2Active Publication Date: 2025-09-29CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
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Patent Information

Application Number
JP2024102206
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2025-09-29
Estimated Expiration
2041-08-23

AI Technical Summary

Technical Problem

Existing battery cells face challenges in improving current passing capacity and charging efficiency due to long conductive paths between electrode terminals and tabs, leading to high internal resistance.

Method used

A battery cell design incorporating a current collecting member that connects the electrode terminal to a first annular portion of the tab, with specific geometric configurations and welds to reduce resistance and enhance current density uniformity, along with a housing structure that simplifies electrode terminal positioning and mounting.

Benefits of technology

The design shortens conductive paths, reduces internal resistance, and improves current passing capacity and charging efficiency, while simplifying the mounting process of multiple battery cells.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a battery cell, a manufacturing method, a manufacturing system, a battery, and a power consumption device.SOLUTION: A battery cell includes: an electrode assembly including a first tub (the first tub is provided so as to surround a center axis of the electrode assembly); a housing which houses the electrode assembly (that includes a cylinder and a lid body connected to the cylinder, in which the cylinder is provided so as to surround an outer periphery of the electrode assembly, the lid body is provided with an electrode leading hole, the center axis is extended along a first direction and passes through the electrode leading hole, and the first tub includes a first annular part that is provided so as to be opposite to the lid, and projection in the first direction of the first annular part is not overlapped with the projection in the first direction of the electrode leading hole); an electrode terminal that is attached to the electrode leading hole; and a collector member that is at least partially positioned between the lid body and the first annular part, and connects the first annular part with the electrode terminal so as to electrically connect the first tub and the electrode terminal. The lid and the cylinder are integrally formed, and enhances a current passing capacity of the battery cell.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] This application relates to the field of battery technology, and more particularly to battery cells, methods and systems for manufacturing the same, batteries, and power consuming devices. [Background technology]

[0002] Battery cells are widely used in electronic devices such as mobile phones, laptops, electric bicycles, electric cars, electric airplanes, electric propulsion boats, electric toy cars, electric toy boats, electric toy airplanes, power tools, etc. Battery cells may include nickel-cadmium battery cells, nickel-metal hydride battery cells, lithium-ion battery cells, secondary alkaline zinc-manganese battery cells, etc.

[0003] With the development of battery technology, how to improve the current passing capacity of battery cells has become a technical problem that needs to be solved as soon as possible in battery technology. Summary of the Invention [Problem to be solved by the invention]

[0004] The present application provides a battery cell capable of improving the current passing capacity of the battery cell, a manufacturing method and system thereof, a battery, and a power consuming device. [Means for solving the problem]

[0005] In a first aspect, embodiments of the present application provide a battery cell, the battery cell comprising: an electrode assembly including a first tab, the first tab being disposed around a central axis of the electrode assembly; a housing for accommodating an electrode assembly, the housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body being provided to surround the outer periphery of the electrode assembly, the lid body being provided with an electrode lead-out hole, the central axis extending along a first direction and passing through the electrode lead-out hole, the first tab including a first annular portion provided opposite the lid body, and the projection of the first annular portion in the first direction not overlapping with the projection of the electrode lead-out hole in the first direction; an electrode terminal attached to the electrode lead-out hole; and a current collecting member located at least partially between the lid and the first annular portion, for connecting the first annular portion and the electrode terminal so as to electrically connect the first tab and the electrode terminal.

[0006] In the above embodiment, by providing a current collecting member and connecting the electrode terminal and the first annular portion of the first tab, current in the electrode assembly can flow to the electrode terminal via the first annular portion and the current collecting member, shortening the conductive path and improving the current passing capacity and charging efficiency of the battery cell.

[0007] In some embodiments, the central axis and the axis of the electrode lead-out hole overlap. The electrode lead-out hole is opened approximately in the center of the lid, and the electrode terminal is also attached to the center of the lid accordingly. When multiple battery cells are mounted as a set, the requirements for electrode terminal positioning accuracy are reduced, and the mounting process is simplified.

[0008] In some embodiments, the first annular portion is welded to the current collecting member to form a first weld, which can reduce contact resistance between the current collecting member and the first annular portion and increase current carrying capacity.

[0009] In some embodiments, the cross section of the first tab perpendicular to the first direction is ring-shaped, the outer radius of the first tab is R, the minimum pitch in the second direction between the first weld and the central axis is D, both satisfying 0.2≦D / R≦0.8, and the second direction being a radial direction of the first tab.

[0010] In the above embodiment, by setting the values ​​of D and R to 0.2≦D / R≦0.8, the difference in the current paths between different positions of the first tab and the electrode terminal can be reduced, the uniformity of the current density in the first sheet of the electrode assembly can be increased, the internal resistance can be reduced, and the current passing capacity can be improved.

[0011] In some embodiments, the first weld is annular and extends around the central axis, and the annular first weld has a large current-carrying area, which can improve the uniformity of the current density in the first sheet, reduce internal resistance, and increase current-carrying capacity.

[0012] In some embodiments, the first welds are multiple and are spaced apart circumferentially around the first annular portion, which can increase the current passing area, improve the uniformity of the current density in the first sheet, reduce internal resistance, and increase current passing capacity.

[0013] In some embodiments, the current collecting member has a protrusion on the side facing the first tab, and the protrusion is welded to the first annular portion to form the first weld. The protrusion can better fit the first annular portion and reduce the risk of welding defects.

[0014] In some embodiments, the first tab further includes a second annular portion, the second annular portion being disposed opposite the electrode lead-out hole along the first direction, the first annular portion surrounding the outside of the second annular portion, and at least a portion of the second annular portion abutting against the current collecting member.

[0015] In the above embodiment, the provision of the second annular portion can improve current passing capacity. The second annular portion supports the first annular portion in the radial direction, thereby reducing the risk of the first annular portion being crushed and deformed when welding the first annular portion to the current collecting member, and can also improve the stability of the welding between the first annular portion and the current collecting member.

[0016] In some embodiments, the electrode terminal includes a terminal body having a first recess, a connection portion formed in the terminal body at a bottom of the first recess, and the connection portion is welded to the current collecting member to form a second weld portion.

[0017] In the above embodiment, the thickness of the connection portion is reduced by providing the first recess, thus reducing the welding power required to weld the connection portion and the current collecting member, reducing heat generation, and lowering the risk of other members being burned.

[0018] In some embodiments, the connection portion is provided with a stress relief structure for relieving stress when welding the connection portion and the current collecting member. In this embodiment, the provision of the stress relief structure relieves stress, reduces the risk of deformation or cracking during welding of the connection portion, and ensures the strength of the connection between the connection portion and the current collecting member.

[0019] In some embodiments, the connection part has a first through-hole for connecting a space on the side of the connection part away from the electrode assembly to the interior space of the housing. When the connection part and the current collecting member are welded, the first through-hole serves to release welding stress and reduce the risk of rupture of the connection part. The first through-hole may also be used for processes such as liquid injection and gas extraction.

[0020] In some embodiments, the first through-hole is used to inject an electrolyte into the interior space of the housing.

[0021] In some embodiments, the current collecting member has a second through hole disposed opposite the first through hole so that the electrolyte can flow into the interior space of the housing through the second through hole.

[0022] In the above embodiment, by providing a second through hole in the current collecting member that faces the first through hole, blocking of the current collecting member to the electrolyte during the liquid injection process is reduced, allowing the electrolyte to flow smoothly into the housing, and improving the infiltration efficiency of the electrode assembly.

[0023] In some embodiments, a projection of the first through-hole in the first direction is located within a projection of the second through-hole in the first direction, which prevents the current collecting member from blocking the first through-hole in the first direction and allows the electrolyte to smoothly flow into the housing.

[0024] In some embodiments, the electrode assembly has a winding structure, and the electrode assembly has a third through-hole at the winding center, the third through-hole penetrates the electrode assembly along the first direction, and the third through-hole is arranged opposite the first through-hole and the second through-hole along the first direction so that the electrolyte can flow into the electrode assembly through the third through-hole. The electrolyte can flow into the third through-hole via the first through-hole and the second through-hole, and the electrolyte that has flowed into the third through-hole can infiltrate the electrode assembly from the inside, thereby improving the infiltration efficiency of the electrode assembly.

[0025] In some embodiments, a projection of the second through hole in the first direction is located within a projection of the third through hole in the first direction, which can reduce the shielding of the second through hole by the first tab and allow the electrolyte to smoothly flow into the third through hole.

[0026] In some embodiments, the connection portion includes a groove, the second weld portion being formed on a bottom wall of the groove, and the groove is recessed from the first outer surface of the connection portion toward the electrode assembly so as to form a gap between the first outer surface and the bottom wall of the groove.

[0027] During production of the battery cell, an external device can be fitted to the connection portion. Because the surface of the second weld is uneven, when the external device is crimped onto the second weld, the external device is likely to be crushed by the second weld. In this embodiment, a groove is provided to form a gap between the first outer surface and the bottom wall of the groove. In this way, the first outer surface can be used to support the external device, separating the external device from the second weld and reducing the risk of the external device being crushed.

[0028] In some embodiments, the terminal body includes a pillar-shaped portion, a first restricting portion, and a second restricting portion, the pillar-shaped portion is at least partially located within the electrode extraction hole, the first recess is provided in the pillar-shaped portion, the first restricting portion and the second restricting portion are both connected to an outer wall of the pillar-shaped portion and protrude therefrom, the first restricting portion and the second restricting portion are provided on the outer side and the inner side of the lid body in the first direction, respectively, and are used to clamp a part of the lid body. The first restricting portion and the second restricting portion clamp a part of the lid body from both sides so as to fix the terminal body to the lid body.

[0029] In some embodiments, the battery cell further includes a first insulating member and a second insulating member, at least a portion of the first insulating member being provided between the first restricting portion and the lid, and at least a portion of the second insulating member being provided between the second restricting portion and the lid, and the first insulating member and the second insulating member are used to isolate the terminal body and the lid so as to insulate them from each other.

[0030] In some embodiments, the first insulating member and the second insulating member are an integrally formed structure, or the first insulating member and the second insulating member are provided separately and abut each other.

[0031] In some embodiments, one of the first insulating member and the second insulating member is used to seal the electrode extraction hole.

[0032] In some embodiments, the first restricting portion has a plurality of protrusions on the outer periphery thereof, the protrusions being spaced apart in the circumferential direction of the columnar portion, and a recessed groove is formed between adjacent protrusions. In this embodiment, the recessed groove and the protrusions make it easier to bend the first restricting portion and reduce stress concentration on the first restricting portion.

[0033] In some embodiments, the first restricting portion is a flange structure formed by bending outward from the end of the terminal body that is away from the electrode assembly.

[0034] In some embodiments, the second restricting portion is a restricting structure formed by pressing the end of the terminal body facing the electrode assembly, causing the end of the terminal body facing the electrode assembly to extend outward.

[0035] In some embodiments, the terminal body has a second outer surface and a second inner surface arranged opposite each other along the first direction, and the first recess is recessed from the second outer surface to the first outer surface of the connection portion along the direction facing the electrode assembly.

[0036] In some embodiments, the electrode terminal further includes a seal plate connected to the terminal body and closing the opening of the first recess, which protects the connection portion from the outside, reduces foreign matter entering the first recess, reduces the risk of damage to the connection portion by foreign matter, and improves the sealing performance of the battery cell.

[0037] In some embodiments, a sidewall of the first recess is provided with a stepped surface, and at least a portion of the seal plate is received in the first recess, and the stepped surface is used to support the seal plate.

[0038] When mounting the seal plate, the stepped surface can support and position the seal plate, simplifying the mounting process. At least a portion of the seal plate is accommodated in the first recess, thus reducing the overall size of the electrode terminal, reducing the space occupied by the electrode terminal, and increasing the energy density.

[0039] In some embodiments, a gap is provided between the seal plate and the connecting portion to avoid the second welded portion. In this embodiment, providing a gap between the seal plate and the connecting portion allows the seal plate to avoid the second welded portion, avoiding direct contact between the seal plate and the second welded portion, reducing rattle during installation of the seal plate and ensuring sealing effectiveness.

[0040] In some embodiments, the connection portion is provided at one end of the terminal body facing the electrode assembly, and the first inner surface and the second inner surface of the connection portion are flush with each other.

[0041] In some embodiments, the terminal body further includes a second recess recessed from the second inner surface to the first inner surface of the connection portion along a direction away from the electrode assembly.

[0042] In the present embodiment, the thickness of the connection part can be reduced by simultaneously providing the first recess and the second recess, thus reducing the requirement for the depth of the first recess and simplifying the molding process.The second recess can also be provided to increase the internal space of the battery cell and increase the energy density.

[0043] In some embodiments, the current collecting member includes a terminal connection portion and a tab connection portion surrounding the outside of the terminal connection portion, the terminal connection portion protruding from the tab connection portion and extending into the second recess so that the top of the terminal connection portion abuts the first inner surface of the connection portion.

[0044] In some embodiments, the terminal body has a second outer surface and a second inner surface arranged opposite each other along the first direction, and the first recess extends from the second inner surface to the first inner surface of the connection portion along a direction away from the electrode assembly.

[0045] In the above embodiment, by providing the first recess inside the terminal body, the flatness and area of ​​the second outer surface can be ensured, making it easier to connect the terminal body to external junction components.By providing the first recess inside the terminal body, it is also possible to increase the internal space of the battery cell and increase the energy density.

[0046] In some embodiments, the current collecting member includes a terminal connection portion and a tab connection portion surrounding the outside of the terminal connection portion, the terminal connection portion protruding from the tab connection portion and extending into the first recess so that a top of the terminal connection portion abuts the first inner surface of the connection portion.

[0047] In some embodiments, the terminal body has a second outer surface and a second inner surface facing each other in a first direction, and the first recess is recessed from the second outer surface to the first outer surface of the connection portion in a direction facing the electrode assembly. The electrode terminal further includes a seal plate connected to the terminal body, closing the opening of the first recess, and being welded to a joining part of the battery to form a third weld. The third weld reduces contact resistance between the seal plate and the joining part and improves current passing capability.

[0048] In some embodiments, at least a portion of the seal plate protrudes from the second outer surface of the terminal body, preventing the second outer surface from interfering with the attachment of the seal plate to the mating component and ensuring intimate attachment of the mating component to the seal plate.

[0049] In some embodiments, at least a portion of the seal plate is received in the first recess, and a sidewall of the first recess has a stepped surface for supporting the seal plate, and the seal plate is welded to the sidewall of the first recess to form a fourth weld, the fourth weld being used to seal the opening of the first recess.

[0050] In the above embodiment, the fourth welded portion surrounds the outer periphery of the seal plate, thereby sealing the gap between the seal plate and the side wall of the first recess, thereby improving the sealing performance of the battery cell.

[0051] In some embodiments, the third weld is located within an area entirely surrounded by the fourth weld, which can prevent the third weld and the fourth weld from intersecting when welding the confluence component and the seal plate, thereby reducing the risk of poor soldering.

[0052] In some embodiments, the lid and the barrel are integrally formed, thus eliminating the need for a connecting step between the lid and the barrel.

[0053] In some embodiments, the electrode assembly further includes a second tab disposed around a central axis of the electrode assembly. The first tab and the second tab are disposed at opposite ends of the electrode assembly in the first direction. The cylinder is used to connect the second tab to the lid so as to electrically connect the second tab to the lid.

[0054] In the above embodiment, the cover and the electrode terminal have opposite polarities. In this case, one of the cover and the electrode terminal may be the positive output electrode of the battery cell, and the other may be the negative output electrode of the battery cell. In this embodiment, by providing the positive output electrode and the negative output electrode on the same side of the battery cell, the connection process between multiple battery cells can be simplified.

[0055] In some embodiments, the second tab is a negative tab and the base material of the housing is steel. The housing is electrically connected to the negative tab, i.e., the housing is at a low potential. The steel housing is less susceptible to corrosion by the electrolyte at low potentials.

[0056] In some embodiments, the cylinder has an opening at one end remote from the lid, and the battery cell further includes a lid plate for closing the opening.

[0057] In a second aspect, an embodiment of the present application provides a battery including a plurality of battery cells according to any one of the embodiments of the first aspect, and a junction component for electrically connecting at least two battery cells.

[0058] In a third aspect, embodiments of the present application provide a power consuming device including the battery of the second aspect for providing electrical energy.

[0059] In a fourth aspect, an embodiment of the present application provides a method for manufacturing a battery cell, the method comprising: providing a housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body having an opening at one end away from the lid body and an electrode lead-out hole provided in the lid body; and a terminal body attached to the electrode lead-out hole; providing an electrode assembly including a first tab disposed around a central axis of the electrode assembly and including a first annular portion; providing a current collecting member and connecting the current collecting member to the first annulus; mounting the electrode assembly and the current collecting member within the housing and connecting the current collecting member to the terminal body so as to electrically connect the first tab to the terminal body; providing a cover plate and connecting the cover plate to the barrel so as to close the opening of the barrel; The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion.

[0060] In some embodiments, the terminal body has a first recess, and the terminal body has a connection portion formed at a bottom of the first recess. The steps of mounting the electrode assembly and the current collecting member within the housing and connecting the current collecting member to the terminal body include mounting the electrode assembly and the current collecting member within the housing and pressing the current collecting member against the connection portion, and welding the connection portion to the current collecting member by applying an external welding device to a surface of the connection portion facing away from the current collecting member.

[0061] In the above embodiment, the provision of the first recess reduces the thickness of the connection portion, thereby reducing the welding power required to weld the connection portion and the current collecting member, reducing heat generation and the risk of burning other members.When welding from the outside, the housing protects the electrode assembly and blocks metal particles generated by welding from scattering onto the electrode assembly, thereby reducing the risk of short circuits.

[0062] In some embodiments, the terminal body has a second outer surface and a second inner surface opposed to each other along the first direction, and the first recess is recessed from the second outer surface to the first outer surface of the connection portion along the direction facing the electrode assembly. The method for manufacturing a battery cell further includes providing a seal plate, placing at least a portion of the seal plate in the first recess so as to close an opening of the first recess, and welding the seal plate to a sidewall of the first recess.

[0063] In the above embodiment, the sealing plate protects the connection portion from the outside, reduces external foreign objects entering the first recess, reduces the risk of the connection portion being damaged by external foreign objects, and improves the sealing performance of the battery cell.

[0064] In a fifth aspect, an embodiment of the present application provides a battery cell manufacturing system, the battery cell manufacturing system comprising: a first providing device for providing a housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body having an opening at one end away from the lid body, the lid body having an electrode lead-out hole, and a terminal body attached to the electrode lead-out hole; a second presenting device for presenting the electrode assembly including a first tab, the first tab being disposed around a central axis of the electrode assembly and including a first annular portion; a third providing device for providing a current collecting member and connecting the current collecting member to the first annulus; an assembly device for mounting the electrode assembly and the current collecting member within the housing and connecting the current collecting member to the terminal body so as to electrically connect the first tab to the terminal body; a fourth providing device for providing a cover plate and connecting the cover plate to the barrel so as to close the opening of the barrel; The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion.

[0065] In a sixth aspect, an embodiment of the present application provides another method for manufacturing a battery cell, the method comprising: providing a current collecting member and a terminal body, and connecting the current collecting member and the terminal body; providing an electrode assembly including a first tab disposed around a central axis of the electrode assembly and including a first annular portion; connecting a current collecting member to the first annular portion so as to electrically connect the first tab and the terminal body; providing a housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body having an opening at one end away from the lid body, and the lid body having an electrode lead-out hole; mounting the electrode assembly and the current collecting member in the housing, and mounting the terminal body in the electrode lead-out hole; providing a cover plate and connecting the cover plate to the barrel so as to close the opening of the barrel; The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion.

[0066] In some embodiments, the step of installing the electrode assembly and the current collecting member in the housing and installing the terminal body in the electrode lead-out hole includes installing the electrode assembly and the current collecting member in the housing so that an end of the terminal body remote from the electrode assembly extends through the electrode lead-out hole to the outside of the lid, and bending the end of the terminal body remote from the electrode assembly outward to form a flange structure so as to fix the terminal body to the lid. This embodiment can simplify the mounting process of the terminal body and the lid.

[0067] In another embodiment, the step of installing the electrode assembly and the current collecting member in the housing and installing the terminal body in the electrode lead-out hole includes installing the electrode assembly and the current collecting member in the housing so that an end of the terminal body remote from the electrode assembly extends through the electrode lead-out hole to the outside of the lid, and pressing the end of the terminal body remote from the electrode assembly to extend the end outward, thereby forming a restriction structure for fixing the terminal body to the lid. This embodiment can simplify the assembly process of the terminal body and the lid.

[0068] In a seventh aspect, an embodiment of the present application provides another battery cell manufacturing system, the battery cell manufacturing system comprising: a first providing device for providing a current collecting member and a terminal body and connecting the current collecting member and the terminal body; a second presenting device for presenting the electrode assembly including a first tab, the first tab being disposed around a central axis of the electrode assembly and including a first annular portion; a first assembly device for connecting the current collecting member to the first annular portion so as to electrically connect the first tab and the terminal body; a third providing device for providing a housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body having an opening at one end away from the lid body, and the lid body having an electrode lead-out hole; a second assembly device for mounting the electrode assembly and the current collecting member in the housing and for mounting the terminal body in the electrode lead-out hole; a fourth providing device for providing a cover plate and connecting the cover plate to the barrel so as to close the opening of the barrel; The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion. [Brief explanation of the drawings]

[0069] In order to more clearly describe the technical solutions of the embodiments of the present application, the following briefly describes the drawings that need to be used in the embodiments of the present application. It is obvious that the drawings described below are only some embodiments of the present application, and those skilled in the art can obtain other drawings based on the drawings without any creative efforts. [Figure 1] 1 is a structural schematic diagram of a vehicle provided by some embodiments of the present application. [Figure 2] 1 is an exploded schematic view of a battery provided in accordance with some embodiments of the present application. [Figure 3] FIG. 3 is a structural schematic diagram of the battery module shown in FIG. 2. [Figure 4] 1 is an exploded schematic view of a battery cell provided in accordance with some embodiments of the present application. [Figure 5] 1 is a cross-sectional schematic diagram of a battery cell provided in accordance with some embodiments of the present application. [Figure 6] FIG. 6 is a schematic enlarged view of a portion of the battery cell shown in FIG. 5. [Figure 7] 2 is a structural schematic diagram of a battery cell according to some embodiments of the present application after the electrode assembly and the current collecting member are welded together; [Figure 8] 10 is a structural schematic diagram of a battery cell according to another embodiment of the present disclosure after an electrode assembly and a current collecting member are welded together; [Figure 9] 7 is an enlarged schematic view of a box B of the battery cell shown in FIG. 6. FIG. [Figure 10]1 is an exploded schematic view of an electrode terminal of a battery cell provided in some embodiments of the present application. FIG. [Figure 11] 1 is a schematic top view of an electrode terminal of a battery cell provided in accordance with some embodiments of the present application. FIG. [Figure 12] FIG. 2 is a partial cross-sectional schematic view of a battery cell provided by another embodiment of the present application. [Figure 13] FIG. 2 is a schematic local cross-sectional view of a battery cell provided in accordance with yet another embodiment of the present application. [Figure 14] 2 is a structural schematic diagram of a battery cell and a junction component provided in some embodiments of the present application after they are connected; FIG. [Figure 15] 1 is a flowchart of a method for manufacturing a battery cell provided by some embodiments of the present application. [Figure 16] FIG. 1 is a schematic block diagram of a battery cell manufacturing system provided in accordance with some embodiments of the present application. [Figure 17] 4 is a flowchart of a method for manufacturing a battery cell provided by another embodiment of the present application. [Figure 18] FIG. 2 is a schematic block diagram of a battery cell manufacturing system provided in accordance with another embodiment of the present application.

[0070] In the drawing section, the drawings are not drawn to scale. DETAILED DESCRIPTION OF THE INVENTION

[0071] In order to make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly described below with reference to the drawings of the embodiments of the present application. It is clear that the described embodiments are only a part of the embodiments of the present application, and do not include all of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present application without making creative efforts fall within the scope of protection of the present application.

[0072] 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. The terminology used in the specification of the present application is for the purpose of describing specific embodiments only and is not intended to be limiting of the present application. The terms "comprises," "having," and any variations thereof in the specification, claims, and drawings of this application are intended to cover a non-exclusive "comprise." Terms such as "first," "second," and the like in the specification, claims, and drawings of this application are intended to distinguish between different objects, and are not intended to describe a particular order or a primary-subordinate relationship.

[0073] When referring to an "embodiment" in this application, it means that a particular feature, structure, or characteristic described in connection with the embodiment may be included in at least one embodiment of the application. Appearances of this phrase in various places in the specification do not necessarily all refer to the same embodiment, nor are they mutually exclusive, independent, or alternative embodiments of other embodiments.

[0074] In the description of this application, unless otherwise specified or limited, the terms "attach," "connect," "couple," and "attach" should be understood in a broad sense, and may refer to, for example, a fixed connection, a detachable connection, an integral connection, a direct connection, an indirect connection via an intermediate medium, or internal communication between two elements. Those skilled in the art will be able to understand the specific meanings of the above terms in the present application depending on the specific circumstances.

[0075] The term "and / or" in this application merely describes the relationship between related objects and indicates that three relationships may exist, for example, A and / or B can represent three cases: A alone, a combination of A and B, and B alone. Also, the character " / " in this application generally indicates that the related objects before and after it are in an "or" relationship.

[0076] In the embodiments of the present application, the same reference numerals represent the same components, and for the sake of brevity, detailed descriptions of the same components in different embodiments will be omitted. It should be understood that the dimensions such as thickness, length, and width of each member in the embodiments of the present application shown in the drawings, and the overall dimensions such as thickness, length, and width of the integrated device, are merely exemplary and do not impose any limitations on the present application.

[0077] As used herein, "plurality" means two or more (including two).

[0078] In the present application, the battery cells may include lithium ion secondary battery cells, lithium ion primary battery cells, lithium sulfur battery cells, sodium lithium ion battery cells, sodium ion battery cells, magnesium ion battery cells, etc., but are not limited thereto in the embodiments of the present application.

[0079] The battery referred to in the embodiments of this application refers to a single physical module containing one or more battery cells to provide higher voltage and capacity. For example, the battery referred to in this application may include a battery module or a battery pack. The battery generally includes a housing for packaging one or more battery cells. The housing can prevent liquids or other foreign objects from affecting the charging or discharging of the battery cells.

[0080] The battery cell includes an electrode assembly and an electrolyte. The electrode assembly includes a positive electrode sheet, a negative electrode sheet, and a separator. The battery cell operates mainly by the movement of metal ions between the positive electrode sheet and the negative electrode sheet. The positive electrode sheet includes a positive electrode current collector and a positive electrode active material layer, with the positive electrode active material layer coated on the surface of the positive electrode current collector. The positive electrode current collector includes a positive electrode current collector and a positive electrode tab, with the positive electrode active material layer coated on the positive electrode current collector and the positive electrode tab not coated with the positive electrode active material layer. Taking a lithium-ion battery as an example, the positive electrode current collector may be made of aluminum, and the positive electrode active material layer includes a positive electrode active material, which may be lithium cobalt oxide, lithium iron phosphate, ternary lithium, lithium manganese oxide, or the like. The negative electrode sheet includes a negative electrode current collector and a negative electrode active material layer, with the negative electrode active material layer coated on the surface of the negative electrode current collector. The negative electrode current collector includes a negative electrode current collector and a negative electrode tab, the negative electrode current collector being coated with a negative electrode active material layer, and the negative electrode tab not being coated with a negative electrode active material layer. The material of the negative electrode current collector may be copper, and the negative electrode active material layer includes a negative electrode active material, which may be carbon or silicon, etc. The material of the separator may be PP (polypropylene), PE (polyethylene), etc.

[0081] The battery cell further includes a housing for accommodating the electrode assembly, and the housing is provided with electrode pull-out holes for attaching electrode terminals. The electrode terminals are electrically connected to the electrode assembly and are used to charge and discharge the electrode assembly.

[0082] The sheet of the electrode assembly includes an electricity generator and a tab connected to the electricity generator. For example, in the case of a positive electrode sheet, the electricity generator includes a positive electrode current collector and an active material layer coated on the positive electrode current collector. Generally, an electrode assembly inputs and outputs current through the tab. In a wound-type electrode assembly, the tab and the electricity generator both have a multi-wound structure. As the number of windings increases from the inside to the outside, the perimeter of each winding of the electricity generator and the tab gradually increases, and accordingly, the internal resistance of each winding gradually increases.

[0083] The housing includes a cover provided opposite the tab, and the electrode lead-out hole is opened in the cover. The electrode lead-out hole is usually opened in the center of the cover, and the electrode terminal is also attached to the center of the cover accordingly.

[0084] The inventors have noted that, due to the limitations imposed by the position of the electrode extraction holes, the electrode terminals can only be connected to the inner regions of the tabs, and cannot be connected to the outer regions of the tabs, to achieve electrical connection between the electrode terminals and the tabs. This results in a long conductive path between the outer regions of the electricity generating part and the electrode terminals, resulting in large internal resistance, which affects the current passing capacity and charging efficiency of the battery cell.

[0085] In view of this, the embodiments of the present application provide a technical solution in which a current collecting member is provided to connect the electrode terminal and the tab, and the current collecting member is connected to a portion of the tab outside the electrode pull-out hole, thereby shortening the conductive path between the tab and the electrode terminal, reducing internal resistance, and increasing current passing capacity.

[0086] The technical solutions described in the embodiments of the present application are applied to batteries and battery-powered power-consuming devices.

[0087] The power consuming devices may be vehicles, mobile phones, portable devices, laptops, boats, spacecraft, electric toys, power tools, etc. The vehicles may be gasoline-powered automobiles, gas-powered automobiles, or new energy vehicles, and the new energy vehicles may be rechargeable battery electric vehicles, hybrid electric vehicles, or extended-range electric vehicles. The spacecraft may include airplanes, rockets, space shuttles, spaceships, etc. The electric toys may include game consoles, electric car toys, electric propulsion toy boats, electric car toys, and other stationary or mobile electric toys. The power tools may include electric drills, electric grinders, electric wrenches, electric screwdrivers, electric hammers, electric impact drills, metal cutting power tools such as concrete vibrators and electric planers, polishing power tools, mounting power tools, and railroad power tools. In the embodiments of the present application, the power consuming devices are not particularly limited.

[0088] In the following embodiments, for ease of explanation, the power consuming device is a vehicle.

[0089] 1 is a structural schematic diagram of a vehicle provided according to some embodiments of the present application. As shown in FIG. 1, a battery 2 is provided inside the vehicle 1, and the battery 2 may be provided at the bottom, front, or rear of the vehicle 1. The battery 2 can be used to power the vehicle 1, for example, the battery 2 can be the operating power source for the vehicle 1.

[0090] The vehicle 1 may further include a controller 3 and a motor 4, where the controller 3 is used to control the battery 2 to power the motor 4, for example, to meet the operating power needs of the vehicle 1 for starting, navigation, and driving.

[0091] In some embodiments of the present application, the battery 2 can be used not only as an operating power source for the vehicle 1, but also as a driving power source for the vehicle 1, providing driving power to the vehicle 1 in place of, or in place of, gasoline or natural gas.

[0092] 2 is an exploded schematic diagram of a battery provided according to some embodiments of the present application. As shown in FIG. 2, the battery 2 includes a housing 5 and a battery cell (not shown in FIG. 2) housed within the housing 5.

[0093] The housing 5 is used to house the battery cells and may have various structures. In some embodiments, the housing 5 may include a first housing portion 51 and a second housing portion 52, which are covered with each other and which jointly define a housing space 53 for housing the battery cells. The second housing portion 52 may have a hollow structure with an opening at one end, and the first housing portion 51 has a plate-like structure, and the first housing portion 51 is covered by the open side of the second housing portion 52 to form the housing 5 having the housing space 53. The first housing portion 51 and the second housing portion 52 may also both have a hollow structure with an opening at one end, and the open side of the first housing portion 51 is covered by the open side of the second housing portion 52 to form the housing 5 having the housing space 53. Of course, the first housing part 51 and the second housing part 52 may have various shapes such as a cylindrical body or a rectangular parallelepiped.

[0094] In order to improve the sealing performance after the first housing part 51 and the second housing part 52 are connected, a sealing member such as a sealant or a seal ring may be provided between the first housing part 51 and the second housing part 52.

[0095] Assuming that the first housing part 51 is covered on top of the second housing part 52, the first housing part 51 may be referred to as the upper housing cover, and the second housing part 52 may be referred to as the lower housing.

[0096] The battery 2 may have one or more battery cells. If there are multiple battery cells, the multiple battery cells may be connected in series, parallel, or series-parallel, and a series-parallel connection means that the multiple battery cells may be connected in series or parallel. The plurality of battery cells may be directly connected in series, in parallel, or in series-parallel, and then the entire configuration of the plurality of battery cells may be housed within the housing 5. Of course, the plurality of battery cells may first be connected in series, in parallel, or in series-parallel to form a battery module 6, and then the plurality of battery modules 6 may be connected in series, in parallel, or in series-parallel to form a single entire module that is housed within the housing 5.

[0097] FIG. 3 is a structural schematic diagram of the battery module shown in FIG.

[0098] 3, there are a plurality of battery cells 7, and the plurality of battery cells 7 are first connected in series, parallel, or series-parallel to form a battery module 6. The plurality of battery modules 6 are further connected in series, parallel, or series-parallel to form a whole, and are housed in a housing.

[0099] Electrical connection can be established between the multiple battery cells 7 in the battery module 6 via junction components 8, thereby realizing parallel connection, series connection, or series-parallel connection of the multiple battery cells 7 in the battery module 6. There may be one or more junction components, and each junction component 8 is used to electrically connect at least two battery cells.

[0100] Fig. 4 is an exploded schematic view of a battery cell provided according to some embodiments of the present application, Fig. 5 is a cross-sectional schematic view of a battery cell provided according to some embodiments of the present application, and Fig. 6 is a partially enlarged schematic view of the battery cell shown in Fig. 5.

[0101] As shown in FIGS. 4 to 6 , an embodiment of the present application provides a battery cell 7, the battery cell 7 being an electrode assembly 10 including a first tab 11, the first tab 11 being provided to surround a central axis A of the electrode assembly 10, and a housing 20 for accommodating the electrode assembly 10, the housing 20 including a cylindrical body 21 and a lid body 22 connected to the cylindrical body 21, the cylindrical body 21 being provided to surround the outer periphery of the electrode assembly 10, the lid body 22 being provided with an electrode lead-out hole 221, and the central axis A extending along a first direction X. The housing 20 also includes a first tab 11 passing through an electrode lead-out hole 221, a first annular portion 112 provided opposite the lid 22, and a projection of the first annular portion 112 in the first direction X that does not overlap with a projection of the electrode lead-out hole 221 in the first direction X, an electrode terminal 30 attached to the electrode lead-out hole 221, and a current collecting member 40 located at least partially between the lid 22 and the first annular portion 112, for connecting the first tab 11 and the electrode terminal 30 so as to electrically connect the first tab 11 and the electrode terminal 30.

[0102] The electrode assembly 10 includes a first sheet, a second sheet, and a separator, and the separator is used to separate the first sheet and the second sheet. The polarities of the first sheet and the second sheet are opposite, that is, one of the first sheet and the second sheet is a positive electrode sheet, and the other of the first sheet and the second sheet is a negative electrode sheet.

[0103] The first sheet, the second sheet, and the separator all have a strip-like structure, and the first sheet, the second sheet, and the separator are wound together around a central axis A to form a wound structure. The wound structure may be a cylindrical structure, a flat structure, or a structure of another shape.

[0104] When viewed from the outside, the electrode assembly 10 includes a main body 12 , a first tab 11 and a second tab 13 , and the first tab 11 and the second tab 13 protrude from the main body 12 . The first tab 11 is the portion of the first sheet that is not coated with the active material layer, and the second tab 13 is the portion of the second sheet that is not coated with the active material layer.

[0105] The first tab 11 and the second tab 13 may extend from the same side of the main body 12, or may extend from opposite sides. Exemplarily, the first tab 11 and the second tab 13 are provided on both sides of the main body 12 in the first direction X, in other words, the first tab 11 and the second tab 13 are provided on both ends of the electrode assembly 10 in the first direction X. The first tab 11 is located at one end of the electrode assembly 10 facing the lid 22, and the second tab 13 is located at one end of the electrode assembly 10 away from the lid 22.

[0106] Optionally, the first tab 11 is wound multiple times around the central axis A of the electrode assembly 10. In other words, the first tab 11 includes multiple turns of tab layers. After winding is complete, the first tab 11 has a generally cylindrical shape, with a gap between two adjacent turns of the tab layer. In some embodiments, the first tab 11 may be processed to reduce the gap between the tab layers and facilitate connection of the first tab 11 to other conductive structures. For example, in some embodiments, the first tab 11 may be subjected to a leveling process so that the end region of the first tab 11 away from the main body 12 is converged and gathered. The leveling process forms a dense end surface at the end of the first tab 11 away from the main body 12, reducing the gap between the tab layers and facilitating connection of the first tab 11 to the current collecting member 40. Alternatively, in some embodiments, a conductive material may be filled between adjacent two tab layers to reduce the gap between the tab layers.

[0107] Optionally, the second tab 13 is wound multiple times around the central axis A of the electrode assembly 10, and the second tab 13 includes multiple wound tab layers. Illustratively, the second tab 13 is also subjected to a leveling process to reduce gaps between the tab layers of the second tab 13.

[0108] The housing 20 has a hollow structure, and a space for accommodating the electrode assembly 10 is formed therein. The shape of the housing 20 can be determined according to the specific shape of the electrode assembly 10. For example, if the electrode assembly 10 has a cylindrical structure, a cylindrical housing can be selected. If the electrode assembly 10 has a rectangular parallelepiped structure, a rectangular parallelepiped housing can be selected. Optionally, both the electrode assembly 10 and the housing 20 are cylindrical. Accordingly, the tube 21 is a cylinder, and the cover 22 is a circular plate-like structure.

[0109] The cover 22 and the cylindrical body 21 may be integrally formed, i.e., the housing 20 is a single-piece molded member. Of course, the cover 22 and the cylindrical body 21 may be two separate members connected by welding, caulking, adhesive, or the like.

[0110] The housing 20 has a hollow structure that is open on one side. Specifically, the cylindrical body 21 has an opening 211 at one end that is remote from the cover body 22. The battery cell 7 further includes a cover plate 50 that covers the opening of the cylindrical body 21 so as to close the opening 211 of the cylindrical body 21. The cover plate 50 may have various structures, for example, the cover plate 50 has a plate-like structure.

[0111] The electrode lead-out hole 221 penetrates the cover 22, thereby making it easier to extract electrical energy in the electrode assembly 10 to the outside of the housing 20. For example, the electrode lead-out hole 221 penetrates the cover 22 along the first direction X.

[0112] The central axis A is an imaginary straight line parallel to the first direction X and passes through the electrode lead-out hole 221. The central axis A of the electrode assembly 10 and the axis of the electrode lead-out hole 221 may or may not overlap.

[0113] The electrode terminal 30 is used to align with the electrode lead-out hole 221 and cover the electrode lead-out hole 221. The electrode terminal 30 may or may not extend into the electrode lead-out hole 221. The electrode terminal 30 is fixed to the cover 22. The electrode terminal 30 may be fixed entirely to the outside of the cover 22, or may pass through the electrode lead-out hole 221 and extend into the interior of the housing 20.

[0114] The electrode terminals 30 are connected to the junction components and are used to realize electrical connections between the battery cells 7 .

[0115] The electrode terminal 30 may be provided insulatively on the lid body 22 or may be electrically connected to the lid body 22, but this is not limited to this in the embodiments of the present application as long as electrical conduction between the first tab 11 and the second tab 13 can be avoided.

[0116] The housing 20 may be positively charged, negatively charged, or uncharged.

[0117] The first tab 11 may be a positive electrode tab or a negative electrode tab.

[0118] The current collecting member 40 is connected to the first annular portion 112 of the first tab 11 by means such as welding, abutting, or adhesion, and is connected to the electrode terminal 30 by means such as welding, abutting, adhesion, or crimping, thereby achieving electrical connection between the first tab 11 and the electrode terminal 30.

[0119] The first annular portion 112 has an annular structure surrounding the central axis A, and is positioned outside the electrode lead-out hole 221 in the second direction, which is the radial direction of the first tab 11.

[0120] In this embodiment, the lid 22 refers to the solid portion and is provided opposite the first annular portion 112 along the first direction X. The lid 22 covers the first annular portion 112 in the first direction X.

[0121] The first tab 11 may be located entirely outside the electrode lead-out hole 221 in the second direction, i.e., the first tab 11 includes only the first annular portion 112. Of course, a portion of the first tab 11 may be provided opposite the electrode lead-out hole 221 along the first direction X, i.e., the projection of the first tab 11 in the first direction X partially overlaps the projection of the electrode lead-out hole 221 in the first direction X.

[0122] At least a portion of the current collecting member 40 overlaps with the first annular portion 112 in the first direction X, making it easier to connect the current collecting member 40 and the first annular portion 112.

[0123] The first annular portion 112 is located outside the electrode lead-out hole 221 in the second direction, and the radius of the tab layer of each turn in the first annular portion 112 is larger than the radius of the electrode lead-out hole 221.

[0124] In the battery cell 7 of the embodiment of the present application, the provision of the current collecting member 40 connects the electrode terminal 30 and the first annular portion 112 of the first tab 11, and thus current in the electrode assembly 10 can pass through the first annular portion 112 and the current collecting member 40 to flow to the electrode terminal 30, shortening the conductive path and reducing internal resistance, thereby improving the current passing capacity and charging efficiency of the battery cell 7.

[0125] The outer region of the electricity generating portion of the first sheet corresponds to the first annular portion 112, and current in the outer portion can pass through the first annular portion 112 and flow to the electrode terminal 30, shortening the conductive path. Because the perimeter of the inner region of the electricity generating portion of the first sheet is small, the conductive path between the inner region and the first annular portion 112 is also relatively small. Therefore, in this embodiment, the conductive path can be shortened and the internal resistance can be reduced.

[0126] In some embodiments, the central axis A and the axis of the electrode lead-out hole 221 overlap with each other.

[0127] In this embodiment, it is not required that the central axis A and the axis of the electrode lead-out hole 221 completely overlap, and there may be a deviation between them that is allowable in the process.

[0128] In this embodiment, the electrode extraction hole 221 is opened approximately in the center of the cover 22, and accordingly, the electrode terminal 30 is also attached to the center of the cover 22. When mounting a plurality of battery cells 7 as a set, the requirements for positioning accuracy of the electrode terminal 30 are reduced, and the mounting process can be simplified.

[0129] For example, the axis of the electrode lead-out hole 221 and the axis of the lid 22 overlap, and the lid 22 has an annular structure provided around the axis of the electrode lead-out hole 221 .

[0130] For example, the axis of the electrode terminal 30 and the axis of the electrode lead-out hole 221 overlap with each other.

[0131] In some embodiments, the lid 22 and the barrel 21 are integrally formed structures, thus eliminating the need to connect the lid 22 and the barrel 21. The housing 20 can be formed by a stretching process.

[0132] In some embodiments, the electrode assembly 10 further includes a second tab 13, which is provided around the central axis A of the electrode assembly 10. The first tab 11 and the second tab 13 are provided at both ends of the electrode assembly 10 in the first direction X, respectively. The cylindrical body 21 is used to connect the second tab 13 and the lid body 22 so as to electrically connect the second tab 13 and the lid body 22.

[0133] The cylindrical body 21 may be electrically connected to the second tab 13 directly, or may be electrically connected to the second tab 13 via another member. For example, the second tab 13 is electrically connected to the cylindrical body 21 via the cover plate 50.

[0134] The cover 22 and the electrode terminal 30 have different polarities. In this case, one of the cover 22 and the electrode terminal 30 may be the positive output electrode of the battery cell 7, and the other may be the negative output electrode of the battery cell 7. In this embodiment, the positive output electrode and the negative output electrode are provided on the same side of the battery cell 7, which can simplify the connection process between multiple battery cells 7.

[0135] The electrode extraction holes 221 in the present embodiment are formed after the housing 20 is stretch-formed.

[0136] The inventor attempted to form a flange structure by bending the open end of the cylinder inward, and then roll the open end of the cylinder so that the flange structure would press against the cover plate and secure it in place. The inventor attached an electrode terminal to the cover plate, and the flange structure and the electrode terminal served as the two output electrodes of the battery cell. However, the larger the flange structure, the greater the risk of curling and wrinkling after molding. When curling and wrinkling appear on the flange structure, the surface of the flange structure becomes uneven, which can lead to poor welding when welding the flange structure to external components. This limits the size of the flange structure, resulting in insufficient current-carrying capacity for the battery cell.

[0137] In this embodiment, electrode lead-out holes 221 for attaching electrode terminals 30 are formed in the cover 22 by a hole-punching process, and the positive and negative output electrodes are provided at the end of the battery cell 7 that is remote from the opening of the cylindrical body 21. The cover 22 is formed during molding of the housing 20, and its flatness is guaranteed even after the electrode lead-out holes 221 are drilled, ensuring the strength of the connection between the cover 22 and the merging components. At the same time, the flatness of the cover 22 is not limited by its own dimensions, so the cover 22 can have a large dimension, which can increase the current-passing capacity of the battery cell 7.

[0138] In some embodiments, the second tab 13 is a negative tab and the base material of the housing 20 is steel.

[0139] The housing 20 is electrically connected to the negative electrode tab, i.e., the housing 20 is in a low potential state. The steel housing 20 is resistant to corrosion by the electrolyte in a low potential state.

[0140] In some embodiments, the first annular portion 112 is welded to the current collecting member 40 to form a first weld W1.

[0141] When mounting the battery cell 7, the first annular portion 112 of the first tab 11 of the electrode assembly 10 is first welded to the current collecting member 40, and then the electrode assembly 10 and the current collecting member 40 can be placed into the housing 20. Specifically, when welding the first annular portion 112 to the current collecting member 40, the current collecting member 40 is first pressed against the leveled end surface of the first tab 11, and then an external welding device irradiates a laser onto the surface of the current collecting member 40 that is away from the first tab 11, and the laser welds the current collecting member 40 to the first annular portion 112 of the first tab 11.

[0142] The shape of the first welded portion W1 may be linear, C-shaped, circular, spiral, V-shaped or other shapes, but is not limited thereto in this embodiment.

[0143] The number of first welded parts W1 may be one or more.

[0144] The first welded portion W1 can reduce the contact resistance between the current collecting member 40 and the first annular portion 112 and increase the current passing capacity.

[0145] In some embodiments, the cross section of the first tab 11 perpendicular to the first direction X is ring-shaped. The outer radius of the first tab 11 is R, and the minimum pitch in the second direction between the first weld W1 and the central axis A is D, both of which satisfy 0.2≦D / R≦0.8, and the second direction is the radial direction of the first tab 11.

[0146] After the leveling process, the first tab 11 has a substantially cylindrical shape. The cross section of the first tab 11 perpendicular to the first direction X is not required to have an absolute ring shape, and a certain degree of deviation is allowed.

[0147] The first weld W1 is used to transmit current between the current collecting member 40 and the first tab 11, and its position directly affects the conductive path of each portion of the first tab 11. When D / R<0.2, the pitch between the first weld W1 and the outermost tab layer is too large, resulting in a large difference between the current path between the outermost tab layer and the electrode terminal 30 and the current path between the innermost tab layer and the electrode terminal 30, resulting in non-uniform current density in the first sheet of the electrode assembly and high internal resistance. When D / R>0.8, the pitch between the first weld W1 and the innermost tab layer is too large, resulting in a large difference between the current path between the outermost tab layer and the electrode terminal 30 and the current path between the innermost tab layer and the electrode terminal 30, resulting in non-uniform current density in the first sheet and high internal resistance.

[0148] In the embodiment of the present application, by setting the values ​​of D and R to 0.2≦D / R≦0.8, the difference in the current paths between different portions of the first tab 11 and the electrode terminal 30 can be reduced, the uniformity of the current density in the first sheet of the electrode assembly 10 can be improved, the internal resistance can be reduced, and the current passing capacity can be increased.

[0149] Optionally, 0.3≦D / R≦0.7. Illustratively, the value of D / R is 0.3, 0.4, 0.5, 0.6, or 0.7.

[0150] In some embodiments, the total number of turns of the tab layer of the first tab 11 is N1, and the total number of turns of the tab layer connected to the first weld W1 is N2, both of which satisfy 0.3≦N2 / N1≦0.7.

[0151] By connecting the N2-turn tab layers with the first weld W1, the current between the N2-turn tab layers can pass directly through the first weld W1 to the current collecting member 40, without passing through other tab layers. If N2 / N1≧0.3, the current passing capacity can be effectively improved and the difference in the current path between different parts of the first tab 11 and the electrode terminal 30 can be reduced. If N2 / N1>0.7, the dimension of the first weld W1 at the current collecting member 40 in the radial direction of the electrode assembly 10 is large, which will affect the welding between the current collecting member 40 and the electrode terminal 30.

[0152] Optionally, the value of N2 / N1 may be 0.3, 0.4, 0.5, 0.6 or 0.7.

[0153] 7 is a schematic diagram of the structure of a battery cell according to some embodiments of the present application after the electrode assembly and the current collecting member are welded together, and FIG. 8 is a schematic diagram of the structure of a battery cell according to another embodiment of the present application after the electrode assembly and the current collecting member are welded together.

[0154] As shown in FIG. 7, in some embodiments, the first weld W1 is annular and extends around the central axis.

[0155] The annular first weld W1 has a large current-passing area, which can improve the uniformity of the current density of the first sheet, reduce the internal resistance, and increase the current-passing capacity.

[0156] In some embodiments, the ratio of the size of the first weld W1 (ie, the annular width of the annular first weld W1) to the outer radius of the first tab 11 in the radial direction of the electrode assembly 10 is 0.3 to 0.7.

[0157] As shown in FIG. 8, in another embodiment, there are a plurality of first welds W1, and the plurality of first welds W1 are distributed at intervals in the circumferential direction Y of the first annular portion.

[0158] The first weld W1 may have a linear structure extending along the radial direction of the electrode assembly 10, or may have a V-shaped mechanism, but may of course have other structures.

[0159] The plurality of first welds W1 can increase the current passing area, improve the uniformity of the current density of the first sheet, reduce the internal resistance, and increase the current passing capacity.

[0160] Fig. 9 is an enlarged schematic view of a box B of the battery cell shown in Fig. 6. Fig. 10 is an exploded schematic view of electrode terminals of a battery cell provided according to some embodiments of the present application.

[0161] Referring to Figures 6, 9 and 10, in some embodiments, the current collecting member 40 has a protrusion 41 on the side facing the first tab 11, and the protrusion 41 is welded to the first annular portion 112 to form a first weld W1.

[0162] The current collecting member 40 has a third inner surface 42 and a third outer surface 43 that are opposed to each other along the first direction X, and the third inner surface 42 faces the first tab 11. The protrusion 41 protrudes from the third inner surface 42 toward the first annular portion 112 of the first tab 11. The third inner surface 42 and the third outer surface 43 may be flat. In some examples, other portions of the current collecting member 40, in addition to the protrusion 41, have a substantially flat plate structure.

[0163] When assembling the current collecting member 40 and the electrode assembly 10, the protrusion 41 of the current collecting member 40 is first pressed against the first annular portion 112, and then the protrusion 41 and the first annular portion 112 are welded together. This allows the protrusion 41 to be more effectively bonded to the first annular portion 112, reducing the risk of poor welding.

[0164] In some embodiments, the protrusion 41 can press against the first annular portion 112 and fit into the first annular portion 112, and the third inner surface 42 is pressed against the end face of the first annular portion 112. In this way, some of the current can be transmitted through the mating portion between the third inner surface 42 and the end face of the first annular portion 112, thereby increasing the current passing capacity.

[0165] In some embodiments, a third recess 44 is formed at a position corresponding to the protrusion 41 of the current collecting member 40, and the third recess 44 is recessed in a direction facing the first annular portion 112 relative to the third outer surface 43. A transition portion is formed between the bottom surface of the third recess 44 and the top surface of the protrusion 41, and the transition portion is welded to the first annular portion 112 to form a first weld W1.

[0166] Providing the third recess 44 reduces the thickness of the transition portion, which reduces the welding power required to weld the transition portion and the first annular portion 112, reduces heat generation, and reduces the risk of the electrode assembly 10 being burned.

[0167] The first welded portion W1 is welded and has an uneven surface. In this embodiment, the third recess 44 is provided so that the surface of the first welded portion W1 is recessed relative to the third outer surface 43, allowing the first welded portion W1 to avoid contact with other members (e.g., the electrode terminal 30).

[0168] In some embodiments, a fixing piece (not shown) may be provided in the third recess 44, and the fixing piece is used to fix metal particles remaining in the first weld W1 and cover the first weld W1 so as to reduce the risk of the metal particles falling onto the electrode assembly 10 and causing a short circuit. The fixing piece may be an insulating patch, an insulating adhesive layer, or other structure.

[0169] The first tab 11 further includes a second annular portion 111, which is provided opposite the electrode lead-out hole 221 along the first direction X, and the first annular portion 112 surrounds the outside of the second annular portion 111. At least a portion of the second annular portion 111 abuts against the current collecting member 40.

[0170] The second annular portion 111 being provided opposite the electrode lead-out hole 221 along the first direction X means that the projection of the second annular portion 111 in the first direction X is located within the projection of the electrode lead-out hole 221 in the first direction X, and the outline of the projection of the second annular portion 111 in the first direction X overlaps with the outline of the projection of the electrode lead-out hole 221 in the first direction X. Illustratively, the second annular portion 111 is provided surrounding the central axis A.

[0171] The first annular portion 112 is connected to the second annular portion 111, and has an annular structure surrounding the outside of the second annular portion 111. It is considered that the outline of the electrode lead-out hole 221 projected onto the first tab 11 in the first direction X overlaps with the outline of the boundary line between the second annular portion 111 and the first annular portion 112.

[0172] At least a portion of the second annular portion 111 abuts against the third inner surface 42 of the current collecting member 40. A portion of the current can be transmitted to the current collecting member 40 through the contact point between the second annular portion 111 and the current collecting member 40 .

[0173] In this embodiment, the current passing capacity can be increased by providing the second annular portion 111. The second annular portion 111 supports the first annular portion 112 in the radial direction, thereby reducing the risk of the first annular portion 112 being crushed and deformed when welding the first annular portion 112 to the current collecting member 40, and also increasing the stability of the welding between the first annular portion 112 and the current collecting member 40.

[0174] In some embodiments, the electrode terminal 30 includes a terminal body 34 having a first recess 31. A connection portion 32 is formed at the bottom of the first recess 31 in the terminal body 34, and the connection portion 32 is welded to the current collecting member 40 to form a second weld W2.

[0175] The connecting portion 32 has a first inner surface 321 and a first outer surface 322 that are opposed to each other, and the first inner surface 321 faces the current collecting member 40. Optionally, both the first inner surface 321 and the first outer surface 322 are flat.

[0176] The first recess 31 may be recessed from the side of the electrode terminal 30 away from the electrode assembly 10 toward the electrode assembly 10, or may be recessed from the side of the electrode terminal 30 facing the electrode assembly 10 toward the electrode assembly 10. In other words, the terminal body 34 has a second outer surface 344 and a second inner surface 345 provided along the first direction, and the first recess 31 may be recessed into the second outer surface 344, or may be formed in the second inner surface 345.

[0177] A projection of the connecting portion 32 in the first direction X is located within a projection of the electrode extraction hole 221 in the first direction X. In the first direction X, the current collecting member 40 is located between the connecting portion 32 and the first tab 11. A portion of the current collecting member 40 and the connecting portion 32 overlap in the first direction X so as to achieve welding of the connecting portion 32 and the current collecting member 40.

[0178] After the electrode assembly 10 and the current collecting member 40 are mounted in the housing 20 through the opening in the cylindrical body 21 and the current collecting member 40 is pressed against the connection portion 32, an external welding device can weld the connection portion 32 and the current collecting member 40 from the side of the connection portion 32 away from the current collecting member 40 to form a second weld W2.

[0179] In this embodiment, the thickness of the connection portion 32 is reduced by providing the first recess 31, thus reducing the welding power required to weld the connection portion 32 and the current collecting member 40, reducing heat generation, and lowering the risk of other members (for example, the first insulating member 60 described below) being burned.

[0180] In some embodiments, the thickness of the connection portion 32 is between 0.5 mm and 10 mm.

[0181] In some embodiments, the second weld W2 extends from the first outer surface 322 to the current collecting member 40 in the thickness direction of the connection portion 32, and the second weld W2 is separated from the surface of the current collecting member 40 away from the connection portion 32 by a predetermined distance to avoid melt-through of the current collecting member 40.

[0182] In some embodiments, the connection portion 32 is provided with a stress relief structure to provide stress relief when the connection portion 32 and the current collecting member 40 are welded together.

[0183] During welding, the connection portion 32 is subjected to welding stress. The present invention provides a stress relief structure to relieve stress, reduce the risk of deformation or cracking of the connection portion 32 during welding, and ensure the strength of the connection between the connection portion 32 and the current collecting member 40.

[0184] Illustratively, the stress relief structures may be holes, grooves, or other structures.

[0185] In some embodiments, the connection portion 32 is provided with a first through-hole 323 for connecting the space on the side of the connection portion 32 away from the electrode assembly 10 to the internal space of the housing 20 .

[0186] The first through-hole 323 penetrates the connection portion 32 in the thickness direction of the connection portion 32. The number of first through-holes 323 may be one or more.

[0187] When the connection part 32 and the current collecting member 40 are welded together, the first through-hole 323 serves to release welding stress, thereby reducing the risk of the connection part 32 exploding.

[0188] During the molding of the battery cell 7, the first through-hole 323 can be used for multiple molding steps, for example, the first through-hole 323 can be used for a liquid injection step, a chemical forming step, or other steps.

[0189] Specifically, the first through-hole 323 is used to inject the electrolyte into the internal space of the housing 20. When injection is required, the injection head of the injection device is pressed against the connection part 32, and the injection head injects the electrolyte into the housing 20 through the first through-hole 323.

[0190] During the chemical formation process of the battery cell 7, gas is generated inside the housing 20, and the first through-hole 323 can also be used to communicate with an external negative pressure device and extract the gas inside the housing 20.

[0191] In some embodiments, the axis of the first through-hole 323 and the axis of the electrode lead-out hole 221 overlap with each other.

[0192] In some embodiments, the current collecting member 40 is provided with a second through hole 45, which is positioned opposite the first through hole 323 so that the electrolyte can flow into the interior space of the housing 20 through the second through hole 45.

[0193] A projection of the first through hole 323 in the first direction X and a projection of the second through hole 45 in the first direction X at least partially overlap with each other. In this embodiment, the diameter of the second through hole 45 is not limited, and may be larger than, equal to, or smaller than the diameter of the first through hole 323.

[0194] In this embodiment, by providing a second through hole 45 in the current collecting member 40 that faces the first through hole 323, blocking of the electrolyte during the current collecting member 40 injection process is reduced, allowing the electrolyte to flow smoothly into the housing 20, and improving the infiltration efficiency of the electrode assembly 10.

[0195] In some embodiments, the projection of the first through-hole 323 in the first direction X is located within the projection of the second through-hole 45 in the first direction X. In this embodiment, the current collecting member 40 can be prevented from blocking the first through-hole 323 in the first direction X, allowing the electrolyte to smoothly flow into the housing 20.

[0196] The first through-hole 323 and the second through-hole 45 are provided coaxially, and the diameter of the second through-hole 45 may be equal to or larger than the diameter of the first through-hole 323 .

[0197] In some embodiments, the electrode assembly 10 has a winding structure, and the electrode assembly 10 has a third through-hole 14 at the winding center. The third through-hole 14 penetrates the electrode assembly 10 along the first direction X, and the third through-hole 14 is arranged opposite the first through-hole 323 and the second through-hole 45 along the first direction X so that the electrolyte can flow into the electrode assembly 10 through the third through-hole 14.

[0198] The electrode assembly 10 is manufactured by winding the first sheet, the second sheet, and the separator around a winding tool, and after winding and forming, the winding tool is removed from the electrode assembly 10. After the winding tool is removed, a third through-hole 14 is formed in the center of the electrode assembly 10.

[0199] The axis of the third through hole 14 overlaps with the central axis A of the electrode assembly 10. The third through hole 14 penetrates the first tab 11, the main body 12, and the second tab 13 along the first direction X. The second annular portion 111 of the first tab 11 has a circular ring structure that surrounds the outside of the third through hole 14, and the first annular portion 112 has a circular ring structure that surrounds the outside of the second annular portion 111.

[0200] In the liquid injection process, the electrolyte can flow into the third through hole 14 via the first through hole 323 and the second through hole 45, and the electrolyte that has flowed into the third through hole 14 can infiltrate the electrode assembly 10 from the inside, thereby increasing the infiltration efficiency of the electrode assembly 10.

[0201] In some embodiments, the projection of the second through-hole 45 in the first direction X is located within the projection of the third through-hole 14 in the first direction X. In this way, the shielding of the second through-hole 45 by the first tab 11 can be reduced, and the electrolyte can smoothly flow into the third through-hole 14.

[0202] In some embodiments, the first through hole 323, the second through hole 45, and the third through hole 14 are coaxial. The diameter of the third through hole 14 may be equal to or larger than the diameter of the second through hole 45.

[0203] In some embodiments, the connection portion 32 includes a groove 324, a second weld W2 is formed on the bottom wall of the groove 324, and the groove 324 is recessed from the first outer surface 322 of the connection portion 32 toward the electrode assembly 10 so as to form a gap between the first outer surface 322 and the bottom wall of the groove 324.

[0204] The groove 324 is recessed in the first outer surface 322 in a direction facing the current collecting member 40. In this embodiment, the groove 324 is formed in the connecting portion 32, thereby forming a stepped structure in the connecting portion 32.

[0205] The portion between the bottom wall of the groove 324 and the first inner surface 321 is used to form a second weld W2 by being welded to the current collecting member 40. The first through hole 323 extends from the bottom wall of the groove 324 to the first inner surface 321 and penetrates the connecting portion 32.

[0206] During the production of the battery cell, the external device needs to be fitted to the connection portion 32. The surface of the second weld W2 is uneven, and when the external device is crimped onto the second weld W2, the external device is likely to be crushed by the second weld W2. In this embodiment, the groove 324 is provided to form a gap between the first outer surface 322 and the bottom wall of the groove 324. In this way, the first outer surface 322 can be used to space the external device from the second weld W2 and support the external device, reducing the risk of the external device being crushed.

[0207] The external equipment may be a liquid injection equipment, a gas extraction equipment, a welding equipment or an equipment used in a battery cell.

[0208] For example, during injection, the injection head is pressed against the first outer surface 322, which supports the injection head and, together with the injection head, forms a seal, reducing the risk of electrolyte leaking outside the battery cell 7.

[0209] FIG. 11 is a schematic top view of an electrode terminal of a battery cell provided according to some embodiments of the present application.

[0210] 9 to 11, in some embodiments, the terminal body 34 includes a columnar portion 341, a first regulating portion 342, and a second regulating portion 343, the columnar portion 341 is at least partially located within the electrode extraction hole 221, the first recess 31 is provided in the columnar portion 341, the first regulating portion 342 and the second regulating portion 343 are both connected to the outer wall of the columnar portion 341 and protrude therefrom, the first regulating portion 342 and the second regulating portion 343 are provided on the outside and inside of the lid body 22 in a first direction, respectively, and are used to clamp a portion of the lid body 22.

[0211] Providing the first restricting portion 342 on the outer side of the lid body 22 in the first direction means that the first restricting portion 342 is provided on the side of the lid body 22 that is away from the electrode assembly in the first direction. Providing the second restricting portion 343 on the inner side of the lid body 22 in the first direction means that the second restricting portion 343 is provided on the side of the lid body 22 that faces the electrode assembly in the first direction.

[0212] In the first direction, at least a portion of the first restricting portion 342 overlaps with the lid body 22, and at least a portion of the second restricting portion 343 overlaps with the lid body 22. The columnar portion 341 passes through the electrode lead-out hole 221 and is connected to the first restricting portion 342 and the second restricting portion 343 located on both sides of the lid body 22, respectively.

[0213] The first restricting portion 342 and the second restricting portion 343 sandwich a part of the lid body 22 from both sides so as to fix the terminal body 34 to the lid body 22. The first restricting portion 342 and the second restricting portion 343 may directly sandwich the lid body 22, or may indirectly sandwich the lid body 22 via another member.

[0214] Optionally, the columnar portion 341 is cylindrical. The first restricting portion 342 and the second restricting portion 343 are both annular structures that surround the columnar portion 341.

[0215] In some embodiments, the battery cell 7 further includes a first insulating member 60 and a second insulating member 70, where at least a portion of the first insulating member 60 is provided between the first restricting portion 342 and the lid body 22, and at least a portion of the second insulating member 70 is provided between the second restricting portion 343 and the lid body 22. The first insulating member 60 and the second insulating member 70 are used to separate the terminal body 34 and the lid body 22 so as to insulate them from each other.

[0216] The first insulating member 60 and the second insulating member 70 each have an annular structure that surrounds the columnar portion 341.

[0217] The first insulating member 60 can separate the first regulating portion 342 and the lid body 22 so as to insulate them from each other, and the second insulating member 70 can separate the second regulating portion 343 and the lid body 22 so as to insulate them from each other.

[0218] In some embodiments, one of the first insulating member 60 and the second insulating member 70 separates the columnar portion 341 from the cover 22. For example, a portion of the first insulating member 60 extends into the electrode lead-out hole 221 to separate the wall of the electrode lead-out hole 221 from the columnar portion 341.

[0219] In some embodiments, the first insulating member 60 and the second insulating member 70 are integrally formed structures. Alternatively, in other embodiments, the first insulating member 60 and the second insulating member 70 are provided separately and abut each other.

[0220] In some embodiments, one of the first insulating member 60 and the second insulating member 70 is used to seal the electrode drawing hole. In some examples, the first restricting portion 342 and the cover 22 press the first insulating member 60, and the first insulating member 60 is compressed to seal the electrode drawing hole 221 from the outside. In other examples, the second restricting portion 343 and the cover 22 press the second insulating member 70, and the second insulating member 70 is compressed to seal the electrode drawing hole 221 from the inside.

[0221] In some embodiments, the battery cell 7 further includes a seal ring 80, which is fitted onto the columnar portion 341 and is used to seal the electrode extraction hole 221. Optionally, a portion of the seal ring 80 extends into the electrode extraction hole 221 to separate the hole wall of the electrode extraction hole 221 from the columnar portion 341.

[0222] In some embodiments, a plurality of protruding structures 342a are provided on the outer periphery of the first restricting portion 342, and the plurality of protruding structures 342a are provided at intervals in the circumferential direction of the columnar portion 341.

[0223] Optionally, the plurality of protruding structures 342a may be provided at equal intervals in the circumferential direction of the columnar portion 341.

[0224] The first restricting portion 342 has a flange structure formed by bending outward from the end of the terminal body 34 that is farther away from the electrode assembly.

[0225] Before the terminal body 34 is mounted in the housing, the first restricting portion 342 of the terminal body 34 has a substantially cylindrical structure and is located at the upper end of the columnar portion 341, and the outer wall of the first restricting portion 342 is flush with the outer wall of the columnar portion 341. When the terminal body 34 is mounted in the housing, the first restricting portion 342 is passed through the electrode lead-out hole 221, and then the first restricting portion 342 is pressed to bend the first restricting portion 342 outward, and the terminal body 34 is crimped to the lid 22.

[0226] Before bending the first restricting portion 342, a plurality of spaced-apart groove structures 342b are formed on the upper end of the first restricting portion 342. After bending the first restricting portion 342, a plurality of spaced-apart protrusion structures 342a are formed around the columnar portion 341, and groove structures 342b are formed between adjacent protrusion structures 342a. In this embodiment, the provision of the groove structures 342b and the protrusion structures 342a reduces the difficulty of bending the first restricting portion 342 and reduces stress concentration on the first restricting portion 342.

[0227] In some embodiments, the second restricting portion 343 is a restricting structure formed by pressing the end of the terminal body 34 facing the electrode assembly, causing the end of the terminal body 34 facing the electrode assembly to extend outward. When the cover 22 and the terminal body 34 are mounted, an external device can press the end of the terminal body 34 facing the electrode assembly, and the end of the terminal body 34 facing the electrode assembly extends outward due to the pressure, forming the protruding second restricting portion 343.

[0228] In some embodiments, the terminal body 34 has a second outer surface 344 and a second inner surface 345 arranged opposite each other along a first direction, and the first recess 31 is recessed from the second outer surface 344 to the first outer surface 322 of the connection portion 32 along a direction facing the electrode assembly 10.

[0229] In some embodiments, the electrode terminal 30 includes a seal plate 33 that is connected to the terminal body 34 and closes the opening of the first recess 31 .

[0230] The seal plate 33 may be located entirely outside the first recess 31 or may be partially housed within the first recess 31, as long as the seal plate 33 can close the opening of the first recess 31.

[0231] The sealing plate 33 can protect the connection portion 32 from the outside, reduce external foreign matter entering the first recess 31, lower the risk of the connection portion 32 being damaged by external foreign matter, and improve the sealing performance of the battery cell 7.

[0232] The seal plate 33 can also serve to seal the first through-hole 323. After the battery cell 7 is molded, the seal plate 33 can reduce the risk of electrolyte leakage through the first through-hole 323 and the first recess 31, thereby improving sealing performance.

[0233] In some embodiments, a stepped surface 311 is provided on the side wall of the first recess 31, and at least a portion of the seal plate 33 is accommodated in the first recess 31, and the stepped surface 311 is used to support the seal plate 33.

[0234] The first recess 31 is a stepped recess that is larger on the outside and smaller on the inside.

[0235] When mounting the seal plate 33, the stepped surface 311 can support and position the seal plate 33, simplifying the mounting process. At least a portion of the seal plate 33 is housed in the first recess 31, thus reducing the overall dimension of the electrode terminal 30 in the first direction, reducing the space occupied by the electrode terminal 30, and increasing the energy density.

[0236] In some embodiments, the seal plate 33 is welded to the sidewall of the first recess 31 to close the opening of the first recess 31 .

[0237] In some embodiments, a gap is provided between the seal plate 33 and the connection portion 32 to avoid the second weld W2.

[0238] The surface of the second welded portion W2 is uneven, and if the seal plate 33 is pressed against the second welded portion W2, the seal plate 33 will rattle during installation, affecting the sealing effect. In this embodiment, a gap is provided between the seal plate 33 and the connection portion 32, allowing the seal plate 33 to avoid the second welded portion W2 and preventing direct contact between the seal plate 33 and the second welded portion W2, thereby reducing rattle during installation of the seal plate 33 and ensuring the sealing effect.

[0239] In some examples, the first recess 31 has a stepped structure, and thus the seal plate 33 abuts against the stepped surface 311 to form a gap between the seal plate 33 and the connecting portion 32. In another example, the connecting portion 32 may be provided as a stepped structure, and thus the seal plate 33 can abut against the connecting portion 32, and the recessed groove 324 in the connecting portion 32 forms a gap between the seal plate 33 and the connecting portion 32.

[0240] In some embodiments, the connecting portion 32 is provided at one end of the terminal body 34 facing the electrode assembly 10, and the first inner surface 321 and the second inner surface 345 of the connecting portion 32 are flush with each other.

[0241] The second inner surface 345 is the surface of the terminal body 34 that faces the electrode assembly 10. The first inner surface 321 of the connecting portion 32 forms part of the second inner surface 345. In this manner, the terminal body 34 can be combined with the current collecting member 40 having a flat structure. In this embodiment, by bonding the third outer surface 43 of the current collecting member 40 to the second inner surface 345, the connecting portion 32 and the current collecting member 40 can be bonded together, making it easier to weld the connecting portion 32 and the current collecting member 40 together.

[0242] FIG. 12 is a schematic local cross-sectional view of a battery cell provided according to another embodiment of the present application.

[0243] 12 , in some embodiments, the terminal body 34 has a second outer surface 344 and a second inner surface 345 provided along the first direction X, and the first recess 31 is recessed from the second outer surface 344 to the first outer surface 322 of the connecting portion 32 along the direction facing the electrode assembly 10. The terminal body 34 further includes a second recess 35 recessed from the second inner surface 345 to the first inner surface 321 of the connecting portion 32 along the direction away from the electrode assembly.

[0244] In the embodiment of the present application, the thickness of the connection portion 32 is reduced by simultaneously providing the first recess 31 and the second recess 35, thereby reducing the requirement for the depth of the first recess 31 and simplifying the molding process. The provision of the second recess 35 also increases the internal space of the battery cell 7 and increases the energy density.

[0245] In some embodiments, the current collecting member 40 includes a terminal connection portion 46 and a tab connection portion 47 surrounding the outside of the terminal connection portion 46, and the terminal connection portion 46 protrudes from the tab connection portion 47 and extends into the second recess 35 so that the top of the terminal connection portion 46 abuts the first inner surface 321 of the connection portion 32.

[0246] The tab connection portion 47 is located between the cover body 22 and the first tab 11 and is welded to the first annular portion to form a first welded portion W1. Optionally, the tab connection portion 47 may have an annular flat plate structure.

[0247] In some embodiments, a fourth recess 48 is provided at a position corresponding to the terminal connection portion 46 of the current collecting member 40, and the fourth recess 48 is recessed relative to the surface of the tab connection portion 47 facing the first tab 11. The fourth recess 48 can reduce the space occupied by the terminal connection portion 46 and reduce the weight of the current collecting member 40. Illustratively, the terminal connection portion 46 and the fourth recess 48 are formed by stamping the current collecting member 40.

[0248] FIG. 13 is a schematic local cross-sectional view of a battery cell provided according to yet another embodiment of the present application.

[0249] As shown in FIG. 13 , in some embodiments, the terminal body 34 has a second outer surface 344 and a second inner surface 345 arranged along the first direction X, and the first recess 31 is recessed from the second inner surface 345 to the first inner surface 321 of the connection portion 32 along a direction away from the electrode assembly.

[0250] In this embodiment, by providing the first recess 31 inside the terminal body 34, the flatness and area of ​​the second outer surface 344 can be ensured, making it easier to connect the terminal body 34 to external junction components. By providing the first recess 31 inside the terminal body 34, the internal space of the battery cell 7 can be increased, and the energy density can also be increased.

[0251] In some embodiments, the current collecting member 40 includes a terminal connection portion 46 and a tab connection portion 47 surrounding the outside of the terminal connection portion 46, and the terminal connection portion 46 protrudes from the tab connection portion 47 and extends into the first recess 31 so that the top of the terminal connection portion 46 abuts the first inner surface 321 of the connection portion 32.

[0252] The tab connection portion 47 is located between the cover body 22 and the first tab 11 and is welded to the first annular portion to form a first welded portion W1. Optionally, the tab connection portion 47 may have an annular flat plate structure.

[0253] In some embodiments, a fourth recess 48 is provided at a position corresponding to the terminal connection portion 46 of the current collecting member 40, and the fourth recess 48 is recessed relative to the surface of the tab connection portion 47 facing the first tab 11. The fourth recess 48 can reduce the space occupied by the terminal connection portion 46 and reduce the weight of the current collecting member 40. Illustratively, the terminal connection portion 46 and the fourth recess 48 are formed by stamping the current collecting member 40.

[0254] FIG. 14 is a structural diagram of a battery cell and a junction component according to some embodiments of the present application after they are connected.

[0255] 14 , in some embodiments, the terminal body 34 has a second outer surface 344 and a second inner surface 345 arranged opposite to each other along the first direction, and the first recess 31 is recessed from the second outer surface 344 to the first outer surface 322 of the connecting portion 32 along the direction facing the electrode assembly 10. The electrode terminal 30 further includes a seal plate 33, which is connected to the terminal body 34 and closes the opening of the first recess 31, and is used to be welded to the joining part 8 of the battery to form a third weld W3.

[0256] In the battery, the battery cells 7 are electrically connected via the junction part 8. The third weld W3 can reduce the contact resistance between the seal plate 33 and the junction part 8 and increase the current passing capacity.

[0257] Optionally, in a battery, the junction piece 8 connects the seal plate 33 of one battery cell 7 with the lid of another battery cell, thereby connecting the two battery cells in series.

[0258] In some embodiments, at least a portion of the seal plate 33 protrudes from the second outer surface 344 of the terminal body 34 .

[0259] When it is necessary to weld the junction part 8 and the seal plate 33, the junction part 8 is first attached to the upper surface of the seal plate 33 (i.e., the outer surface away from the connection part of the seal plate 33), and then the junction part 8 and the seal plate 33 are welded together.

[0260] By having at least a portion of the seal plate 33 protrude from the second outer surface 344, it is possible to prevent the second outer surface 344 from interfering with the bonding of the seal plate 33 and the merging part 8, and to ensure close bonding of the merging part 8 and the seal plate 33.

[0261] In some embodiments, at least a portion of the seal plate 33 is received in the first recess 31, and a side wall of the first recess 31 is provided with a stepped surface for supporting the seal plate 33. The seal plate 33 is welded to the side wall of the first recess 31 to form a fourth weld W4, which is used to seal the opening of the first recess 31.

[0262] The fourth welded portion W4 surrounds the outer periphery of the seal plate 33, thereby sealing the gap between the seal plate 33 and the side wall of the first recess 31, and improving the sealing performance of the battery cell 7.

[0263] In some embodiments, in the direction away from the connection, the fourth weld W4 does not extend beyond the upper surface of the seal plate 33, thus avoiding interference between the fourth weld W4 and the junction piece 8.

[0264] In some embodiments, the third weld W3 is located within an area generally surrounded by the fourth weld W4.

[0265] The fourth welded portion W4 surrounds the outside of the third welded portion W3 and is spaced a predetermined distance from the third welded portion W3.

[0266] In this embodiment, when welding the junction part 8 and the seal plate 33, the intersection of the third welded part W3 and the fourth welded part W4 can be avoided, thereby reducing the risk of poor soldering.

[0267] FIG. 15 is a flowchart of a method for manufacturing a battery cell provided according to some embodiments of the present application.

[0268] As shown in FIG. 15, the method for manufacturing a battery cell according to the embodiment of the present application includes the following steps S110 to S150.

[0269] In S110, a housing including a cylindrical body and a lid body connected to the cylindrical body, in which the cylindrical body has an opening at one end away from the lid body and an electrode lead-out hole is provided in the lid body, and a terminal body attached to the electrode lead-out hole is provided.

[0270] In S120, an electrode assembly is provided that includes a first tab, the first tab being disposed around a central axis of the electrode assembly and including a first annular portion.

[0271] In S130, a current collecting member is provided and the current collecting member is connected to the first annular portion.

[0272] In S140, the electrode assembly and the current collecting member are mounted in the housing, and the current collecting member and the terminal body are connected to electrically connect the first tab and the terminal body.

[0273] In S150, a cover plate is provided and connected to the barrel so as to close the opening of the barrel.

[0274] The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion.

[0275] In some embodiments, the terminal body is provided with a first recess, and the connection portion is formed in the terminal body at a bottom of the first recess.

[0276] Step S140 includes the following steps S141 to S142.

[0277] In S141, the electrode assembly and the current collecting member are mounted in the housing, and the current collecting member is pressed against the connection portion.

[0278] In S142, an external welding device is used to weld the connection to the current collecting member by acting on the surface of the connection that faces away from the current collecting member.

[0279] The connecting portion and the current collecting member are welded together using external welding equipment to form a second weld. In this embodiment, the provision of the first recess reduces the thickness of the connecting portion, thereby reducing the welding power required to weld the connecting portion and the current collecting member, reducing heat generation and the risk of burning other components. When welding from the outside, the housing protects the electrode assembly and prevents metal particles generated by welding from scattering onto the electrode assembly, reducing the risk of short circuits.

[0280] In some embodiments, the terminal body has a second outer surface and a second inner surface opposed to each other along the first direction, and the first recess is recessed from the second outer surface to the first outer surface of the connection portion along the direction facing the electrode assembly. The manufacturing method of the battery cell further includes step S160. In step S160, a seal plate is provided, and at least a portion of the seal plate is placed in the first recess so as to close the opening of the first recess, and the seal plate and the sidewall of the first recess are welded together.

[0281] The seal plate protects the connection portion from the outside, reduces external foreign matter entering the first recess, lowers the risk of the connection portion being damaged by external foreign matter, and improves the sealing performance of the battery cell.

[0282] It should be noted that the structures related to the battery cells manufactured by the above-described battery cell manufacturing method can be referenced to the battery cells provided in the above-described embodiments.

[0283] When assembling a battery cell based on the above-described battery cell manufacturing method, the steps do not necessarily have to be performed in the order described above. That is, the steps may be performed in the order described in the embodiments, or in an order different from the order described in the embodiments, or multiple steps may be performed simultaneously. For example, steps S110 and S120 may be performed in a random order or simultaneously.

[0284] FIG. 16 is a schematic block diagram of a battery cell manufacturing system provided in accordance with some embodiments of the present application.

[0285] As shown in FIG. 16, a battery cell manufacturing system 91 according to an embodiment of the present application includes: a first providing device 911 for providing a housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body having an opening at one end away from the lid body, and an electrode lead-out hole provided in the lid body, and a terminal body attached to the electrode lead-out hole; a second presenting device 912 for presenting an electrode assembly including a first tab, the first tab being disposed around a central axis of the electrode assembly and including a first annular portion; a third providing device 913 for providing a current collecting member and connecting the current collecting member to the first annulus; an assembly device 914 for mounting the electrode assembly and the current collecting member within the housing and connecting the current collecting member and the terminal body so as to electrically connect the first tab and the terminal body; a fourth providing device 915 for providing a cover plate and connecting the cover plate to the barrel so as to close the opening of the barrel; The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion.

[0286] The structures related to the battery cells manufactured by the manufacturing system 91 can refer to the battery cells provided by the above-described embodiments.

[0287] FIG. 17 is a flowchart of a method for manufacturing a battery cell provided according to another embodiment of the present application.

[0288] As shown in FIG. 17, the method for manufacturing a battery cell according to the embodiment of the present application includes the following steps S210 to S260.

[0289] In S210, a current collecting member and a terminal body are provided, and the current collecting member and the terminal body are connected.

[0290] In S220, an electrode assembly is provided that includes a first tab, the first tab being disposed around a central axis of the electrode assembly and including a first annular portion.

[0291] In S230, the current collecting member is connected to the first annular portion so as to electrically connect the first tab and the terminal body.

[0292] In S240, a housing is provided that includes a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body having an opening at one end away from the lid body, and the lid body having an electrode lead-out hole.

[0293] In S250, the electrode assembly and the current collecting member are mounted in the housing, and the terminal body is mounted in the electrode lead-out hole.

[0294] In S260, a cover plate is provided and connected to the barrel so as to close the opening of the barrel.

[0295] The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion.

[0296] In some embodiments, step S250 includes steps S251 to S252.

[0297] In S251, the electrode assembly and the current collecting member are mounted in the housing, and the end of the terminal body that is away from the electrode assembly is extended to the outside of the lid through the electrode lead-out hole.

[0298] In S252, the end of the terminal body that is away from the electrode assembly is bent outward to form a flange structure so that the terminal body is attached to the electrode lead-out hole and fixed to the cover.

[0299] The flange structure formed by bending the terminal body outward may be used as the first restricting portion.

[0300] In this embodiment, the terminal body can be fixed to the cover plate by bending the end of the terminal body through a bending process, which simplifies the process of mounting the terminal body and the cover.

[0301] In another embodiment, step S250 includes steps S253 to S254.

[0302] In S253, the electrode assembly and the current collecting member are mounted in the housing, and the end of the terminal body that is away from the electrode assembly is extended to the outside of the lid through the electrode lead-out hole.

[0303] In S254, the end of the terminal body that is away from the electrode assembly is pressed to extend the end outward, thereby forming a restricting structure for fixing the terminal body to the lid.

[0304] The restriction structure formed by pressing may be a first restriction portion.

[0305] In this embodiment, the terminal body can be fixed to the cover plate by pressing the end of the terminal body, which simplifies the process of mounting the terminal body and the cover.

[0306] It should be noted that the structures related to the battery cells manufactured by the above-described battery cell manufacturing method can be referenced to the battery cells provided in the above-described embodiments.

[0307] In a battery cell manufactured by the above-described method for manufacturing a battery cell, the first recess and the seal plate may be omitted.

[0308] When assembling a battery cell based on the above-described battery cell manufacturing method, the steps do not necessarily have to be performed in the order described above. That is, the steps may be performed in the order described in the embodiments, or in an order different from the order described in the embodiments, or multiple steps may be performed simultaneously. For example, steps S210 and S220 may be performed in a random order or simultaneously.

[0309] FIG. 18 is a schematic block diagram of a battery cell manufacturing system provided in accordance with another embodiment of the present application.

[0310] As shown in FIG. 18, a battery cell manufacturing system 92 according to an embodiment of the present application includes: a first providing device 921 for providing a current collecting member and a terminal body and connecting the current collecting member and the terminal body; a second presenting device 922 for presenting the electrode assembly including a first tab, the first tab being disposed around a central axis of the electrode assembly and including a first annular portion; a first assembly device 923 for connecting the current collecting member to the first annular portion so as to electrically connect the first tab and the terminal body; a third providing device 924 for providing a housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body having an opening at one end away from the lid body, and the lid body having an electrode lead-out hole; a second assembly device 925 that installs the electrode assembly and the current collecting member in the housing and installs the terminal body in the electrode lead-out hole; a fourth providing device 926 for providing a cover plate and connecting the cover plate to the barrel so as to close the opening of the barrel; The cylindrical body is arranged to surround the outer periphery of the electrode assembly, and the central axis extends along a first direction and passes through the electrode extraction hole, the first annular portion is arranged opposite the lid body, and the projection of the first annular portion in the first direction does not overlap with the projection of the electrode extraction hole in the first direction, and at least a portion of the collecting member is located between the lid body and the first annular portion.

[0311] The structures related to the battery cells manufactured by the manufacturing system 92 can refer to the battery cells provided by the above-described embodiments.

[0312] It should be noted that, unless there is a conflict, the embodiments and features of the embodiments of the present application can be combined with each other.

[0313] Finally, it should be noted that the above embodiments are only used to explain the technical solutions of the present application, and are not intended to limit the same. Although the present application has been described in detail with reference to the above embodiments, those skilled in the art can still understand that the technical solutions described in the above embodiments can be modified or some of the technical features can be substituted with equivalents, and such modifications and substitutions will not cause the substance of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present application.

Claims

1. an electrode assembly including a first tab, the first tab being provided around a central axis of the electrode assembly; a housing for accommodating the electrode assembly, the housing including a cylindrical body and a lid body connected to the cylindrical body, the cylindrical body surrounding an outer periphery of the electrode assembly, the lid body having an electrode lead-out hole, the central axis extending along a first direction and passing through the electrode lead-out hole, the first tab including a first annular portion provided opposite the lid body, and a projection of the first annular portion in the first direction not overlapping a projection of the electrode lead-out hole in the first direction; an electrode terminal attached to the electrode lead-out hole; a current collecting member located at least partially between the lid and the first annular portion, for connecting the first annular portion and the electrode terminal so as to electrically connect the first tab and the electrode terminal; The battery cell has a structure in which the lid and the cylindrical body are integrally formed.

2. The battery cell according to claim 1 , wherein the central axis and the axis of the electrode lead-out hole overlap each other.

3. The battery cell according to claim 1 or 2, wherein the first annular portion is welded to the current collecting member to form a first weld.

4. a cross section of the first tab perpendicular to the first direction is ring-shaped; 4. The battery cell according to claim 3, wherein an outer radius of the first tab is R, a minimum pitch between the first weld and the central axis in a second direction is D, both of which satisfy 0.2≦D / R≦0.8, and the second direction is a radial direction of the first tab.

5. 5. The battery cell according to claim 3, wherein the current collecting member has a convex portion on a side facing the first tab, and the convex portion is welded to a first annular portion to form the first welded portion.

6. the first tab further includes a second annular portion, the second annular portion being provided opposite the electrode lead-out hole along the first direction, the first annular portion surrounding the outside of the second annular portion, The battery cell according to any one of claims 1 to 5, wherein at least a portion of the second annular portion abuts against the current collecting member.

7. the electrode terminal includes a terminal body having a first recess; 7. The battery cell according to claim 1, wherein a connection portion is formed at the bottom of the first recess in the terminal body, and the connection portion is welded to the current collecting member to form a second weld portion.

8. The battery cell according to claim 7 , wherein the connection portion is provided with a stress relief structure for relieving stress when the connection portion and the current collecting member are welded together.

9. 9. The battery cell according to claim 7, wherein the connection portion has a first through hole for connecting a space on the side of the connection portion away from the electrode assembly to an internal space of the housing.

10. The battery cell according to claim 9 , wherein the first through-hole is used to inject an electrolyte into the internal space of the housing.

11. 11. The battery cell according to claim 9 or 10, wherein a second through hole is provided in the current collecting member, and the second through hole is positioned to face the first through hole so that electrolyte can flow into the internal space of the housing through the second through hole.

12. The battery cell according to claim 11 , wherein a projection of the first through-hole in the first direction is located within a projection of the second through-hole in the first direction.

13. 13. The battery cell according to claim 11, wherein the electrode assembly has a wound structure, the electrode assembly has a third through hole at a winding center, the third through hole penetrates the electrode assembly along the first direction, and the third through hole is provided opposite the first through hole and the second through hole along the first direction so that an electrolyte can flow into the electrode assembly through the third through hole.

14. The battery cell according to claim 13 , wherein a projection of the second through-hole in the first direction is located within a projection of the third through-hole in the first direction.

15. 15. The battery cell of claim 7, wherein the connection portion includes a groove, the second weld portion is formed on a bottom wall of the groove, and the groove is disposed so as to be recessed from the first outer surface of the connection portion in a direction facing the electrode assembly so as to form a gap between the first outer surface of the connection portion and the bottom wall of the groove.

16. 16. The battery cell according to claim 7, wherein the terminal body includes a columnar portion, a first restricting portion, and a second restricting portion, the columnar portion being at least partially located within the electrode extraction hole, the first recess being provided on the columnar portion, the first restricting portion and the second restricting portion being both connected to an outer wall of the columnar portion and protruding therefrom, the first restricting portion and the second restricting portion being provided on the outer side and the inner side of the lid body in the first direction, respectively, and being used to clamp a portion of the lid body.

17. the battery cell further includes a first insulating member and a second insulating member, at least a portion of the first insulating member being provided between the first restricting portion and the lid, and at least a portion of the second insulating member being provided between the second restricting portion and the lid, The battery cell according to claim 16 , wherein the first insulating member and the second insulating member are used to separate the terminal body and the cover body so as to insulate them from each other.

18. The first insulating member and the second insulating member are integrally formed, or The battery cell according to claim 17 , wherein the first insulating member and the second insulating member are provided separately and abut each other.

19. 19. The battery cell according to claim 17, wherein one of the first insulating member and the second insulating member is used to seal the electrode lead-out hole.

20. The battery cell according to any one of claims 16 to 19, wherein a plurality of protrusion structures are provided on an outer periphery of the first restricting portion, and the plurality of protrusion structures are provided at intervals in the circumferential direction of the columnar portion.

21. The battery cell according to claim 20 , wherein the first restricting portion has a flange structure formed by bending outward from an end of the terminal body that is distant from the electrode assembly.

22. The battery cell according to any one of claims 16 to 21, wherein the second restricting portion is a restricting structure formed by pressing an end of the terminal body facing the electrode assembly, causing the end of the terminal body facing the electrode assembly to extend outward.

23. 23. The battery cell according to claim 7, wherein the terminal body has a second outer surface and a second inner surface that are opposed to each other along the first direction, and the first recess is recessed from the second outer surface to the first outer surface of the connection portion along a direction facing the electrode assembly.

24. 24. The battery cell according to claim 23, wherein the electrode terminal further includes a seal plate, the seal plate being connected to the terminal body and closing the opening of the first recess.

25. 25. The battery cell of claim 24, wherein a stepped surface is provided on a side wall of the first recess, at least a portion of the seal plate is accommodated in the first recess, and the stepped surface is used to support the seal plate.

26. 26. The battery cell according to claim 24, wherein a gap is provided between the seal plate and the connection portion to avoid the second weld portion.

27. The battery cell according to any one of claims 23 to 26, wherein the connection portion is provided at one end of the terminal body facing the electrode assembly, and the first inner surface and the second inner surface of the connection portion are flush with each other.

28. The battery cell according to any one of claims 23 to 26, wherein the terminal body further includes a second recess recessed from the second inner surface to the first inner surface of the connection portion in a direction away from the electrode assembly.

29. 29. The battery cell of claim 28, wherein the current collecting member includes a terminal connection portion and a tab connection portion surrounding the outside of the terminal connection portion, and the terminal connection portion protrudes from the tab connection portion and extends into the second recess so that a top of the terminal connection portion abuts against a first inner surface of the connection portion.

30. 23. The battery cell according to claim 7, wherein the terminal body has a second outer surface and a second inner surface that are opposed to each other along the first direction, and the first recess is recessed from the second inner surface to the first inner surface of the connection portion along a direction away from the electrode assembly.

31. 31. The battery cell of claim 30, wherein the current collecting member includes a terminal connection portion and a tab connection portion surrounding the outside of the terminal connection portion, and the terminal connection portion protrudes from the tab connection portion and extends into the first recess so that a top of the terminal connection portion abuts against a first inner surface of the connection portion.

32. the terminal body has a second outer surface and a second inner surface that are provided opposite to each other along the first direction, and the first recess is recessed from the second outer surface to the first outer surface of the connection portion along a direction facing the electrode assembly; 30. The battery cell according to claim 7, wherein the electrode terminal further includes a seal plate, the seal plate being connected to the terminal body, closing the opening of the first recess, and being welded to a joining part of the battery to form a third weld.

33. 33. The battery cell of claim 32, wherein at least a portion of the seal plate protrudes from the second outer surface of the terminal body.

34. At least a portion of the seal plate is accommodated in the first recess, and a stepped surface for supporting the seal plate is provided on a side wall of the first recess, 34. The battery cell of claim 32 or 33, wherein the seal plate is welded to a side wall of the first recess to form a fourth weld, and the fourth weld is used to seal an opening of the first recess.

35. 35. The battery cell of claim 34, wherein the third weld is located entirely within an area surrounded by the fourth weld.

36. The electrode assembly further includes a second tab provided around a central axis of the electrode assembly, the first tab and the second tab are provided at both ends of the electrode assembly in the first direction, The battery cell according to any one of claims 1 to 35, wherein the cylindrical body is used to connect the second tab and the lid body so as to electrically connect the second tab and the lid body.

37. 37. The battery cell of claim 36, wherein the second tab is a negative tab and the base material of the housing is steel.

38. The battery cell according to any one of claims 1 to 37, wherein the cylindrical body has an opening at one end remote from the lid body, and the battery cell further includes a lid plate for closing the opening.

39. A battery comprising a plurality of battery cells according to any one of claims 1 to 38, and a junction component for electrically connecting at least two of the battery cells.

40. 40. A power consuming device comprising the battery of claim 39 for providing electrical energy.

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