Insulating films, battery cells, batteries, and power consumption devices

The insulating film with integrated side cover regions and overlap portions enhances waterproofing and airtightness, addressing the waterproofing deficiencies in lithium-ion batteries and mitigating thermal runaway risks.

JP7843822B2Active Publication Date: 2026-04-10CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
Filing Date
2024-11-25
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing lithium-ion battery packaging methods fail to adequately address waterproofing in the height direction, leading to low waterproof performance and potential safety risks from thermal runaway.

Method used

An insulating film with alternately arranged first and second side cover regions, including bottom shielding portions and side overlap portions, forms a housing space that enhances waterproofing by integrating these components to create a sealed containment space.

Benefits of technology

The insulating film improves airtightness and waterproofing, preventing thermal runaway emissions from scattering and reducing short circuits and high-voltage ignitions in lithium-ion batteries.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a battery cell, a battery, a method for manufacturing a battery cell, and power consumption equipment.SOLUTION: A battery cell of the present invention, includes: a battery core; and an insulating film. The insulating film includes: a bottom surface covering region; and a plurality of first side surface covering regions and a plurality of second side surface regions which are alternately installed. Each side of the bottom surface covering regions is connected to one first side surface covering region and one second side surface region. The first side surface covering region includes a bottom portion shielding portion and two side surface overlapping portions. The bottom side of the bottom portion shielding portion is connected to one side in the bottom surface covering region. The two side surface overlapping portions are coupled to two second side surface covering regions on both sides of the first side surface covering region, and the bottom portion shielding portion of the plurality of first side surface covering regions and a second side covering region are positioned at the same side of the bottom surface covering region in such a manner that the covering regions form a housing space. The two side surface overlapping portions are laminated on the bottom portion shielding portion in such a manner that the two side surface overlapping portions seal the bottom portion of the housing space. The present application can achieve an object of waterproof.SELECTED DRAWING: Figure 2
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Description

Technical Field

[0001] This application relates to the field of battery technology, and particularly to an insulating film, a battery cell, a battery, a method for manufacturing a battery cell, manufacturing equipment for a battery cell, and an electric power consumption device.

Background Art

[0002] With the increasing environmental pollution, the new energy industry has been attracting more and more attention. As a rechargeable lithium-ion secondary battery, it has become an important component of many electronic products, energy storage products, and electric vehicles, and its performance directly affects the promotion and use of related products.

[0003] For a lithium-ion battery, in order to prevent water vapor from entering the inside of the battery cell, generally, a laminated material composed of one layer of metal and two layers of plastic is used to package the battery cell.

[0004] However, the above packaging method of the battery cell generally cannot solve the waterproof problem in the height direction of the battery, thereby resulting in relatively low waterproof performance of the lithium battery.

Summary of the Invention

[0005] This application provides a battery, an electric power consumption device, a method for manufacturing a battery, and a device that can reduce safety accidents caused by thermal runaway of the battery.

[0006] The insulating film according to the first aspect of this application includes a bottom cover region, and a plurality of alternately arranged first side cover regions and second side cover regions. The total number of the first side cover regions and the second side cover regions is equal to the number of sides of the bottom cover region. Each side of the bottom cover region is connected to one of the first side cover regions or the second side cover regions. The first side cover region includes a bottom shielding portion and two side overlapping portions, the bottom edge of the bottom shielding portion is connected to one side of the bottom cover region, and the two side overlapping portions are connected to the two second side cover regions on either side of the first side cover region, respectively. The bottom shielding portions of the multiple first side cover regions and the second side cover regions are all located on the same side of the bottom cover region so as to form a storage space, and the two side overlapping portions are stacked on the bottom shielding portions so as to seal the bottom of the storage space.

[0007] By alternately arranging a first side cover region and a second side cover region, each including a bottom shielding portion and two side overlapping portions, on the same side of the bottom cover region, and by combining the bottom shielding portion and the adjacent second side cover region with the bottom cover region, a housing space for accommodating battery cells can be formed. Furthermore, by stacking the two side overlapping portions on the bottom shielding portion, the two side overlapping portions are connected to the neighboring second side cover regions, thereby achieving a sealing effect on the housing space, improving the waterproof performance of this insulating film, and achieving the objective of waterproofing the battery.

[0008] In some embodiments, the two sides of the bottom shielding portion are connected to the two side overlapping portions, respectively.

[0009] By connecting the two sides of the bottom shielding portion to the two overlapping side portions, each part of the insulating film can be connected as a single unit, thereby further improving the airtightness of the containment space surrounded by the insulating film.

[0010] In some embodiments, the bottom shielding portion includes an intermediate region and a first side region and a second side region connected to both sides of the intermediate region, wherein one side of the first side region is connected to the side overlap portion, and the other side of the second side region is connected to the other side overlap portion. The first side region, the side overlap portion connected to the first side region, the second side region, and the side overlap portion connected to the second side region are all stacked on the intermediate region.

[0011] By connecting the side of the first side region to one of its overlapping side sections and the side of the second side region to the other overlapping side section, the bottom shielding section can be integrally connected to the two overlapping side sections, thereby improving the airtightness of the structure. At the same time, by stacking the first side region, the second side region, and the overlapping side sections on the intermediate region, the compactness of the structure can be improved, and the matching of the shape of the housing space with the battery can be ensured.

[0012] In some embodiments, the side overlap portion includes a connected upper region and a lower region, the lower region covering the entire first side region or the entire second side region. Alternatively, the lower region covers a portion of the first side region or a portion of the second side region, and the remaining portion of the first side region or the remaining portion of the second side region is covered by the upper region.

[0013] The lower region partially covers a portion of the first or second side region, and the remaining portion of the first or second side region is covered by the upper region. As a result, there is a side overlap portion outside the first and second side regions, and the adhesive structure on this side overlap portion can fix the side overlap portion onto the intermediate region, thereby improving the rigidity of the laminated structure and further improving the sealing performance of the insulating film.

[0014] In some embodiments, the upper region and the lower region are integrally connected to the neighboring second side cover region.

[0015] In some embodiments, the total length of the sides of the upper region and the lower region connected to the second side cover region is the same as the length of the corresponding side of the second side cover region and is aligned and connected.

[0016] By connecting them as a single unit and having equal total length, it is possible to avoid gaps between the side overlap portion and the second side cover area, thereby achieving the objective of waterproofing.

[0017] In some embodiments, the upper region is rectangular, the lower region is triangular, and the length of the side of the upper region connected to the lower region is greater than or equal to the length of the side of the lower region connected to the upper region.

[0018] In some embodiments, the length of the side overlap portion from the side away from the connected second side cover region to the other second side cover region is less than the first preset length.

[0019] This ensures a gap between the side overlap portion and the other second side cover region, which facilitates the lamination of the entire first side cover region and subsequent adhesive sealing.

[0020] In some embodiments, the bottom edge of the bottom shielding portion and the corresponding edge of the bottom cover area are of the same length and are aligned and connected.

[0021] This design helps to avoid gaps between the bottom shielding section and the bottom cover area to a certain extent, thereby achieving the objective of waterproofing.

[0022] In some embodiments, a first adhesive structure is applied to the bottom of the first side cover region, the bottom edge of the first adhesive structure is flush with the bottom edge of the first side cover region, and a second predetermined length is provided between the side edge of the first adhesive structure and the side edge of the first side cover region.

[0023] The first adhesive structure is for achieving the purpose of further sealing the bottom region of the insulating film.

[0024] In some embodiments, the height of the first adhesive structure is greater than the height of the bottom shielding portion.

[0025] Thereby, it is determined that the first adhesive structure can seal the bottom shielding portion. Thereby, the first adhesive structure achieves the purpose of further sealing the bottom region of the insulating film.

[0026] In some embodiments, the accommodation space is for covering the battery core or the battery module.

[0027] In some embodiments, the inner wall of the accommodation space is adhesively connected to the battery core or the battery module.

[0028] The inner wall of the accommodation space in the insulating film further needs to be adhesively connected to the battery module, thereby realizing the relative fixation between the insulating film and the battery module.

[0029] In some embodiments, the material of the insulating film is a waterproof material.

[0030] The battery cell according to the second aspect of the present application includes a battery core and the above-mentioned insulating film. The battery core has a case. The bottom surface covering region of the insulating film is covered on the bottom wall of the case, and the first side surface covering region and the second side surface covering region of the insulating film are covered on the side wall of the case so that the battery core is at least partially covered by the accommodation space of the insulating film.

[0031] The battery according to the third aspect of the present application includes a plurality of the above-mentioned battery cells.

[0032] The battery according to the fourth aspect of the present application includes the above-mentioned insulating film and a plurality of battery cores. The plurality of battery cores are covered by the accommodation space of the insulating film. A second adhesive structure for connecting to an adjacent battery core is applied to the first side cover region of the insulating film used to cover the battery core.

[0033] In some embodiments, in the height direction of the battery cell, the second adhesive structure is located above the first adhesive structure of the insulating film, and the second adhesive structure and the first adhesive structure are separated by a predetermined distance.

[0034] In some embodiments, the viscosity of the second adhesive structure is greater than that of the first adhesive structure, and the waterproofness of the second adhesive structure is lower than that of the first adhesive structure.

[0035] In some embodiments, the thickness of the second adhesive structure is greater than the thickness of the first adhesive structure.

[0036] A method for manufacturing a battery cell according to a fifth aspect of this application is: To provide a battery core having a case, The present invention provides an insulating film for covering the case, wherein the bottom cover region of the insulating film covers the bottom wall of the case, and the first and second side cover regions of the insulating film cover the side walls of the case, such that the case is at least partially covered within the housing space of the insulating film.

[0037] A battery cell manufacturing apparatus according to the sixth aspect of this application is: A first apparatus for providing a battery core having a case, The apparatus includes a second apparatus for providing the insulating film for covering the case, wherein the bottom cover region of the insulating film covers the bottom wall of the case, and the first and second side cover regions of the insulating film cover the side walls of the case, such that the case is at least partially covered within the housing space of the insulating film.

[0038] A power-consuming device according to the seventh aspect of this application includes the above-mentioned battery. [Brief explanation of the drawing]

[0039] To more clearly illustrate the embodiments of this application or the technical solutions in the prior art, the drawings necessary for describing the embodiments or the prior art will be briefly described below. However, it is clear that the drawings in the following description are only a few embodiments of this application, and those skilled in the art can obtain other drawings based on these without expending any creative effort.

[0040] The drawings described herein are provided for further understanding of this application and constitute part of this application. The exemplary embodiments and descriptions herein are for interpretation purposes only and do not constitute an inappropriate limitation of this application. [Figure 1A] This is a schematic diagram of the structure of a power consumption device according to an embodiment of this application. [Figure 1B] This is a schematic diagram of the battery structure according to an embodiment of this application. [Figure 1C] This is a schematic diagram of the structure of a battery module according to an embodiment of this application. [Figure 1D] This is a schematic diagram of the structure of a battery cell according to an embodiment of this application. [Figure 2] This is a schematic diagram of the insulating film structure according to the embodiment of this application. [Figure 3] This is a schematic diagram of the structure of the first side cover region in the insulating film according to the embodiment of this application. [Figure 4] This is a schematic diagram of the structure of another first side cover region according to an embodiment of the present application. [Figure 5] This is a schematic diagram of the structure of an insulating film on which the first adhesive structure according to the embodiment of this application is installed. [Figure 6] This is a schematic diagram of the structure of an insulating film on which a second adhesive structure according to the embodiment of this application is installed. [Figure 7] This is a flowchart of the method for manufacturing a battery cell according to the embodiment of this application. [Figure 8] This is a block diagram of a battery cell manufacturing apparatus according to an embodiment of this application. [Modes for carrying out the invention]

[0041] To clarify the purpose, technical solutions, and advantages of this application, the application will be described in more detail below, with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are merely for interpretation purposes and are preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent modifications made based on the structure, shape, and principles of this application should be included within the scope of protection of this application.

[0042] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as that generally understood by those skilled in the art. The terms used in the specification of this application are intended to describe specific embodiments and are not intended to limit this application. The terms “including,” “having,” and any variations thereof in the description of the specification, claims, and drawings of this application are intended to cover the non-exclusive “including.”

[0043] The “Examples” as used herein mean that certain features, structures, or characteristics described in conjunction with the Examples may be included in at least one Example of this Application. The term “Examples” as used in various parts of the Specification does not necessarily refer to the same Example, nor are they mutually exclusive or alternative to other Examples. Those skilled in the art will understand, both explicitly and implicitly, that the Examples described herein may be combined with other Examples.

[0044] In this specification, the term "and / or" merely describes the relationship between related objects, and indicates that there may be three possible relationships. For example, A and / or B may represent three cases: A alone, A and B as a combination, or B alone. In this specification, the letter " / " generally indicates that the preceding and following related objects are in an "or" relationship.

[0045] Furthermore, terms such as "first," "second," etc., in the specification and claims of this application or in the drawings above are intended to distinguish different subjects and not to describe a specific order, and may explicitly or implicitly include one or more of these features.

[0046] In the description of this application, unless otherwise specified, "multiple" means two or more (including two), and similarly, "multiple sets" means two or more sets (including two sets).

[0047] In the description of this application, unless otherwise specifically defined and limited, the terms “attach,” “connect,” and “connect” should be understood broadly. For example, “connection” or “connection” in a mechanical structure may refer to a physical connection, which may be a fixed connection, such as a fixed connection via a fixing member, such as a fixed connection via a screw, bolt or other fixing member; a removable connection, such as a mutually locking or engaging connection; or a joint connection, such as a joint made by welding, bonding or molding. In a circuit structure, “connection” or “connection” may refer to a physical connection, an electrical connection or a signal connection, which may be a direct connection, i.e., a physical connection; an indirect connection via at least one intermediate element (as long as the circuit is connected); or internal communication between two elements. A signal connection may be a signal connection via a circuit; or a signal connection via a medium, such as radio waves. Those skilled in the art will be able to understand the specific meaning of the above terms in the embodiments of this application, depending on the specific circumstances.

[0048] In the following embodiments, several directional terms may be used to clearly describe each direction. For example, the coordinate system in Figure 1D defines the directions of the battery, where the x-direction represents the length direction of the battery cell 400, the y-direction is perpendicular to the x-direction in the horizontal plane and represents the width direction of the battery cell 400, and the z-direction is perpendicular to both the x and y directions and represents the height direction of the battery. The x-direction, y-direction, z-direction, etc., described above are intended to explain that the expression of the direction of operation and configuration of each component of the battery in this embodiment is relative, not absolute. These directions are appropriate when each component of the battery is in the position shown in the figure, but when these positions change, these directions should have different interpretations to accommodate the changes.

[0049] Based on the same understanding of direction, the directions or positional relationships indicated in the description of this application by terms such as "center," "vertical," "horizontal," "length," "width," "thickness," "top," "bottom," "front," "back," "left," "right," "vertical," "horizontal," "top," "bottom," "inside," "outside," "clockwise," "counterclockwise," "axial," "radial," and "circumferential" are based on the directions or positional relationships shown in the drawings and are for the convenience or simplification of the description of this application. They do not indicate or imply that the referred devices or elements have a specific direction or need to be configured and operated in a specific direction, and should not be understood as limiting this application.

[0050] Rechargeable batteries may also be called secondary batteries or power batteries. Currently, widely used rechargeable batteries include, but are not limited to, lithium batteries, such as lithium-sulfur batteries, sodium-lithium-ion batteries, or magnesium-ion batteries. For convenience of description, rechargeable batteries may be referred to as batteries in this specification.

[0051] Battery safety characteristics are an important factor in evaluating batteries, and it is necessary to ensure the safety of batteries as much as possible during use or charging.

[0052] Batteries are generally composed of multiple battery cells connected and combined. When a battery cell experiences conditions such as an external short circuit, overcharging, nail impact, or plate collision, it becomes susceptible to thermal runaway. When a battery cell experiences thermal runaway, it generates exhaust fumes, which include substances such as high-temperature flue gas (which can cause direct flames in severe cases) and volatile high-temperature electrolyte. The heat diffusion of these fumes during exhaust can cause other battery cells to experience thermal runaway, potentially leading to explosions and other accidents. To make it clear, the exhaust fumes from battery cells referred to in this application include, but are not limited to, electrolyte, dissolved or separated positive and negative electrode plates, separator fragments, high-temperature and high-pressure gases generated by the reaction, and flames.

[0053] The applicant discovered that when a battery cell experiences thermal runaway, it can cause problems such as short circuits and high-voltage ignition in surrounding battery cells.

[0054] In response to this problem, the inventor applied insulation to multiple parts inside the battery, but this still did not solve problems such as short circuits and high-voltage ignition when the battery cell overheated. Further research led the applicant to discover that these problems, such as short circuits and high-voltage ignition due to thermal runaway of the battery cell, were caused by waste products discharged from inside the battery coming into contact with bus components.

[0055] In view of this, this application provides a battery that can prevent high-temperature emissions ejected from a battery cell from scattering onto bus components when the battery cell experiences thermal runaway, thereby reducing the occurrence of short circuits and high-voltage ignition problems in the battery cell. Therefore, the battery of this application can control the thermal runaway state of the battery cell in a timely manner, prevent further generation of heat and high-temperature emissions, and avoid the scattering of the high-temperature emissions onto bus components, thereby reducing the occurrence of short circuits and high-voltage ignition in the battery cell.

[0056] The battery in the embodiment of this application can be used in various power-consuming devices that can be powered by electrical energy. The power-consuming device here may be, but is not limited to, an electric vehicle, a train, an electric bicycle, a golf cart, a drone, or a steamship. Furthermore, the power-consuming device may be a device that is powered solely by a battery, or it may be a hybrid device. The battery supplies electrical energy to the power-consuming device and drives the electric device with a motor.

[0057] For example, Figure 1A shows a schematic diagram of the structure of a power consumption device according to one embodiment of the present application. The power consumption device may be an automobile, which may be a fuel oil vehicle, a gas vehicle, or a new energy vehicle, and the new energy vehicle may be a pure electric vehicle, a hybrid vehicle, or a range extender vehicle. The automobile includes a battery 200, a controller 210, and a motor 220. The battery 200 is for supplying power to the controller 210 and the motor 220 as the operating power and driving power source of the automobile, for example, the battery 200 is for meeting the operating power demands of the automobile during startup, navigation, and driving. For example, the battery 200 supplies power to the controller 210, the controller 210 controls the battery 200 to supply power to the motor 220, and the motor 220 receives power from the battery 200 and uses it as the driving power source of the automobile, providing driving power to the automobile in place of or in part of fuel oil or natural gas.

[0058] In order to achieve relatively high functionality in the battery and meet usage demands, the battery 200 may include a plurality of interconnected battery modules, as shown in Figure 1B, the battery 200 includes a first case 201, a second case 202, and a plurality of battery modules 300, the first case 201 and the second case 202 engaging with each other, and the plurality of battery modules 300 arranged in the space surrounded by the first case 201 and the second case 202.

[0059] As shown in Figure 1C, the battery module 300 includes a plurality of battery cells 400, which may be connected in series, parallel, or series-parallel configurations to achieve a relatively large current or voltage, where series-parallel configuration refers to a combination of series and parallel configurations. Subsequently, as shown in Figure 1C, the battery cells 400 may be arranged upright, with the height direction of the battery cells 400 coinciding with the z direction and the length direction of the battery cells 400 coinciding with the x direction, and the plurality of battery cells 400 arranged side by side in the y direction along their width direction, or the battery cells 400 may be arranged horizontally, with the width direction of the battery cells 400 coinciding with the z direction and the length direction of the battery cells 400 coinciding with the x direction, and the plurality of battery cells 400 may be stacked in at least one layer along the z direction, with each layer containing a plurality of battery cells 400 spaced apart along the x direction.

[0060] To enable those skilled in the art to clearly understand the improvements of this application, the overall structure of the battery cell 400 will first be described.

[0061] As shown in Figure 1D, the battery cell 400 includes a battery core, which includes a case 40, an electrode component 30, and an end cap component 10. The end cap component 10 includes an end cap plate 10', which is connected (e.g., welded) to the case 40 to form the housing of the battery cell 400. The electrode component 30 is installed inside the case 40, and the case 40 is filled with electrolyte. The battery cell 400 may be cubic, rectangular, or cylindrical in shape.

[0062] Depending on the actual usage requirements, one or more electrode components 30 may be installed. As shown in Figure 1D, at least two independently wound electrode components 30 may be installed in the battery. The electrode component 30 may form a main body by winding or laminating together a first electrode plate, a second electrode plate, and a separator located between adjacent first and second electrode plates, the separator being an insulator between adjacent first and second electrode plates. The main body has two opposing end faces. In this embodiment, the first electrode plate is described as the positive electrode plate and the second electrode plate as the negative electrode plate as an example. The positive electrode active material is applied to the coated area of ​​the positive electrode plate, and the negative electrode active material is applied to the coated area of ​​the negative electrode plate. Multiple uncoated areas extending from the coated area of ​​the main body are laminated as tabs. The electrode component includes two tabs 301, namely a positive electrode tab and a negative electrode tab. The positive electrode tab extends from the coated area of ​​the positive electrode plate, and the negative electrode tab extends from the coated area of ​​the negative electrode plate.

[0063] The end cap component 10 is provided on the top of the electrode component 30. As shown in Figure 1D, the end cap component 10 includes an end cap plate 10' and two electrode terminals 5, the two electrode terminals 5 being a positive terminal and a negative terminal, respectively. A connecting member 20 is installed corresponding to each electrode terminal 5, and the connecting member 20 is located between the end cap 10' and the electrode component 30.

[0064] For example, in Figure 1D, the tab 301 of the electrode component 30 is located at the top, the positive electrode tab is connected to the positive electrode terminal by one connecting member 20, and the negative electrode tab is connected to the negative electrode terminal by the other connecting member 20. Optionally, the battery cell 400 may also include two end cap components 10 located at both ends of the case 40, with one terminal 5 located on each end cap component 10.

[0065] An explosion-proof component may be further installed on the end cap plate 10' to release gas from the battery cell 400 in a timely manner when there is too much gas inside the battery cell 400, thereby preventing an explosion.

[0066] An exhaust port is provided on the end cap plate 10', and the exhaust port may be located at an intermediate position along the length of the end cap 10'. The explosion-proof member includes a pressure relief mechanism 6, which is located on the exhaust port. Under normal conditions, the pressure relief mechanism 6 is sealed and installed over the exhaust port. However, if the pressure inside the housing rises above a preset value due to battery expansion, the pressure relief mechanism 6 is activated and opens, releasing the gas to the outside.

[0067] In some embodiments, as shown in Figure 1D, a through-hole is provided on the end cap plate 10' for injecting electrolyte into the battery core 400. The through-hole may be a circular hole, a conical hole, a polygonal hole, or a hole of other shape, and may extend along the height direction of the end cap plate 10'. A liquid injection member 2 is provided on the end cap plate 10' for sealing the through-hole.

[0068] As shown in Figures 2 and 3, embodiments of the present application provide an insulating film for covering a battery core 400. The insulating film includes a bottom cover region 210 and a plurality of alternately arranged first side cover regions 220 and second side cover regions 230, wherein the bottom cover region 210 is for covering the bottom of the battery core 400, and the plurality of alternately arranged first side cover regions 220 and second side cover regions 230 are for covering the sides of the battery core 400, the total number of first side cover regions 220 and second side cover regions 230 is equal to the number of sides of the bottom cover region 210, and each side of the bottom cover region 210 is connected to one first side cover region 220 or one second side cover region 230, thereby ensuring that the bottom cover region 210 can be substantially seamlessly connected to the first side cover regions 220 and second side cover regions 230.

[0069] In the embodiments of this application, the multiple first side cover regions 220 and second side cover regions 230 are all located on the same side of the bottom cover region 210 so as to form a housing space. As shown in Figure 2, this housing space is for housing the battery core 400.

[0070] In the embodiments of this application, the first side cover region 220 includes a bottom shielding portion 221 and two side overlap portions 222, wherein the bottom edge of the bottom shielding portion 221 is connected to one side of the bottom cover region 210 in order to connect the bottom cover region 210 and the first side cover region 220, and the two side overlap portions 222 are connected to the two second side cover regions 230 on either side of the first side cover region 220, respectively.

[0071] Furthermore, the bottom shielding portions 221 of the multiple first side cover regions 220 and the second side cover region 230 are all located on the same side of the bottom cover region 210 so as to form a containment space, and the two side overlapping portions 222 are stacked on the bottom shielding portion 221 so as to seal the bottom of the containment space, thereby providing a waterproof effect.

[0072] In the insulating film according to the embodiment of this application, a first side cover region 220 including a bottom shielding portion 221 and two side overlapping portions 222, and a second side cover region 230 are alternately installed on the same side of the bottom cover region 210, and by combining the bottom shielding portion 221 and the adjacent second side cover region 230 with the bottom cover region 210, a housing space for housing a battery core can be formed. Furthermore, by stacking the two side overlapping portions 222 on the bottom shielding portion 221, the two side overlapping portions 222 are connected to the neighboring second side cover region 230, respectively, thereby achieving a sealing effect on the housing space, further improving the waterproof performance of the insulating film, and achieving the objective of waterproofing the battery core.

[0073] In actual applications, the above connection method and stacking method may be determined according to the actual situation. For example, the bottom shielding portion 221 and the second side cover region 230 may be integrally connected to the bottom cover region 210, the side overlap portion 222 may be integrally connected to the second side cover region 230, and an adhesive structure may be installed on one side of the side overlap portion 222 that is stacked on the bottom shielding portion 221, thereby allowing it to be stacked on the bottom shielding portion 221 by adhesive.

[0074] In the embodiments of this application, an adhesive structure may be installed on one side close to the insulating film's accommodating space in order to easily fix the battery core within the insulating film's accommodating space, thereby adhering the insulating film to the battery core. Of course, any other method that can achieve a fixed connection between the battery core and the insulating film is also covered within the scope of this application.

[0075] In the embodiment of this application, by connecting the two sides of the bottom shielding portion 221 to the two side overlap portions 222, each part of the insulating film can be connected integrally, thereby further improving the airtightness of the containment space surrounded by the insulating film.

[0076] As shown in Figure 3, the bottom shielding portion 221 includes an intermediate region 2211 and a first side region 2212 and a second side region 2213 connected to both sides of the intermediate region 2211. The side of the first side region 2212 is connected to one side overlap portion 222, and the side of the second side region 2213 is connected to the other side overlap portion 222. The first side region 2212, the side overlap portion 222 connected to the first side region 2212, the second side region 2213, and the side overlap portion 222 connected to the second side region 2213 are all stacked on the intermediate region 2211.

[0077] By connecting the side of the first side region 2212 to one side overlap portion 222 and the side of the second side region 2213 to the other side overlap portion 222, the bottom shielding portion 221 can be integrally connected to the two side overlap portions 222, thereby improving the airtightness of the structure. At the same time, by stacking the first side region 2212, the second side region 2213 and the side overlap portions 222 on the intermediate region 2211, the compactness of the structure can be improved, and the matching of the shape of the housing space with the battery core can be ensured.

[0078] Furthermore, by applying an adhesive structure to one side of the intermediate region 2211 and the side overlap portion 222 that is closer to the battery core, the laminated structure can be fixed onto the battery core, thereby achieving the objectives of fixing and sealing.

[0079] In actual applications, the specific structural forms of the bottom shielding portion 221 and the side overlap portion 222 may be installed in multiple types depending on the actual needs. In addition to the insulating film structure shown in Figure 3, the embodiment of this application provides a schematic diagram of another insulating film structure shown in Figure 4.

[0080] In the insulating film provided in Figure 4, the side overlap portion 222 includes a connected upper region 2221 and a lower region 2222, the lower region 2222 covering a portion of the first side region 2212 or a portion of the second side region 2213, and the remaining portion of the first side region 2212 or the remaining portion of the second side region 2213 being covered by the upper region 2221.

[0081] In the insulating film provided in Figure 3, the lower region 2222 covers either the entire first side region 2212 or the entire second side region 2213.

[0082] Compared to the insulating film structure shown in Figure 3, the insulating film shown in Figure 4 has an additional side overlap portion 222 outside the first side region 2212 and the second side region 2213. The adhesive structure on this side overlap portion 222 can fix the side overlap portion 222 onto the intermediate region 2211, thereby improving the rigidity of the laminated structure and further improving the sealing performance of the insulating film.

[0083] To improve the waterproofness of the insulating film and ensure the integration of each component within the insulating film, the upper region 2221 and the lower region 2222 are integrally connected to the adjacent second side cover region 230. The total length of the sides of the upper region 2221 and the lower region 2222 connected to the second side cover region 230 is the same as the length of the corresponding side of the second side cover region 230, and they are connected in alignment. This avoids a gap between the side overlap portion 222 and the second side cover region 230, thereby achieving the objective of waterproofing. The method of integral connection may be adhesive connection or integral molding, but is not particularly limited in the embodiments of this application.

[0084] In one optional embodiment of the present invention, the upper region 2221 may be rectangular, the lower region 2222 may be triangular, and the length of the side of the upper region 2221 connected to the lower region 2222 is greater than or equal to the length of the side of the lower region 2222 connected to the upper region 2221. Figure 3 shows a situation where the sides are equal at the connection point between the upper region 2221 and the lower region 2222, and Figure 4 shows a situation where, at the connection point, the length of the side of the upper region 2221 is greater than the length of the side of the lower region 2222.

[0085] It should be noted that the upper region 2221 and the lower region 2222 may have other structural forms besides those described above, such as trapezoids or polygons, and different structural forms may be installed depending on the actual situation and needs, but the embodiments of this application are not particularly limited to them.

[0086] As shown in Figure 5, the length D from the side of the side overlap portion 222 away from the second side cover region 230 connected to it, to the other second side cover region 230, is smaller than the first predetermined length. This ensures a gap between the side overlap portion 222 and the other second side cover region 230, which is useful for lamination and subsequent adhesive sealing of the entire first side cover region 220.

[0087] In the embodiments of this application, in order to further seal the laminated structure, as shown in Figure 5, a first adhesive structure 510 is applied to the bottom of the first side cover region 220, and the bottom edge of this first adhesive structure 510 is flush with the bottom edge of the first side cover region 220, and a second predetermined length is ensured between the side edge of the first adhesive structure 510 and the side edge of the first side cover region 220. The second predetermined length must be smaller than the first predetermined length, thereby ensuring that a portion of the first adhesive structure 510 is covered by the side edge of the side overlap portion 222, and achieving the objective of sealing the side overlap portion 222.

[0088] Furthermore, the height of the first adhesive structure 510 must be greater than the height of the bottom shielding portion 221, thereby enabling the first adhesive structure 510 to seal the bottom shielding portion 221. This allows the first adhesive structure 510 to achieve the objective of further sealing the bottom region of the insulating film.

[0089] In one embodiment of the present application, the material of the first adhesive structure 510 is:

[0090] Similarly, to improve the waterproofness of the insulating film and ensure the integration of each component within the insulating film, the bottom edge of the bottom shielding portion 221 and the corresponding edge of the bottom cover region 210 are of the same length and are aligned and connected. This prevents gaps from forming between the bottom shielding portion 221 and the bottom cover region 210, thereby achieving the objective of waterproofing.

[0091] In the embodiments of this application, the height of the insulating film is greater than the height of the battery core 400. Specifically, the heights of the first side cover region 220 and the second side cover region 230 are greater than the height of the battery core 400, thereby achieving the objective of waterproofing the entire battery core 400 in the height direction.

[0092] In practical applications, in addition to the connections between different parts within the insulating film, the inner walls of the containment space in the insulating film also need to be bonded to the battery core, thereby achieving relative fixation between the insulating film and the battery core. The embodiments of this application do not specifically limit the adhesive locations and bonding methods.

[0093] In the embodiments of this application, the insulating film housing space may cover not only the battery core, but also the battery module 300 composed of multiple battery cores, and the multiple battery cores may be connected in different ways.

[0094] In the actual covering of the battery module 300, the bottom cover region 210 of the insulating film covers the bottom of the battery module 300, and the multiple first side cover regions 220 and second side cover regions 230 cover the sides of the battery module 300, so that the battery module 300 is covered within its housing space.

[0095] Since the specific structural form of the insulating film matches that of the battery core 400, it will not be explained further here. The inner wall of the housing space in the insulating film must be bonded to the battery module 300, thereby achieving relative fixation between the insulating film and the battery module 300.

[0096] In the embodiments of this application, by covering the battery core 400 or battery module 300 with an insulating film, both insulating and waterproofing effects can be achieved, while the cost is relatively low and the occupied space is relatively small.

[0097] It should be emphasized that the insulating film material is a waterproof material. For example, the insulating film is formed by compounding a substrate and an adhesion layer. The substrate may be a polymer material such as polyethylene, polypropylene, polyethylene terephthalate, polyamide, styrene-acrylate copolymer, polystyrene, or polyamide, and the adhesion layer may be a polymer material such as acrylic resin, epoxy resin, polyurethane, amino resin, or phenolic resin.

[0098] In actual applications, the thickness of the insulating film may be 25 to 400 μm, the substrate thickness may optionally be 20 to 200 μm, for example 50 μm, and the adhesion layer thickness may be 5 to 200 μm, for example 20 μm.

[0099] In another embodiment, the embodiments of the present application further provide a battery cell comprising a battery core and the insulating film described above, as shown in Figure 4, the battery core 400 has a case, the bottom wall 401 of the case is covered with a bottom cover region of the insulating film, and the side walls 402 of the case are covered with a first side cover region and a second side cover region of the insulating film, so that the battery core is at least partially covered in the housing space of the insulating film. The specific structural form and installation location of the insulating film have been described in detail in the above embodiments and will not be described further in this embodiment.

[0100] In another embodiment, the present application further provides a battery comprising a plurality of the above-described battery cells. The specific structural forms of the battery cells have been described in detail in the above embodiments and will not be described further in these embodiments.

[0101] In summary, in the battery according to the embodiment of this application, by installing the battery cell such that an insulating film is coated on the outside of the battery core in the battery cell, an insulating effect can be achieved, preventing short circuits in the battery core and providing a waterproof effect.

[0102] In another embodiment, the present application further provides a battery comprising the above-mentioned insulating film and a plurality of battery cores, wherein the plurality of battery cores are covered with the insulating film in a accommodating space, and the battery cores covered with the insulating film are interconnected.

[0103] As shown in Figure 6, a second adhesive structure 610 for connecting to an adjacent battery core 400 is applied to the first side cover region of the insulating film for covering the battery core 400.

[0104] In the height direction of the battery core 400, the second adhesive structure 610 is located above the first adhesive structure 510 of the insulating film, and the second adhesive structure 610 and the first adhesive structure 510 are separated by a predetermined distance, thereby preventing the first adhesive structure 510 from tearing due to the second adhesive structure 610, which has relatively high strength, pulling on the first adhesive structure 510.

[0105] In one embodiment of the present invention, the viscosity of the second adhesive structure 610 is greater than that of the first adhesive structure 510, and the waterproofness of the second adhesive structure 610 is lower than that of the first adhesive structure 510. The first adhesive structure 510 mainly performs the function of waterproofing and sealing, while the second adhesive structure 610 mainly performs the function of connecting and fixing.

[0106] In one embodiment of the present invention, to test the waterproofness of the second adhesive structure 610, a battery is placed in a metal container containing 0.3-3.5% saltwater, with the saltwater level 2-5 mm lower than the total height of the battery. The resistance of the battery is then measured with a multimeter, and if the measured resistance is greater than a preset threshold, for example, 1 Mohm, it is determined that the waterproofness of the second adhesive structure 610 meets the standard.

[0107] Specifically, in the process of measuring resistance with a multimeter, one end of the test probe is placed on the surface of the battery's metal cap, the other end on the surface of the metal container, a voltage of 0.1V is applied, and the resistance result is recorded to complete the resistance measurement.

[0108] Furthermore, in order to avoid adhesion between the first adhesive structures 510 corresponding to adjacent battery cores 400, the thickness of the second adhesive structure 610 is greater than the thickness of the first adhesive structure 510. The specific thickness may be determined on a case-by-case basis, but is not particularly limited in the embodiments of this application.

[0109] In one embodiment of the embodiments of this application, the material of the second adhesive structure 610 may be a mixture of at least one or both polyurethane and epoxy resin.

[0110] In another embodiment, the present application further provides a method for manufacturing a battery cell. As shown in Figure 7, this method for manufacturing a battery cell may include the following steps.

[0111] Step S710 provides a battery core having a case.

[0112] Step S720, the above insulating film is provided for covering the case, such that the case is at least partially covered by the housing space of the insulating film, the bottom cover region of the insulating film covers the bottom wall of the case, and the first and second side cover regions of the insulating film cover the side walls of the case.

[0113] The specific details of the manufacturing methods for each of the above-mentioned battery cells are described in detail in the corresponding examples of battery cells and insulating films, and will not be explained further here.

[0114] In another embodiment, the present application further provides a battery cell manufacturing apparatus. Referring to Figure 8, a block diagram of a battery cell manufacturing apparatus according to an embodiment of the present application is shown. As shown in Figure 8, this battery cell manufacturing apparatus 800 is A first apparatus 810 that can be used to provide a battery core having a case, The present invention may also include a second apparatus 820 that can be used to provide the above-mentioned insulating film for covering the case, wherein the bottom cover region of the insulating film covers the bottom wall of the case, and the first and second side cover regions of the insulating film cover the side walls of the case, such that the case is at least partially covered with the accommodating space of the insulating film.

[0115] The specific details of the manufacturing equipment for each of the above-mentioned battery cells are described in detail in the corresponding examples of battery cells and insulating films, and will not be explained further here.

[0116] In another embodiment, the present application further provides a power consumption device, which includes the above-mentioned battery for supplying electrical energy. The specific structural form and operating principle of the battery have been described in detail in the above embodiments and will not be described further in this embodiment.

[0117] The features of each of the protected themes and embodiments described above in this application are mutually referential, and, where the structure allows, those skilled in the art can flexibly combine the technical features of different embodiments to form more embodiments.

[0118] The insulating film, battery cell, battery, method for manufacturing a battery cell, equipment for manufacturing a battery cell, and power consumption device described above have been explained in detail. While specific examples have been used to describe the principles and embodiments of this application, these examples are intended only to aid in understanding the methods and core ideas of this application. It should be noted that those skilled in the art can make some improvements and modifications to this application, provided they do not deviate from the principles, and these improvements and modifications are also within the scope of protection of the claims of this application.

Claims

1. A battery cell comprising a battery core and an insulating film, The insulating film includes a bottom cover region and a plurality of alternately arranged first and second side cover regions. The total number of the first side cover region and the second side cover region is equal to the number of sides of the bottom cover region. Each side of the bottom cover region is connected to one of the first side cover regions or the second side cover region. The first side cover region includes a bottom shielding portion and two side overlapping portions. The bottom edge of the bottom shielding portion is connected to one side of the bottom cover region, and the two side overlap portions are connected to the two second side cover regions on either side of the first side cover region, The bottom shielding portion of the multiple first side cover regions and the second side cover region are all located on the same side of the bottom cover region so as to form a storage space, and the two side overlapping portions are stacked on the bottom shielding portion so as to seal the bottom of the storage space. The battery cell is characterized in that the battery core has a case, the bottom wall of the case is covered with the bottom cover region of the insulating film, and the side walls of the case are covered with the first side cover region and the second side cover region of the insulating film, such that the battery core is at least partially covered within the housing space of the insulating film.

2. The battery cell according to claim 1, characterized in that the two sides of the bottom shielding portion are connected to the two side overlap portions, respectively.

3. The bottom shielding portion includes an intermediate region and a first side region and a second side region connected to both sides of the intermediate region, wherein the side of the first side region is connected to one of the side overlap portions, and the side of the second side region is connected to the other side overlap portion. The battery cell according to claim 2, characterized in that the first side region, the side overlap portion connected to the first side region, the second side region, and the side overlap portion connected to the second side region are all stacked on the intermediate region.

4. The battery cell according to claim 3, wherein the side overlap portion includes a connected upper region and a lower region, and the lower region covers the entire first side region or the entire second side region.

5. The battery cell according to claim 4, characterized in that the upper region and the lower region are integrally connected with the adjacent second side cover region.

6. The battery cell according to claim 5, characterized in that the total length of the sides of the upper region and the lower region connected to the second side cover region is the same as the length of the corresponding side of the second side cover region and is connected in an aligned manner.

7. The battery cell according to any one of claims 4 to 6, characterized in that the upper region is rectangular, the lower region is triangular, and the length of the side of the upper region connected to the lower region is greater than or equal to the length of the side of the lower region connected to the upper region.

8. The battery cell according to any one of claims 1 to 6, characterized in that the length of the side overlap portion from the side away from the connected second side cover region to the other second side cover region is smaller than a first preset length that ensures adhesive sealing of the entire first side cover region.

9. The battery cell according to any one of claims 1 to 6, characterized in that the bottom edge of the bottom shielding portion and the corresponding edge of the bottom cover area are of the same length and are connected in an aligned manner.

10. The battery cell according to any one of claims 1 to 6, characterized in that a first adhesive structure is applied to the bottom of the first side cover region, the bottom edge of the first adhesive structure is flush with the bottom edge of the first side cover region, and the side edge of the first adhesive structure is separated from the side edge of the first side cover region by a second predetermined length, ensuring that a part of the first adhesive structure is covered by the side edge of the side overlap portion.

11. The battery cell according to claim 10, characterized in that the height of the first adhesive structure is greater than the height of the bottom shielding portion.

12. The battery cell according to claim 1, characterized in that the aforementioned housing space is for covering a battery core or battery module.

13. The battery cell according to claim 12, characterized in that the inner wall of the housing space is adhesively connected to the battery core or the battery module.

14. The battery cell according to claim 1, characterized in that the insulating film material is a waterproof material.

15. A battery characterized by comprising a plurality of battery cells as described in any one of claims 1 to 6.

16. A battery comprising a battery cell as described in any one of claims 1 to 6, Multiple battery cores are covered in the housing space of the insulating film, A battery characterized in that a second adhesive structure for connecting to an adjacent battery core is applied to the first side cover region of the insulating film for covering the battery core.

17. The battery according to claim 16, characterized in that, in the height direction of the battery core, the second adhesive structure is located above the first adhesive structure of the insulating film, and the second adhesive structure and the first adhesive structure are separated by a predetermined distance.

18. The battery according to claim 17, characterized in that the viscosity of the second adhesive structure is greater than the viscosity of the first adhesive structure, and the waterproofness of the second adhesive structure is lower than the waterproofness of the first adhesive structure.

19. The battery according to claim 18, characterized in that the thickness of the second adhesive structure is greater than the thickness of the first adhesive structure.

20. A method for manufacturing a battery cell according to any one of claims 1 to 6, To provide a battery core having a case, To provide the insulating film for covering the case, Includes, A method for manufacturing a battery cell, characterized in that the bottom cover region of the insulating film covers the bottom wall of the case, and the first and second side cover regions of the insulating film cover the side walls of the case, such that the case is at least partially covered within the housing space of the insulating film.

21. A power-consuming device characterized by including the battery described in claim 16.

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