Housing, battery, electrical device, method and apparatus for manufacturing battery

The housing design secures thermal management components within the battery housing using a bent fixing member to prevent corrosion and enhance safety by addressing the risks of high-temperature and high-pressure effluents.

JP7741310B2Active Publication Date: 2025-09-17CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
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Patent Information

Application Number
JP2024518171
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-01-13
Filing Date
2023-01-05
Publication Date
2025-09-17
Estimated Expiration
2043-01-05

AI Technical Summary

Technical Problem

Battery safety issues, particularly due to high-temperature and high-pressure effluents, are not adequately addressed by conventional thermal management components, which are prone to corrosion and can cause short circuits and further safety hazards.

Method used

A housing design that fixes thermal management components to the battery housing using a fixing member that is bent around a fitting hole, forming a stopper portion to secure the component without damaging its surface treatment, thereby preventing corrosion and improving safety.

Benefits of technology

The solution effectively reduces the risk of corrosion and short circuits by securing the thermal management component without altering its surface treatment, enhancing the safety and stability of battery operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present embodiment provides a housing, a battery, an electric device, and a method and apparatus for manufacturing a battery, the housing (10) including a housing body (110) for accommodating a plurality of battery cells (20), a fixing member (120) fixedly connected to the housing body (110), and a thermal management component (130) for adjusting the temperature of the plurality of battery cells (20), the thermal management component (130) having a fitting hole for guiding the fixing member (120) to pass through the thermal management component (130), the fixing member (120) being disposed to pass through the fitting hole and be bent around the fitting hole to fix the thermal management component (130) to the housing body (110). The housing, the battery, the electric device, and the method and apparatus for manufacturing a battery of the present embodiment can improve the safety of the battery.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to Chinese Patent Application No. 202210038777.1, filed on January 13, 2022, entitled "Housing, Battery, Electrical Device, and Method and Apparatus for Manufacturing Battery," which is incorporated herein by reference in its entirety.

[0002] FIELD OF THE INVENTION This application relates to the field of battery technology, and more particularly to housings, batteries, electrical devices, and methods and apparatus for manufacturing batteries. [Background technology]

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

[0004] In the development of battery technology, in addition to improving battery performance, safety issues cannot be ignored. If battery safety issues cannot be addressed, the battery cannot be used. Therefore, how to improve battery safety is an issue that must be resolved as soon as possible in battery technology. Summary of the Invention

[0005] The present application provides a housing, a battery, an electrical device, and a method and apparatus for manufacturing a battery that can improve the safety of the battery.

[0006] In a first aspect, the present invention provides a housing including a housing main body for accommodating a plurality of battery cells, a fixing member fixedly connected to the housing main body, and a thermal management component for adjusting the temperature of the plurality of battery cells, the thermal management component having a fitting hole for guiding the fixing member to pass through the thermal management component, wherein the fixing member passes through the fitting hole and is bent around the fitting hole to fix the thermal management component to the housing main body.

[0007] In this embodiment, the thermal management component is introduced to adjust the temperature of the battery cell, and the temperature of the battery cell can be reduced in a timely manner when high-temperature and high-pressure effluent is discharged from inside the battery cell, further improving the safety of the battery.

[0008] Furthermore, by simply modifying the structure of the fixing member, the thermal management component can be fixed to the housing main body, and this fixing form is simple and easy to achieve, and does not destroy the surface treatment of the thermal management component, thereby preventing corrosion of the thermal management component and further improving the safety of the battery.

[0009] In one possible embodiment, the fixing member is arranged so as to be crimped to form a stopper portion around the fitting hole for fixing the thermal management component to the housing body.

[0010] In this embodiment, a stopper portion is formed by performing a crimping process on the fixing member, so that the thermal management component is restricted between the stopper portion and one wall of the housing body, and the presence of the stopper portion restricts the movement of the thermal management component away from the one wall of the housing body, thereby fixing the thermal management component to the housing body.

[0011] In one possible embodiment, before being crimped, the fixing member has a diameter that gradually increases along a direction away from a connection point between the fixing member and the housing body.

[0012] In this embodiment, before the fixing member is crimped, the opening of the fixing member has a trumpet-like shape, which is advantageous for the crimping process on the fixing member, and the stopper portion formed after the crimping process can better fix the thermal management component to the housing main body.

[0013] In one possible embodiment, the fixing member is fixed to a first wall of the housing body that is parallel to the thermal management component, and the fixing member is used to fix the thermal management component to the first wall.

[0014] In this embodiment, by fixing the thermal management component to the first wall of the housing body that is parallel to the thermal management component, it is possible to reduce the need to change the thermal management component and the complexity of installing the thermal management component.

[0015] In one possible embodiment, the thermal management component is further adhered to the first wall by a structural adhesive.

[0016] In this embodiment, in addition to fixing the thermal management component to the first wall with a fixing member, the thermal management component is adhered to the first wall with a structural adhesive, thereby increasing the fixing strength between the thermal management component and the first wall.

[0017] In one possible embodiment, the maximum distance from the fixing member to the first wall after being folded is equal to or less than the maximum distance from the thermal management component to the first wall.

[0018] In this embodiment, by making the maximum distance from the fixing member to the first wall after bending less than the maximum distance from the thermal management component to the first wall, the installation of multiple battery cells is not hindered, which is advantageous for improving the stability of battery installation.

[0019] In one possible embodiment, the fixing members are distributed at the four corners of the first wall, and the fixing members are arranged symmetrically.

[0020] In this embodiment, the fixing members are distributed and symmetrically arranged at the four corners of the first wall, thereby improving the mounting stability of the thermal management component.

[0021] In one possible embodiment, the fixing member is fixedly connected to the first wall by spot welding.

[0022] In this embodiment, the fixing member is spot-welded to the first wall, thereby increasing the attachment strength between the fixing member and the housing body.

[0023] In a second aspect, a battery is provided that includes a plurality of battery cells and a housing of the first aspect and any possible implementation thereof, wherein the plurality of battery cells are housed within the housing.

[0024] In a third aspect, there is provided an electrical device including a battery of the second aspect for providing electrical energy to the electrical device.

[0025] In a fourth aspect, there is provided a method for manufacturing a battery, which includes providing a plurality of battery cells, and providing a housing including a housing body for accommodating the plurality of battery cells, a fixing member fixedly connected to the housing body, and a thermal management component for regulating the temperature of the plurality of battery cells, the thermal management component having a fitting hole for guiding the fixing member to pass through the thermal management component, wherein the fixing member passes through the fitting hole and is bent around the fitting hole to fix the thermal management component to the housing body.

[0026] In one possible embodiment, providing the housing includes fixing the fixing member to a first wall of the housing body parallel to the thermal management component, passing the fixing member through the mating hole into the thermal management component, and performing a crimping process on the fixing member to form a stopper portion around the mating hole for fixing the thermal management component to the housing body.

[0027] In one possible embodiment, the method comprises Fixing member The above Thermal Management Components The method further includes performing a surface treatment on the first wall to form a protective layer for the thermal management component before penetrating the first wall.

[0028] In one possible embodiment, the fixing of the fixing member to the first wall of the housing body includes fixing the fixing member to the first wall by employing spot welding.

[0029] In a fifth aspect, there is provided an apparatus for manufacturing a battery that includes a provision module used to provide a plurality of battery cells and a housing, wherein the housing includes a housing main body for accommodating the plurality of battery cells, a fixing member fixedly connected to the housing main body, and a thermal management component for regulating the temperature of the plurality of battery cells, the thermal management component having a fitting hole for guiding the fixing member to pass through the thermal management component, wherein the fixing member passes through the fitting hole and is bent around the fitting hole to fix the thermal management component to the housing main body. [Brief explanation of the drawings]

[0030] In order to more clearly explain the technical solutions of the embodiments of the present application, the following briefly describes the drawings to be used in the embodiments of the present application. Obviously, the following drawings only illustrate some embodiments of the present application, and those skilled in the art can further obtain other drawings based on these drawings without any creative efforts.

[0031] [Figure 1] 1 is a structural schematic diagram of a vehicle disclosed in an embodiment of the present application. [Figure 2] 1 is a structural schematic diagram of a battery disclosed in one embodiment of the present application. [Figure 3] 1 is a structural schematic diagram of a battery cell disclosed in an embodiment of the present application. [Figure 4] 1 is a structural schematic diagram of a housing disclosed in an embodiment of the present application. [Figure 5] FIG. 5 is a schematic enlarged view of part A in FIG. 4. [Figure 6] FIG. 5 is another schematic enlarged view of part A of FIG. 4. [Figure 7] FIG. 7 is a schematic enlarged view of the fixing member of FIG. 6. [Figure 8] 1 is a structural schematic diagram of a fixing member provided in an embodiment of the present application before being folded; [Figure 9] FIG. 7 is a top view of the housing shown in FIG. [Figure 10] FIG. 10 is a cross-sectional view taken along the line CC' in FIG. [Figure 11] FIG. 11 is an enlarged schematic view of part D in FIG. [Figure 12] FIG. 1 is a structural schematic diagram of a battery provided in an example of the present application. [Figure 13] 1 is a schematic block diagram of a method for manufacturing a battery according to one embodiment of the present invention. [Figure 14] FIG. 2 is a schematic block diagram of a method for manufacturing another battery according to one embodiment of the present invention. [Figure 15] 1 is a schematic block diagram of an apparatus for manufacturing a battery according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0032] In order to clarify the objectives, technical solutions and advantages of the embodiments of the present application, the following will describe in detail the technical solutions of the embodiments of the present application with reference to the drawings in the embodiments of the present application. Obviously, the embodiments described herein are only a part of the embodiments of the present application, and do not represent all the embodiments of the present application. Any other embodiments that can be obtained by those skilled in the art based on the embodiments of the present application without any creative efforts are within the scope of the present application.

[0033] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains. The terms used herein are for the purpose of describing specific embodiments only and are not intended to limit the present application. The terms "comprise" and "have," as well as any variations thereof, in the specification, claims, and brief description of the drawings of this application are intended to cover a non-exclusive inclusion. Terms such as "first" and "second" in the specification, claims, or drawings of this application are used to distinguish between different objects, not to imply a particular order or subordinate relationship.

[0034] All directional terms used in the following description refer to the directions shown in the drawings and do not limit the specific structure of the present application. In the description of the present application, unless otherwise specified or limited, technical terms such as "attach," "connect," and "connect" should be understood in a broad sense. For example, they may refer to fixed connection, detachable connection, or integral connection, and may be directly connected or indirectly connected via an intermediate medium. Those skilled in the art will be able to understand the specific meaning of these terms in the present application according to the specific circumstances.

[0035] The term "embodiment" as used herein means that any combination of specific features, structures, or characteristics described in the embodiment may be included in at least one embodiment of the present application. Appearances of this term in various places in the present specification do not necessarily refer to the same embodiment, nor do they imply mutually exclusive, independent, or alternative embodiments with other embodiments. Those skilled in the art will understand, explicitly or implicitly, that the embodiments described herein can be combined with other embodiments.

[0036] In the description of this application, unless otherwise specified or limited, the technical terms "attach," "connect," "couple," "mount," etc. should be understood in a broad sense. For example, they may refer to a fixed connection, a detachable connection, or an integral connection, and may refer to 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 these terms in this application depending on the specific circumstances.

[0037] The term "and / or" in this application merely describes the relationship between related objects, and means that there are three possible relationships. For example, "A and / or B" can mean just A, both A and B, or just B. In addition, " / " in this text generally indicates that the related objects before and after it have an "or" relationship.

[0038] As used herein, "plurality" means two or more (including two); similarly, "multiple sets" means two or more sets (including two sets); and "multiple sheets" means two or more (including two sheets).

[0039] In the embodiments of the present application, the battery cells may include, but are not limited to, lithium-ion secondary batteries, lithium-ion primary batteries, lithium-sulfur batteries, sodium-lithium ion batteries, sodium ion batteries, or magnesium ion batteries. The battery cells may be cylindrical, flat, rectangular, or have other shapes, but are not limited to these. Battery cells are generally classified into three types, namely, cylindrical cells, prismatic cells, and pouch-type cells, depending on the packaging method, but are not limited to these.

[0040] The battery referred to in the embodiments of this application is 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 typically includes a housing for packaging one or more battery cells. The housing can prevent liquids and other foreign objects from affecting the charging and discharging of the battery cells.

[0041] A battery cell includes an electrode assembly consisting of a positive electrode sheet, a negative electrode sheet, and a separator, and an electrolyte. The battery cell operates primarily through the transfer of metal ions between the positive and negative electrode sheets. The positive electrode sheet includes a positive electrode current collector and a positive electrode active material layer. The positive electrode active material layer is coated on the surface of the positive electrode current collector. The positive electrode current collector without the positive electrode active material layer protrudes from the positive electrode current collector with the positive electrode active material layer coated thereon, and the positive electrode current collector without the positive electrode active material layer is called a positive electrode tab. For example, in a lithium-ion battery, the positive electrode current collector may be made of aluminum, and the positive electrode active material may be lithium cobalt oxide, lithium iron phosphate, ternary lithium, lithium manganese oxide, etc. The negative electrode sheet includes a negative electrode current collector and a negative electrode active material layer. The negative electrode active material layer is coated on the surface of the negative electrode current collector. The negative electrode current collector without the negative electrode active material layer protrudes from the negative electrode current collector with the negative electrode active material layer coated thereon. The negative electrode current collector without the negative electrode active material layer is called a negative electrode tab. The negative electrode current collector may be made of copper, and the negative electrode active material may be carbon or silicon. To allow a large current to pass without fusing, multiple positive electrode tabs are stacked, and multiple negative electrode tabs are stacked. The separator may be made of PP or PE. The electrode assembly may have a wound structure or a stacked structure, and the embodiments of the present application are not limited thereto. The development of battery technology requires simultaneous consideration of various design factors, such as performance parameters such as energy density, cycle life, discharge capacity, and charge / discharge rate, as well as battery safety.

[0042] The main safety risk for battery cells is the charge / discharge process. To ensure proper environmental temperature design and effectively prevent unnecessary losses, battery cells typically have at least three protective measures. Specifically, these include at least a switching element, the selection of an appropriate separator material, and a pressure relief device. A switching element is a device that can stop the charging or discharging of a battery when the temperature or resistance within the battery cell reaches a certain threshold. A separator separates the positive and negative electrode sheets. When the temperature rises to a certain level, the micropores attached to the separator automatically dissolve, preventing metal ions from passing through the separator and terminating the internal reaction of the battery cell.

[0043] The pressure release means is an element or component that activates to release the internal pressure or temperature of a battery cell when the internal pressure or temperature reaches a predetermined threshold. The predetermined threshold varies depending on design needs. The threshold may be determined by one or more of the materials of the battery cell, including the positive electrode sheet, the negative electrode sheet, the electrolyte, and the separator. The pressure release means may take the form of, for example, an explosion-proof valve, an air valve, a pressure release valve, or a safety valve. Specifically, the pressure release means may be a pressure- or temperature-sensitive element or structure. That is, when the internal pressure or temperature of the battery cell reaches a predetermined threshold, the pressure release means activates or a weak structure provided in the pressure release means breaks, forming an opening or passage for releasing the internal pressure or temperature.

[0044] As used herein, "activation" means that the pressure relief means operates or is activated to a certain state, thereby releasing the internal pressure or temperature of the battery cell. Operation by the pressure relief means may include, but is not limited to, cases where at least a portion of the pressure relief means is broken, crushed, torn, or opened. When the pressure relief means operates, high-temperature, high-pressure materials inside the battery cell are released as discharged material from the activated location. By releasing the pressure in the battery cell in a situation where the pressure or temperature is controllable, a potentially more serious accident can be avoided.

[0045] The term "emissions from battery cells" as used herein includes, but is not limited to, electrolyte, dissolved or decomposed positive and negative electrode sheets, separator fragments, high-temperature and high-pressure gases resulting from reactions, and flames.

[0046] The pressure relief means on the battery cell has a significant impact on battery safety. For example, if a battery cell is short-circuited or overcharged, thermal runaway may occur inside the battery cell, causing a sudden rise in pressure and temperature. In such cases, activating the pressure relief means releases the internal pressure and temperature to the outside, preventing the battery cell from exploding or catching fire.

[0047] Conventional pressure relief device designs focus primarily on releasing the high pressure and heat inside a battery cell, i.e., discharging the discharged materials to the outside of the battery cell. However, to ensure the battery's output voltage or current, multiple battery cells are often required, and the multiple battery cells are electrically connected to each other by bus components. Discharged materials from inside a battery cell may cause short circuits in other battery cells. For example, if discharged metal chips electrically connect two bus components, this may cause a short circuit in the battery, posing a safety concern. Furthermore, high-temperature and high-pressure discharged materials may be discharged toward the location of the battery cell's pressure relief device, more specifically, toward the area where the pressure relief device operates. Such discharged materials may be extremely powerful and destructive, even sufficient to destroy one or more structures in that direction, potentially posing further safety concerns.

[0048] Therefore, a thermal management component is typically provided inside a battery to adjust the temperature of the battery cells. Specifically, the thermal management component contains a fluid and is used to adjust the temperature of the battery cells. Here, the fluid may be a liquid or a gas, and adjusting the temperature means heating or cooling the battery cells. When cooling or lowering the temperature of the battery cells, the thermal management component contains a cooling fluid to lower the temperature of the battery cells. In this case, the thermal management component may be referred to as a cooling component, cooling system, or cooling plate, and the contained fluid may be referred to as a cooling medium or cooling fluid, or more specifically, a coolant or cooling gas. Furthermore, the thermal management component may be used to heat the battery cells to increase their temperature, but the present embodiment is not limited thereto. Optionally, the fluid may circulate to achieve a better temperature adjustment effect. Optionally, the fluid may be water, a mixture of water and ethylene glycol, air, or the like.

[0049] Current thermal management components are often installed inside a battery in a sandwich configuration. Specifically, the thermal management component is placed between one wall of the battery housing and a steel plate, and the wall of the housing and the steel plate are welded to form a cavity to accommodate the thermal management component. However, welding affects the surface treatment of the thermal management component, and thermal management components fixed in a sandwich configuration are prone to corrosion.

[0050] In view of this, the present embodiment provides a technical solution in which the thermal management component can be fixedly connected to the housing body by bending the fixing member, in a manner that is simple and easy to implement and does not destroy the surface treatment of the thermal management component, thereby preventing corrosion of the thermal management component.

[0051] The technical solutions described in the embodiments of the present application can be applied to various devices that use batteries, such as mobile phones, portable devices, laptops, electric bicycles, electric toys, power tools, electric vehicles, ships, and spacecraft, and spacecraft include, for example, airplanes, rockets, space shuttles, and spaceships.

[0052] As will be understood, the technical solutions described in the embodiments of the present application are not only applicable to the above-mentioned devices, but also to all devices that use batteries. For the sake of simplicity, all of the following embodiments will be described using electric vehicles as examples.

[0053] For example, FIG. 1 shows a structural schematic diagram of a vehicle 1 according to one embodiment of the present application. The vehicle 1 may be a gasoline-powered vehicle, a natural gas-powered vehicle, or a new energy vehicle, and the new energy vehicle may be a pure electric vehicle, a hybrid vehicle, or a range-extended electric vehicle. A motor 80, a controller 60, and a battery 100 may be provided inside the vehicle 1. The controller 60 controls the battery 100 to supply power to the motor 80. The battery 100 may be provided at the bottom, head, or rear of the vehicle 1. The battery 100 is used to power the vehicle 1. For example, the battery 100 can be used to power the electrical system of the vehicle 1 as an operating power source for the vehicle 1, for example, to meet the needs for power during starting, navigation, and operation while the vehicle 1 is running. In another embodiment of the present application, the battery 100 not only functions as an operating power source for the vehicle 1 but also functions as a power source for driving the vehicle 1, thereby providing driving power to the vehicle 1 as a replacement or partial replacement for gasoline or natural gas.

[0054] According to different power needs, a battery may include multiple battery cells. The multiple battery cells may be connected in series, parallel, or series-parallel, with series-parallel connection meaning a mixture of series and parallel connections. A battery is also called a battery pack. Optionally, multiple battery cells may first be connected in series, parallel, or series-parallel to form a battery module, and then multiple battery modules may be further connected in series, parallel, or series-parallel to form a battery. That is, multiple battery cells may directly form a battery, or may first form a battery module, and then the battery module may form a battery.

[0055] For example, FIG. 2 is a structural schematic diagram of a battery 100 according to an embodiment of the present application. The battery 100 may include a plurality of battery cells 20. The battery 100 may further include a housing (also referred to as a cover), the interior of which is hollow, and the plurality of battery cells 20 are housed within the housing. As shown in FIG. 2, the housing includes two parts, a first part 111 and a second part 112, and the first part 111 and the second part 112 may be engaged with each other. The shapes of the first part 111 and the second part 112 may be determined by the shape of the combined battery cells 20, and both the first part 111 and the second part 112 may have an opening. For example, the first part 111 and the second part 112 may both be hollow rectangular parallelepipeds, each with only one open surface, with the opening of the first part 111 and the opening of the second part 112 facing each other, and the first part 111 and the second part 112 may be engaged with each other to form a housing having a sealed cavity. A plurality of battery cells 20 are connected in parallel, in series, or in series-parallel with each other and then placed in the housing formed by the engagement of the first part 111 and the second part 112.

[0056] Optionally, the battery 100 may further include other structures, which will not be described in detail here. For example, the battery 100 may further include bus components for realizing electrical connection between the multiple battery cells 20, for example, series connection, parallel connection, or series-parallel connection. Specifically, the bus components can connect the electrode terminals of the battery cells 20 to realize the electrical connection between the battery cells 20. Furthermore, the bus components can be fixed to the electrode terminals of the battery cells 20 by welding. Electrical energy from the multiple battery cells 20 may further be extracted through the housing by conductive means. Optionally, the conductive means may belong to the bus components.

[0057] The number of battery cells 20 can be set to any number according to various power needs. Multiple battery cells 20 may be connected in series, parallel, or series-parallel connection to achieve greater capacity or power. Since each battery 100 may include a large number of battery cells 20, the battery cells 20 may be arranged in groups for easier installation, and each group of battery cells 20 constitutes a battery module. The number of battery cells 20 included in a battery module is not limited and can be set as needed.

[0058] FIG. 3 is a structural schematic diagram of a battery cell 20 according to an embodiment of the present invention. The battery cell 20 includes one or more electrode assemblies 22, a case 211, and a cover plate 212. The walls of the case 211 and the cover plate 212 are collectively referred to as the walls of the battery cell 20. The case 211 may be determined by the shape of one or more electrode assemblies 22. For example, the case 211 may be a hollow rectangular parallelepiped, cube, or cylinder, and one surface of the case 211 may have an opening through which one or more electrode assemblies 22 can be placed inside the case 211. For example, if the case 211 is a rectangular parallelepiped or cube, one plane of the case 211 is an open surface, i.e., the plane has no wall, and the interior and exterior of the case 211 are in communication with each other. If the case 211 is a hollow cylinder, the end surface of the case 211 is an open surface, i.e., the end surface has no wall, and the interior and exterior of the case 211 are in communication with each other. The cover plate 212 covers the opening and is connected to the case 211 to form a sealed cavity for placing the electrode assembly 22. The case 211 is filled with an electrolyte, for example, an electrolyte solution.

[0059] The battery cell 20 may include two electrode terminals 214, which may be provided on the cover plate 212. The cover plate 212 is generally flat, and the two electrode terminals 214 are fixed to the flat surface of the cover plate 212, and the two electrode terminals 214 are a positive terminal 214a and a negative terminal 214b, respectively. Corresponding to each electrode terminal 214, a connecting member 23, also referred to as a current collecting member 23, is provided, which is located between the cover plate 212 and the electrode assembly 22 and establishes an electrical connection between the electrode assembly 22 and the electrode terminal 214.

[0060] As shown in FIG. 3 , each electrode assembly 22 has a first tab 221a and a second tab 222a. The first tab 221a has an opposite polarity to the second tab 222a. For example, when the first tab 221a is a positive electrode tab, the second tab 222a is a negative electrode tab. The first tab 221a of one or more electrode assemblies 22 is connected to one electrode terminal via one connecting member 23, and the second tab 222a of one or more electrode assemblies 22 is connected to another electrode terminal via another connecting member 23. For example, the positive electrode terminal 214a is connected to the positive electrode tab via one connecting member 23, and the negative electrode terminal 214b is connected to the negative electrode tab via another connecting member 23.

[0061] In the battery cell 20, one or more electrode assemblies 22 may be provided according to actual usage needs. As shown in FIG. 3, the battery cell 20 is provided with four independent electrode assemblies 22.

[0062] For example, one wall of the battery cell 20, for example, the first wall 21a shown in Fig. 3, may further be provided with a pressure release means 213. For ease of display, the first wall 21a is separated from the case 211 in Fig. 3, but is not limited to having an opening on the bottom side of the case 211. The pressure release means 213 is activated when the internal pressure or temperature of the battery cell 20 reaches a threshold value, thereby releasing the internal pressure or temperature.

[0063] The pressure release means 213 may be part of the first wall 21a, or may be a separate structure from the first wall 21a and fixed to the first wall 21a by, for example, welding. When the pressure release means 213 is part of the first wall 21a, for example, the pressure release means 213 may be formed by making a notch in the first wall 21a, and the thickness of the first wall 21a corresponding to the notch is smaller than the thickness of the other areas of the pressure release means 213 excluding the notch. The notch is the weakest point of the pressure release means 213. When excessive gas is generated from the battery cell 20 and the internal pressure of the case 211 increases and reaches a threshold value, or when heat generated by an internal reaction in the battery cell 20 increases the internal temperature of the battery cell 20 and reaches a threshold value, the pressure release means 213 ruptures at the notch, connecting the inside and outside of the case 211. The pressure release means 213 is then ruptured, releasing the gas pressure and temperature to the outside, thereby preventing the battery cell 20 from exploding.

[0064] Optionally, in one embodiment of the present application, as shown in FIG. 3, when the pressure release means 213 is provided on the first wall 21a of the battery cell 20, the electrode terminal 214 is provided on another wall of the battery cell 20, and this other wall is not the first wall 21a.

[0065] Optionally, the wall on which the electrode terminal 214 is provided is provided opposite the first wall 21 a. For example, the first wall 21 a may be the bottom wall of the battery cell 20, and the wall on which the electrode terminal 214 is provided may be the top wall of the battery cell 20, i.e., the cover plate 212.

[0066] 3 , the battery cell 20 may further include a shim plate 24 located between the electrode assembly 22 and the bottom wall of the case 211 to support the electrode assembly 22 and effectively prevent interference between the electrode assembly 22 and the rounded corners of the bottom wall of the case 211. The shim plate 24 may have one or more through holes, such as a plurality of uniformly arranged through holes. Alternatively, if a pressure relief means 213 is provided on the bottom wall of the case 211, a through hole may be provided at a position corresponding to the pressure relief means 213 to facilitate the passage of liquid and gas. Specifically, this allows the spaces on the upper and lower surfaces of the shim plate 24 to communicate with each other, allowing both gas and electrolyte generated inside the battery cell 20 to freely pass through the shim plate 24.

[0067] By providing the pressure relief means 213 and the electrode terminal 214 on different walls of the battery cell 20, when the pressure relief means 213 is activated, the discharged matter from the battery cell 20 is further away from the electrode terminal 214, reducing the impact of the discharged matter on the electrode terminal 214 and bus components, thereby improving the safety of the battery.

[0068] Furthermore, when the electrode terminal 214 is provided on the cover plate 212 of the battery cell 20, by providing the pressure release means 213 on the bottom wall of the battery cell 20, when the pressure release means 213 is activated, the waste from the battery cell 20 can be discharged to the bottom of the battery 100. In this way, the risk of waste is reduced by using a thermal management component or the like at the bottom of the battery 100, and since the bottom of the battery 100 is usually away from the user, damage to the user can be reduced.

[0069] The pressure release means 213 may have various possible pressure release structures, and the present embodiment is not limited thereto. For example, the pressure release means 213 may be a temperature-sensitive pressure release means arranged to melt when the internal temperature of the battery cell 20 provided with the pressure release means 213 reaches a threshold, or / and may be a pressure release means 213 arranged to burst when the internal atmospheric pressure of the battery cell 20 provided with the pressure release means 213 reaches a threshold.

[0070] FIG. 4 shows a schematic structural diagram of a housing 10 according to an embodiment of the present invention. FIG. 5 is a schematic enlarged view of portion A in FIG. 4. As shown in FIGS. 4 and 5, the housing 10 includes a housing body 110 for accommodating a plurality of battery cells, a fixing member 120 fixedly connected to the housing body 110, and a thermal management component 130 for regulating the temperature of the plurality of battery cells, the thermal management component 130 having a fitting hole for guiding the fixing member 120 to pass through the thermal management component 130. The fixing member 120 passes through the fitting hole and is bent around the fitting hole to fix the thermal management component 130 to the housing body 110.

[0071] As shown in Fig. 4, the housing body 110 may include an upper housing and a lower housing. In one example, the upper housing and the lower housing may be the first part 111 and the second part 112 shown in Fig. 2, where the first part 111 and the second part 112 are both hollow rectangular parallelepipeds, each with only one open surface, the opening of the first part 111 and the opening of the second part 112 being arranged opposite each other, and the first part 111 and the second part 112 engaging with each other to form the housing body 110 having a sealed cavity.

[0072] In another example, the lower housing is a hollow rectangular parallelepiped with one open side and the upper housing is a single cover plate that covers the open side of the lower housing to form a housing body 110 having a sealed cavity.

[0073] The shape of the housing body 110 may be determined by the shape of a combination of multiple battery cells, and the embodiment of the present application is not limited to this.

[0074] Optionally, in this embodiment, the fixing member 120 may be fixed to any wall of the housing body 110. For example, the fixing member 120 may be fixed to the bottom wall of the housing body 110 or any two opposing side walls of the housing body 110.

[0075] As described above, the thermal management component 130 can accommodate a fluid to regulate the temperature of the plurality of battery cells. Specifically, the thermal management component 130 may be provided with a flow path for accommodating the fluid. For example, the thermal management component 130 may be formed from a first metal plate having a plurality of grooves and a flat second metal plate, and the second metal plate covers the plurality of grooves on the first metal plate to form a plurality of flow paths with cavities.

[0076] The thermal management component 130 has a fitting hole, and the shape of the fitting hole may be determined by the shape of the bottom surface of the fixing member 120. For example, if the bottom surface of the fixing member 120 is circular, the shape of the fitting hole is also circular. Alternatively, if the bottom surface of the fixing member 120 is square, the shape of the fitting hole is also square. However, as will be understood by those skilled in the art, the shape of the fitting hole may be different from the shape of the bottom surface of the fixing member 120. For example, the shape of the fitting hole is square, the shape of the bottom surface of the fixing member 120 is circular, and the length of the side of the square is slightly larger than the diameter of the circle so that the fixing member 120 can pass through the fitting hole.

[0077] Optionally, the fixing member 120 may have a hollow structure with an opening before being bent. For example, if the bottom surface of the fixing member 120 is circular, the fixing member 120 is fixed to the housing body 110 with the opening facing the bottom surface. The side surface of the fixing member 120 can be divided into multiple sub-side surfaces. After the fixing member 120 passes through the fitting hole of the thermal management component 130, the multiple sub-side surfaces of the fixing member 120 are each bent in a direction away from the central axis of the fixing member 120 to fix the thermal management component 130 to the housing body 110.

[0078] Therefore, the housing 10 provided in the present embodiment allows the thermal management component 130 to be fixed to the housing body 110 by simply changing the structure of the fixing member 120, and this fixing form is simple and easy to implement and does not destroy the surface treatment of the thermal management component 130, thereby preventing corrosion of the thermal management component 130.

[0079] Figure 6 is another schematic enlarged view of portion A in Figure 4. Figure 7 is a schematic enlarged view of the fixing member 120 in Figure 6. As shown in Figures 6 and 7, the housing 10 includes a housing main body 110 for accommodating a plurality of battery cells, a fixing member 120 fixedly connected to the housing main body 110, and a thermal management component 130 for regulating the temperature of the plurality of battery cells, the thermal management component 130 having a fitting hole for guiding the fixing member 120 to pass through the thermal management component 130, and the fixing member 120 is arranged to be crimped to form a stopper portion 121 around the fitting hole for fixing the thermal management component 130 to the housing main body 110.

[0080] In other words, the thermal management component 130 may be limited between the stopper portion 121 and one wall of the housing body 110. Optionally, the bottom of the stopper portion 121 may be in close contact with the thermal management component 130.

[0081] Optionally, the cross section of the stopper portion 121 may be circular as shown in FIG. 7 or may be other shapes such as rectangular or triangular, and the present embodiment does not limit the structure of the stopper portion 121 formed by the fixing member 120 after the crimping process.

[0082] Note that the side of the fixing member 120 in FIG. 7 is divided into four sub-sides, but may also be divided into other numbers of sub-sides, and the more sub-sides there are, the easier the fixing member 120 is to be crimped.

[0083] In this embodiment, by performing a crimping process on the fixing member 120 to form a stopper portion 121, the thermal management component 130 is restricted between the stopper portion 121 and one wall of the housing main body 110, and the presence of the stopper portion 121 restricts the movement of the thermal management component 130 in a direction away from the one wall of the housing main body 110, thereby fixing the thermal management component 130 to the housing main body 110.

[0084] 8 shows a schematic structural diagram of the fixing member 120 before being folded. As shown in Fig. 8, the diameter of the fixing member 120 gradually increases along the direction away from the connection point of the fixing member 120 and the housing body 110. In other words, the diameter of the fixing member 120 gradually increases along the direction away from the bottom surface 122 of the fixing member 120, that is, the opening of the fixing member 120 presents a trumpet-like shape.

[0085] Optionally, the fixing member 120 may have a certain degree of flexibility, and the dimensions of the mating hole of the thermal management component 130 may be slightly larger than the dimensions of the bottom surface 122 of the fixing member 120, and before the fixing member 120 passes through the mating hole of the thermal management component 130, the opening of the fixing member 120 may be narrowed toward the central axis so that the dimensions of the opening of the fixing member 120 are slightly smaller than the dimensions of the mating hole, allowing the fixing member 120 to pass through the mating hole of the thermal management component 130.

[0086] In this embodiment, before the fixing member 120 is bent, the opening of the fixing member 120 has a trumpet-like mouth, which is advantageous for the crimping process of the fixing member 120, and the stopper portion 121 formed after the crimping process can better fix the thermal management component 130 to the housing body.

[0087] Optionally, as shown in FIG. 9, the fixing member 120 is fixed to a first wall 1111 of the housing body 110 that is parallel to the thermal management component 130, and the fixing member 120 is used to fix the thermal management component 130 to the first wall 1111.

[0088] In this embodiment, by fixing the thermal management component 130 to a first wall 1111 parallel to the thermal management component 130 of the housing main body 110, it is possible to reduce the need for modification of the thermal management component 130 and reduce the complexity of installing the thermal management component 130.

[0089] Optionally, as shown in FIG. 9, the fixing members 120 are distributed at the four corners of the first wall 1111, and the fixing members 120 are arranged symmetrically.

[0090] In this embodiment, the fixing members 120 are distributed and arranged symmetrically at the four corners of the first wall 1111, thereby improving the mounting stability of the thermal management component 130.

[0091] In another example, the number of the fixing members 120 may be three, and the three fixing members 120 may be distributed in an equilateral triangle. As will be understood by those skilled in the art, the present embodiment is not specifically limited to the number and positions of the fixing members 120, as long as they can fix the thermal management component 130 to the housing body 110.

[0092] In another embodiment, the fixing members 120 may be fixed to a second wall of the housing body 110 that is perpendicular to the thermal management component 130. For example, two fixing members 120 are arranged on each of two opposing second walls, and a plane formed by the four fixing members 120 is parallel to the thermal management component 130. Both ends of the thermal management component 130 that are close to the second walls are bent to form bent portions, and fitting holes corresponding to the four fixing members 120 are provided in the bent portions on both ends, and the fitting holes are also drilled to guide the fixing members 120 to pass through the thermal management component 130.

[0093] Optionally, in this embodiment, the unfolded portion of the thermal management component 130 may be sealed to the first wall 1111 of the housing body 110 .

[0094] Optionally, in this embodiment, the thermal management component 130 is further adhered to the first wall 1111 by a structural adhesive.

[0095] In this embodiment, in addition to fixing the thermal management component 130 to the first wall 1111 using the fixing member 120, the thermal management component 130 is further bonded to the first wall 1111 using a structural adhesive, thereby increasing the fixing strength between the thermal management component 130 and the first wall 1111.

[0096] Figure 10 shows a schematic cross-sectional view of the housing 10 along CC' in Figure 9. Figure 11 is a schematic enlarged view of part D in Figure 10. Optionally, as shown in Figure 11, a maximum distance E from the fixing member 120 to the first wall 1111 after being folded is less than or equal to a maximum distance F from the thermal management component 130 to the first wall 1111.

[0097] Since the first wall 1111 is a plane, the fixing member 120 after being bent is considered to consist of a plurality of points, and the maximum distance E from the fixing member 120 after being bent to the first wall 1111 is the maximum distance among the distances from the plurality of points constituting the fixing member 120 after being bent to the first wall 1111. Similarly, the thermal management component 130 is also considered to consist of a plurality of points, and the maximum distance F from the thermal management component 130 to the first wall 1111 is the maximum distance among the distances from the plurality of points constituting the thermal management component 130 to the first wall 1111.

[0098] In this embodiment, the maximum distance E from the fixing member 120 to the first wall 1111 after bending is less than the maximum distance F from the thermal management component 130 to the first wall 1111, which does not interfere with the installation of multiple battery cells and is advantageous for improving the stability of battery installation.

[0099] Optionally, in this embodiment, the fixing member 120 is fixedly connected to the first wall 1111 by spot welding.

[0100] In this embodiment, the fixing member 120 is spot-welded to the first wall 1111, thereby increasing the attachment strength between the fixing member 120 and the housing body 110.

[0101] Optionally, the present embodiment further provides a battery 100 including a housing 10 and a plurality of battery cells 20 housed within the housing 10 .

[0102] Optionally, the housing 10 may be the housing 10 according to any of the preceding embodiments. For example, as shown in Fig. 12, a battery 100 includes a plurality of battery cells 20 and a housing 10 for accommodating the plurality of battery cells 20. Here, the housing 10 includes a housing body 110, a fixing member 120 fixedly connected to the housing body 110, and a thermal management component 130 for regulating the temperature of the plurality of battery cells, the thermal management component 130 having a fitting hole for guiding the fixing member 120 to pass through the thermal management component 130, wherein the fixing member 120 is disposed to pass through the fitting hole and be bent around the fitting hole to fix the thermal management component 130 to the housing body 110.

[0103] Optionally, the structure of the battery cell 20 may refer to the structure of the battery cell 20 shown in FIG. 3, which will not be repeated here for the sake of brevity.

[0104] An embodiment of the present application further provides an electric device, which may include the battery 100 of the above embodiment for providing electric energy to the electric device.

[0105] Optionally, the electrical device may be a vehicle 1, a watercraft or a spacecraft.

[0106] Having described the battery and electrical device of the present invention, the following describes the method and apparatus for manufacturing the battery of the present invention. For details not described in detail, please refer to the previous examples.

[0107] 13 shows a schematic flow chart of a method 300 for manufacturing a battery according to one embodiment of the present application. The battery may be the battery 100 provided in each of the above embodiments. As shown in FIG. 13, the method 300 includes: providing S310 a plurality of battery cells 20; Providing the enclosure 10 S320; may include Here, the housing 10 includes a housing main body 110 for accommodating the plurality of battery cells 20, a fixing member 120 fixedly connected to the housing main body 110, and a thermal management component 130 for adjusting the temperature of the plurality of battery cells 20, the thermal management component 130 having a fitting hole for guiding the fixing member 120 to pass through the thermal management component 130, wherein the fixing member 120 is arranged to pass through the fitting hole and bend around the fitting hole to fix the thermal management component 130 to the housing main body 110.

[0108] Optionally, as shown in FIG. 14, providing the housing 10 S320 may include: a step S321 of fixing the fixing member 120 to a first wall 1111 of the housing body 110 parallel to the thermal management component 130; Step S322: passing the fixing member 120 through the thermal management component 130 through the fitting hole; and a step S323 of performing a crimping process on the fixing member 120 to form a stopper portion 121 around the fitting hole for fixing the heat management component 130 to the housing main body 110; Includes.

[0109] Optionally, in this embodiment, the method 300 further comprises: Fixing member 120 The above Thermal Management Components 130 and performing a surface treatment on the first wall to form a protective layer for the thermal management component before penetrating the first wall.

[0110] Optionally, in this embodiment, fixing the fixing member 120 to the first wall 1111 of the housing body 110 includes using spot welding to fix the fixing member 120 to the first wall 1111.

[0111] 15 shows a schematic block diagram of an apparatus 400 for manufacturing a battery according to one embodiment of the present application. The battery may be the battery 100 provided in each of the above-described embodiments, and as shown in FIG. 15, the apparatus 400 for manufacturing a battery may include a providing module 410.

[0112] The provision module 410 is used to provide a plurality of battery cells 20 and a housing 10 including a housing main body 110 for accommodating the plurality of battery cells 20, a fixing member 120 fixedly connected to the housing main body 110, and a thermal management component 130 for adjusting the temperature of the plurality of battery cells 20, the thermal management component 130 having a fitting hole for guiding the fixing member 120 to pass through the thermal management component 130, wherein the fixing member 120 is arranged to pass through the fitting hole and bent around the fitting hole to fix the thermal management component 130 to the housing main body 110.

[0113] Although the present application has been described with reference to preferred embodiments, various modifications may be made and parts may be replaced with equivalents without departing from the scope of the present application. In particular, the technical features mentioned in each embodiment may be combined in any manner unless structural contradictions exist. The present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.

Claims

1. a housing body (110) for accommodating a plurality of battery cells (20); A fixing member (120) fixedly connected to the housing body (110), and a thermal management component (130) for adjusting the temperature of the plurality of battery cells, the thermal management component (130) having a fitting hole for guiding the fixing member (120) to pass through the thermal management component (130); A housing including: the fixing member (120) is disposed so as to pass through the fitting hole and bend along the periphery of the fitting hole to fix the thermal management component (130) to the housing main body (110); The fixing member (120) is arranged so as to be crimped to form a stopper portion (121) around the fitting hole for fixing the thermal management component (130) to the housing main body (110), The housing is characterized in that, before being crimped, the diameter of the fixing member (120) gradually increases along a direction away from the connection point between the fixing member (120) and the housing main body (110).

2. The housing of claim 1, wherein the fixing member (120) is fixed to a first wall (1111) of the housing body (110), the first wall (1111) is parallel to the thermal management component (130), and the fixing member (120) is used to fix the thermal management component (130) to the first wall (1111).

3. The enclosure of claim 2 , wherein the thermal management component (130) is further adhered to the first wall (1111) by a structural adhesive.

4. The housing of claim 2, wherein the maximum distance from the fixing member (120) to the first wall (1111) after being bent is less than or equal to the maximum distance from the thermal management component (130) to the first wall (1111).

5. The housing according to claim 2, wherein the fixing members (120) are distributed at four corners of the first wall (1111), and the fixing members (120) are arranged symmetrically.

6. 3. The housing according to claim 2, characterized in that the fixing member (120) is fixedly connected to the first wall (1111) by spot welding.

7. A housing according to any one of claims 1 to 6; a plurality of battery cells housed within the housing; A battery comprising:

8. 10. An electrical device comprising the battery of claim 7 for providing electrical energy to said electrical device.

9. Providing a plurality of battery cells (S310); a housing body (110) for accommodating the plurality of battery cells (20); a fixing member (120) fixedly connected to the housing body (110); and providing a housing (S320) including a thermal management component (130) for adjusting the temperature of the plurality of battery cells, the thermal management component (130) having a fitting hole for guiding the fixing member (120) to pass through the thermal management component (130); 1. A method of manufacturing a battery comprising: the fixing member (120) is disposed so as to pass through the fitting hole and bend along the periphery of the fitting hole to fix the thermal management component (130) to the housing main body (110); The fixing member (120) is arranged so as to be crimped to form a stopper portion (121) around the fitting hole for fixing the thermal management component (130) to the housing main body (110), The method for manufacturing a battery is characterized in that the fixing member (120) is formed so that the diameter of the fixing member (120) gradually increases along a direction away from the connection point between the fixing member (120) and the housing main body (110) before being crimped.

10. The provision of the housing is Fixing (S321) the fixing member (120) to a first wall of the housing body (110) parallel to the thermal management component (130); The fixing member (120) is passed through the thermal management component (130) through the fitting hole (S322); performing a crimping process (S323) on the fixing member (120) so as to form a stopper portion around the fitting hole for fixing the thermal management component (130) to the housing main body (110); 10. The method of claim 9, comprising:

11. The method includes, before penetrating the fixing member (120) through the thermal management component (130): The method of claim 10, further comprising performing a surface treatment on the first wall to form a protective layer for the thermal management component (130).

12. The fixing of the fixing member (120) to the first wall of the housing body (110) includes:

12. The method of claim 10 or 11, characterized in that it comprises employing spot welding to fasten the fastening member (120) to the first wall.

Citation Information

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