Battery and power consuming device

By designing a flat surface and a transition surface connected and smoothly transitioned on the second side of the battery, the problem of sealing failure at the connection of the sealing surface is solved, the sealing performance and reliability of the battery are improved, and the structural stability and space utilization are enhanced.

CN118872133BActive Publication Date: 2025-10-21CONTEMPORARY AMPEREX TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202380027245.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2023-11-01
Filing Date
2023-12-28
Publication Date
2025-10-21
Estimated Expiration
2043-12-28

AI Technical Summary

Technical Problem

In existing battery technologies, the risk of seal failure at the sealing surface connection is high, leading to reduced battery reliability.

Method used

The second side of the battery is designed to be a flat surface connected to a transition surface with a smooth transition, forming a good sealing surface, reducing the risk of sealing failure, and improving sealing performance and structural stability through the design of arc transition surfaces and multiple transition surfaces.

Benefits of technology

It improves the battery's sealing and reliability, reduces the risk of damage to the sealing structure due to stress concentration, and enhances the battery's structural stability and space utilization.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a battery and a power utilization device, and belongs to the technical field of batteries. The battery comprises a battery monomer, a first box body and a second box body, the first box body comprises a first end wall. The second box body and the first box body jointly enclose a closed space for accommodating the battery monomer, the second box body comprises a second end wall and two third side walls, the second end wall is arranged opposite to the first end wall along a first direction, and the two third side walls are arranged opposite to each other along a third direction and are connected to the second end wall. Wherein, the third side wall comprises a third surface facing the closed space, a fourth surface facing away from the closed space and a second side surface connecting the third surface and the fourth surface; the second side surface comprises a flat surface and a transition surface for sealingly connecting with the first box body, and the flat surface and the transition surface are connected and smoothly transitioned. Such a design has higher sealing performance and reliability.
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Description

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0002] This application claims priority to Chinese patent application No. 202322953532.4, filed on November 1, 2023, entitled “Batteries and Electrical Devices.” This application claims priority to PCT patent application No. PCT / CN2022 / 144191, filed on December 30, 2022, entitled “Batteries and Electrical Devices.” The entire contents of that application are incorporated herein by reference. Technical Field

[0003] The present application relates to the field of battery technology, and in particular to a battery and an electrical device. Background Art

[0004] Energy conservation and emission reduction are key to the sustainable development of the automotive industry. Electric vehicles, due to their energy-saving and environmentally friendly advantages, have become an important component of the sustainable development of the automotive industry. For electric vehicles, battery technology is a key factor in their development.

[0005] In the development of battery technology, how to improve battery reliability is a technical problem that needs to be solved urgently. Summary of the Invention

[0006] In view of the above problems, the present application provides a battery and an electrical device that can improve the reliability of the battery.

[0007] In a first aspect, the present application provides a battery comprising a battery cell, a first housing, and a second housing. The first housing comprises a first end wall. The second housing and the first housing together form an enclosed space for accommodating the battery cell. The second housing comprises a second end wall and two third side walls. The second end wall is disposed opposite the first end wall along a first direction, and the two third side walls are disposed opposite each other along a third direction and connected to the second end wall. The third side wall comprises a third surface facing the enclosed space, a fourth surface facing away from the enclosed space, and a second side surface connecting the third and fourth surfaces. The second side surface comprises a straight surface and a transition surface for sealingly connecting to the first housing. The straight surface and the transition surface are connected and smoothly transitioned.

[0008] In the technical solution of the embodiment of the present application, the second side surface includes a flat surface and a transition surface for sealing connection with the first housing. The flat surface and the transition surface are connected and smoothly transitioned. This design can form a good sealing surface when the first housing and the second housing are connected, reducing the risk of seal failure after the first and second housings are connected. The battery has a higher sealing performance, thereby improving the battery reliability.

[0009] In some embodiments, the flat surface includes a first flat surface and a second flat surface, the first flat surface is arranged at an end of the third side wall facing away from the second end wall, the two second flat surfaces are respectively arranged at both ends of the third side wall along the second direction, the transition surface connects the first flat surface and the second flat surface to make the first flat surface and the second flat surface transition smoothly, and the second direction, the first direction and the third direction intersect with each other.

[0010] In the above solution, the first flat surface and the second flat surface are non-coplanar surfaces, and the transition surface connects the first flat surface and the second flat surface so that the first flat surface and the second flat surface transition smoothly, which can significantly reduce the risk of sealing failure at the transition point between the first flat surface and the second flat surface.

[0011] In some embodiments, the transition surface is an arc transition surface.

[0012] In the above solution, by setting the transition surface as an arc transition surface, the first flat surface and the second flat surface can be smoothly transitioned, so that the sealing structure can be smoothly set between the third side wall and the first box body, reducing the risk of sealing failure due to damage to the sealing structure due to stress concentration, which is beneficial to the sealing performance between the second side surface and the first box body, and improves the sealing and reliability of the battery.

[0013] In some embodiments, the transition surface has a first edge in the third direction, the first edge is in an arc shape, and the radius of the first edge is greater than or equal to 10 mm.

[0014] The first edge may correspond to an extension trajectory of the transition surface, or the first edge may refer to an edge of the transition surface parallel to its extension direction. In the above scheme, by limiting the first edge of the transition surface to an arc shape, that is, limiting the first edge to an arc line, so that the transition surface extends in an arc-shaped trajectory, and setting the radius of the first edge to be greater than or equal to 10 mm, the first flat surface and the second flat surface can be smoothly transitioned, and the sealing structure can be smoothly arranged between the third side wall and the first box body, effectively reducing the risk of sealing failure due to damage to the sealing structure due to stress concentration, which is beneficial to the sealing performance between the second side surface and the first box body, and improves the sealing and reliability of the battery.

[0015] In some embodiments, the transition surface includes a first transition surface and a second transition surface connected to each other, the edge of the first transition surface in the third direction is straight, and the edge of the second transition surface in the third direction is arc-shaped.

[0016] In the above scheme, by setting the first transition surface and the second transition surface, on the one hand, the first flat surface and the second flat surface can be smoothly transitioned, which is beneficial to improving the sealing performance between the second side surface and the first box body, and improving the sealing and reliability of the battery; on the other hand, the first transition surface can provide a flat surface for locking the third side wall and the first box body, so that the locking part (such as a bolt) can pass through the first box body stably and with good sealing and be locked in the first transition surface, thereby improving the structural stability of the battery and making the battery have higher reliability.

[0017] In some embodiments, the number of first transition surfaces is n, where n≥1, and the number of second transition surfaces is n+1; any first transition surface is disposed between two adjacent second transition surfaces.

[0018] In the above solution, by setting the number of second transition surfaces to be one more than the first transition surfaces, and making any first transition surface be set between two adjacent second transition surfaces, on the one hand, the first flat surface and the second flat surface can be smoothly transitioned, that is, the transition surfaces connected to the first flat surface and the second flat surface are both second transition surfaces in the form of curved surfaces, thereby reducing the risk of sealing failure due to the formation of sharp corners between the flat surfaces. On the other hand, by setting the first transition surface, multiple locking positions can be provided between the third side wall and the first box body, which is beneficial for the locking member to effectively connect the third side wall and the first box body, thereby improving the structural stability of the battery and making the battery have higher reliability.

[0019] In some embodiments, the length of the first transition surface is greater than or equal to 6 mm.

[0020] In the above solution, by setting the length of the first transition surface to be greater than or equal to 6 mm, one or more locking positions can be set on the first transition surface, which is conducive to the locking member effectively connecting the third side wall and the first box body, improving the structural stability of the battery, and making the battery have higher reliability.

[0021] In some embodiments, the flat surface includes two second flat surfaces, which are respectively arranged at both ends of the third side wall along the second direction. The ends of the two second flat surfaces facing away from the second end wall are connected by a transition surface, and the second direction, the first direction and the third direction intersect with each other.

[0022] In the above solution, the arc surface smoothly transitions between the two oppositely arranged second straight surfaces, which can facilitate the formation of a good sealing surface between the first box body and the second side surface, so that the battery has a higher sealing performance.

[0023] In some embodiments, the second end wall has a first side surface in the second direction, the second direction, the first direction, and the third direction intersect in pairs, and the second straight surface is flush with the first side surface.

[0024] In the above solution, the second flat surface is flush with the first side surface, which can reduce the risk of a gap between the first side wall and the second side surface, and reduce the risk of a gap between the connecting portion and the second flat surface, thereby improving the sealing of the battery.

[0025] In some embodiments, the second end wall includes a first portion and a second portion, wherein the second portion is located on one side of the first portion and connected to the first portion along the third direction.

[0026] In the above solution, the second end wall includes a first portion and a second portion. By setting the dimension of the first portion in the second direction larger than the dimension of the second portion in the second direction, a gap is formed between the first portion and the second portion, or in other words, the end of the second end wall is narrowed. Because the end of the second end wall is not used by the battery cells, narrowing this portion can not only reduce the volume of the battery, saving battery installation space, but also achieve the effect of reducing the weight of the battery, making it lightweight.

[0027] In some embodiments, the second portion has a third side surface in the second direction, and the third side surface is flush with the second flat surface.

[0028] In the above solution, by setting the second flat surface to be flush with the third side surface of the second part, the sealing between the third side wall and the second end wall and the first box body is facilitated, and the risk of failure of the sealing between the first box body and the second box body due to a gap between the third side wall and the second end wall at the second part is reduced, so that the battery has higher reliability.

[0029] In some embodiments, the first portion has a fourth side surface in the second direction, and the fourth side surface protrudes beyond the third side surface along the second direction.

[0030] In the above scheme, along the third direction, the fourth side surface protrudes from the third side surface, so that the first box body and the second box body can form a gap at the position corresponding to the position between the third side surface and the fourth side surface, or it can be understood that the first box body and the second box body are narrowed at this position. On the one hand, it can reduce the volume of the battery and save the installation space of the battery. On the other hand, it can achieve the effect of reducing the weight of the battery, making the battery lightweight.

[0031] In some embodiments, the first portion has a third flat surface in the third direction. Along the second direction, one end of the third flat surface transitions to the third side arc, and the other end of the third flat surface transitions to the fourth side arc.

[0032] In the above solution, a third flat surface is provided between the third side surface and the fourth side surface. By setting the third flat surface so that one end is transitionally connected to the third side arc and the other end is transitionally connected to the fourth side arc, the risk of damage to the sealing structure between the second end wall, the third side wall and the first box body due to stress concentration can be reduced, which is beneficial to the sealing between the first box body and the second box body, so that the battery has higher reliability.

[0033] In some embodiments, the second end wall has a first side surface in the second direction, the flat surface includes a first flat surface, the first flat surface is arranged at an end of the third side wall facing away from the second end wall, the end of the first flat surface smoothly transitions to the first side surface through a transition surface, and the second direction, the first direction and the third direction intersect with each other.

[0034] In the above scheme, the flat surface includes a first flat surface and a transition surface. The first flat surface can form a good seal with the first box body. By setting the transition surface between the first flat surface and the side of the second end wall, the side of the first flat surface and the second end wall can be smoothly transitioned, which can facilitate the formation of a good sealing surface between the first box body and the second box body, so that the battery has a higher sealing performance.

[0035] In some embodiments, the second end wall has a first side surface in the second direction, and the first box body also includes a first side wall, one end of the first side wall is connected to the first end wall, and the other end is connected to the first side surface, and the second direction, the first direction and the third direction intersect with each other.

[0036] In the above scheme, the connection between the first box and the second box is achieved by connecting one end of the first side wall of the first box to the first side surface of the second box. This allows the connection between the first box and the second box to be achieved without providing a flange structure protruding along the second direction, thereby improving the space utilization of the battery in the second direction to accommodate more battery cells or reduce the volume of the battery, thereby improving the volume energy density of the battery.

[0037] In some embodiments, the inner surface of the first sidewall is connected to the first side surface.

[0038] In the above solution, by connecting the inner surface of the first side wall (i.e. the surface of the first side wall facing the first side surface) to the first side surface, the size of the battery in the second direction can be effectively reduced to maximize the volume energy density of the battery.

[0039] In some embodiments, the second end wall has a first surface facing the first end wall, and an end of the first side wall away from the first end wall extends beyond the first surface in a direction from the first end wall to the second end wall.

[0040] In the above scheme, the end of the first side wall away from the first end plate protrudes beyond the first surface, so that the first side wall can be directly connected to the first side surface. On the one hand, it can effectively reduce the assembly difficulty and manufacturing cost caused by the indirect connection of the first side wall to the first side surface through the intermediate connecting member. On the other hand, the inner surface of the part of the first end wall protruding from the first surface can be connected to the first side surface, which can effectively reduce the size of the battery in the second direction, so as to maximize the volume energy density of the battery.

[0041] In some embodiments, the second end wall has a second surface facing away from the first end wall, and along a direction from the first end wall to the second end wall, an end of the first side wall away from the first end wall does not extend beyond the second surface.

[0042] In the above solution, the end of the first side wall away from the first end wall does not extend beyond the second surface, so that the size of the battery in the first direction is controlled, and the battery has a higher volume energy density.

[0043] In some embodiments, the battery further includes a first fastener, and the first side wall is connected to the first side surface via the first fastener.

[0044] In the above solution, the first fastener is provided to connect the first side wall and the first side surface so that the connection stability between the first side wall and the first side surface is higher, thereby improving the structural stability of the battery.

[0045] In some embodiments, the first side wall is provided with a first through hole, the first side surface is provided with a first threaded hole, and the first fastener passes through the first through hole and is connected to the first threaded hole.

[0046] In the above scheme, the first fastener can be a connecting component with external threads such as a bolt or a screw, which can be effectively connected to the first threaded hole, thereby improving the connection stability between the first side wall and the first side surface and ensuring good sealing between the first side wall and the first side surface.

[0047] In some embodiments, the battery further includes a first seal disposed between the first sidewall and the first side surface.

[0048] In the above solution, by providing the first sealing member between the first side wall and the first side surface, the sealing between the first side wall and the first side surface can be improved, thereby improving the sealing of the battery.

[0049] In some embodiments, there are two first side walls, and the two first side walls are arranged opposite to each other along the second direction; the second end wall is located between the two first side walls, and the second end wall has two first side surfaces arranged opposite to each other along the second direction; the first side surfaces and the first side walls correspond one to one.

[0050] In the above solution, there are two first side walls which are arranged opposite to each other along the second direction and are respectively connected to the corresponding first side faces, which can effectively improve the space utilization of the battery in the second direction and thereby improve the volume energy density of the battery.

[0051] In some embodiments, the second box further includes two second side walls, which are arranged opposite to each other along the second direction and connected to the second end wall, and the battery cell is arranged between the two second side walls.

[0052] In the above scheme, two opposite second side walls are arranged on the second end wall along the second direction. On the one hand, the structural strength of the second box body can be improved. On the other hand, the installation area of ​​the battery cell can be limited so that the battery cell can be stably assembled in the second box body. On the other hand, since the second side wall protrudes from the surface of the second end wall, when the battery cell is bonded to the second box body by glue, the glue overflow space can be effectively controlled, thereby reducing the risk of waste and environmental pollution caused by glue overflow.

[0053] In some embodiments, openings are formed at both ends of the first box along the third direction, and the two third side walls respectively close the two openings.

[0054] In the above scheme, by providing the third side wall, on the one hand, components such as explosion-proof valves, water-cooling connectors or high and low voltage connectors can be installed on the third side wall, so that the battery can be charged and discharged normally; on the other hand, compared with the flange structure protruding along the third direction between the first box body and the second box body, by providing the third side wall to close the opening, the space utilization of the battery in the third direction can be improved, and the volume energy density of the battery can be improved.

[0055] In some embodiments, a dimension of one of the third sidewalls along the first direction is smaller than a dimension of the other third sidewall along the first direction.

[0056] In the above scheme, the third side wall with a larger size can be installed with components such as explosion-proof valves, water-cooling connectors or high and low voltage connectors, so that the battery can be charged and discharged normally; by reducing the size of the other third side wall, the size of the first box corresponding to the third side wall can be adaptively increased, thereby increasing the proportion of the first box to the battery (in this embodiment, the first box can be an upper box with lower material cost and density), thereby reducing the manufacturing cost of the battery and increasing the weight energy density of the battery.

[0057] In some embodiments, the first box body includes two connecting parts, which are respectively located at two ends of the first box body along the third direction. The connecting parts form an opening, and the connecting parts are connected to the second side surface.

[0058] In the above solution, by providing a connecting portion to connect to the second side surface of the third side wall, the connection stability and sealing performance between the first box body and the second box body can be improved.

[0059] In some embodiments, the first box body further includes a fourth side wall, the fourth side wall being adjacent to the first side wall, one end of the fourth side wall being connected to the first end wall, and the connecting portion protruding from the fourth side wall in a direction away from the enclosed space.

[0060] In the above scheme, the first box body can be an upper box body, and the second box body can be a lower box body. In the manufacturing process of the battery, the material cost and density of the upper box body can be lower than those of the lower box body. For this reason, the fourth side wall is set to increase the proportion of the first box body in the battery, thereby effectively reducing the manufacturing cost of the battery and improving the weight energy density of the battery.

[0061] In some embodiments, the battery further includes a second fastener, and the connecting portion is connected to the second side surface via the second fastener.

[0062] In the above solution, a second fastener is provided to connect the second side surface and the connecting portion to improve the connection stability between the connecting portion and the second side surface, thereby improving the structural stability of the battery.

[0063] In some embodiments, the connecting portion is provided with a second through hole, the second side surface is provided with a second threaded hole, and the second fastener passes through the second through hole and is connected to the second threaded hole.

[0064] In the above solution, the second fastener can be a connecting component with external threads such as a bolt or a screw, which can be effectively connected to the second threaded hole, thereby improving the connection stability between the connecting part and the second side surface and ensuring good sealing between the connecting part and the second side surface.

[0065] In some embodiments, the battery further includes a second sealant disposed between the connecting portion and the second side surface.

[0066] In the above solution, by providing the second sealing member between the connecting portion and the second side surface, the sealing between the connecting portion and the second side surface can be improved, thereby improving the sealing of the battery.

[0067] In some embodiments, the battery further includes a first sealing member disposed between the first side wall and the first side surface, wherein both ends of the first sealing member are respectively connected to the two second sealing members.

[0068] In the above solution, the first sealing member and the second sealing member can be integrally formed or separately connected. By providing the first sealing member and the second sealing member, good sealing performance can be achieved between the first box body and the second box body, thereby improving the reliability of the battery.

[0069] In some embodiments, the second end wall is provided with a mounting portion for mounting the battery on an electrical device.

[0070] In the above solution, a mounting portion is provided on the second end wall to achieve stable assembly of the battery, so that the battery can stably provide electrical energy.

[0071] In some embodiments, the material density of the first housing is less than the material density of the second housing.

[0072] In the above solution, since the first side wall is connected to the first side surface, the proportion of the first box body to the battery is increased, and the material density of the first box body is smaller than that of the second box body, the density of the battery is reduced. Under the same volume, the weight of the battery is reduced, thereby improving the weight energy density of the battery.

[0073] In some embodiments, the first box body is made of plastic, and the second box body is made of aluminum alloy.

[0074] In the above solution, the first housing can be the upper housing of the battery, and the second housing can be the lower housing of the battery. The second housing is made of aluminum alloy, which gives it high structural strength and rigidity, providing high protection for the battery cells. The first housing, serving as the upper housing, seals the battery cells between the upper and lower housings. Its plastic construction can effectively reduce the manufacturing cost of the battery and can effectively reduce the battery's weight, thereby increasing its gravimetric energy density.

[0075] In some embodiments, the second end wall is used to support battery cells.

[0076] In the above solution, the second end wall can be used as an assembly base when assembling the battery cell, thereby facilitating the assembly of the battery cell.

[0077] In a second aspect, the present application further provides an electrical device comprising the battery described in any one of the first aspects, wherein the battery is used to provide electrical energy.

[0078] The above description is only an overview of the technical solution of the present application. In order to more clearly understand the technical means of the present application, which can be implemented in accordance with the contents of the specification, and to make other purposes, features and advantages of the present application more obvious and easy to understand, the specific implementation methods of the present application are listed below. BRIEF DESCRIPTION OF THE DRAWINGS

[0079] Various other advantages and benefits will become apparent to those skilled in the art upon reading the detailed description of the preferred embodiment below. The accompanying drawings are for illustration purposes only and are not to be considered as limiting the present application. The same reference numerals are used throughout the drawings to represent the same components. In the drawings:

[0080] Figure 1A schematic diagram of a vehicle according to some embodiments of the present application;

[0081] Figure 2 Schematic diagram of a battery in some embodiments of the present application;

[0082] Figure 3 This is a three-dimensional exploded view of a battery in some embodiments of the present application;

[0083] Figure 4 This is a schematic diagram of the first box in some embodiments of the present application;

[0084] Figure 5 This is a schematic diagram of the second box in some embodiments of the present application;

[0085] Figure 6 for Figure 5 Enlarged view of point A in the middle;

[0086] Figure 7 This is a partial schematic diagram of the first box in some embodiments of the present application;

[0087] Figure 8 This is a schematic diagram of a third side wall in some embodiments of the present application;

[0088] Figure 9 Schematic diagram of the first flat surface, the second flat surface, and the transition surface in some embodiments of the present application;

[0089] Figure 10 Schematic diagram of the third side wall in some other embodiments of the present application;

[0090] Figure 11 This is a partial schematic diagram of the second box in some other embodiments of the present application;

[0091] Figure 12 Schematic diagram of the partial structure of the second box in some other embodiments of the present application;

[0092] Figure 13 This is a partial schematic diagram of the first box in some other embodiments of the present application;

[0093] Figure 14 This is a partial schematic diagram of the second box in some other embodiments of the present application;

[0094] Figure 15 Schematic diagram of the second box in some other embodiments of the present application;

[0095] Figure 16 This is a partial schematic diagram of the first box in some further embodiments of the present application.

[0096] Icons: 100-battery; 1000-vehicle; 200-controller; 300-motor; 10-first housing; 11-first end wall; 12-first side wall; 120-first through hole; 13-opening; 14-connecting portion; 140-second through hole; 15-fourth side wall; 20-second housing; 21-second end wall; 210-first side surface; 2100-first threaded hole; 211-first surface; 212-second surface; 213-first portion; 2130-fourth side surface; 2131-third flat surface; 214-second portion; 2 140-third side surface; 22-second side wall; 23-third side wall; 230-third surface; 231-fourth surface; 232-second side surface; 2320-first flat surface; 2321-second flat surface; 2322-transition surface; 2322a-first transition surface; 2322b-second transition surface; 23220-first edge; 2324-arc surface; 2323-second threaded hole; 24-crossbeam; 30-first seal; 31-second seal; 40-mounting portion; z-first direction; x-second direction; y-third direction. DETAILED DESCRIPTION

[0097] The following embodiments of the technical solution of the present application will be described in detail with reference to the accompanying drawings. The following embodiments are only used to more clearly illustrate the technical solution of the present application and are therefore only examples and are not intended to limit the scope of protection of the present application.

[0098] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this application belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above-mentioned figure descriptions are intended to cover non-exclusive inclusions.

[0099] In the description of the embodiments of this application, the technical terms "first" and "second" are used only to distinguish different objects and should not be understood to indicate or imply relative importance or implicitly specify the quantity, specific order, or primary and secondary relationship of the indicated technical features. In the description of the embodiments of this application, the meaning of "plurality" is more than two, unless otherwise clearly and specifically defined.

[0100] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute an independent or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0101] In the description of the embodiments of the present application, the term "multiple" refers to more than two (including two). Similarly, "multiple groups" refers to more than two groups (including two groups), and "multiple pieces" refers to more than two pieces (including two pieces).

[0102] In the description of the embodiments of the present application, the technical terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing the embodiments of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the embodiments of the present application.

[0103] In the description of the embodiments of the present application, unless otherwise expressly specified or limited, technical terms such as "installed," "connected," "connected," and "fixed" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; internal connections between two components or interactions between two components. Those skilled in the art can understand the specific meanings of the above terms in the embodiments of the present application based on specific circumstances.

[0104] In this application, 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 shape of a battery cell may include, but is not limited to, a cylinder, a flat body, a rectangular parallelepiped, or other shapes. Battery cells, depending on the packaging method, may include, but are not limited to, cylindrical battery cells, prismatic battery cells, blade battery cells, and soft-pack battery cells.

[0105] In some high-power applications such as electric vehicles, battery applications include three levels: battery cells, battery modules, and batteries. The battery module is formed by electrically connecting a certain number of battery cells together and placing them into a frame to protect the battery cells from external impact, heat, vibration, etc. The battery refers to the final state of the battery system installed in the electric vehicle. The battery mentioned in the embodiments of this application refers to a single physical module that includes one or more battery cells to provide higher voltage and capacity.

[0106] The battery generally includes a first box and a second box, which are connected to form a closed space. The battery cells are arranged in the closed space to reduce the risk of liquid or other foreign matter affecting the charging or discharging of the battery cells.

[0107] The surfaces of the first box body and the second box body that contact each other after assembly are generally sealing surfaces, and a sealing structure is generally provided on the sealing surfaces to improve the sealing performance of the first box body and the second box body.

[0108] Improving battery reliability is a pressing technical challenge in the development of battery technology. Sealing surfaces typically consist of multiple surfaces, and the junctions between two adjacent surfaces often form sharp corners. These corners increase the risk of seal failure at the junction, reducing battery reliability.

[0109] In view of this, the present application provides a battery, which includes a battery cell, a first box and a second box, wherein the first box includes a first end wall. The second box and the first box together form a closed space for accommodating the battery cell, and the second box includes a second end wall and two third side walls, wherein the second end wall and the first end wall are arranged opposite to each other along a first direction, and the two third side walls are arranged opposite to each other along a third direction and connected to the second end wall. The third side wall includes a third surface facing the closed space, a fourth surface facing away from the closed space, and a second side surface connecting the third surface and the fourth surface; the second side surface includes a flat surface and a transition surface for sealing connection with the first box, and the flat surface and the transition surface are connected and smoothly transitioned. Such a design can form a good sealing surface when the first box and the second box are connected, reducing the risk of sealing failure after the first box and the second box are connected. The battery has a high sealing performance, thereby improving the reliability of the battery.

[0110] The technical solutions described in the embodiments of the present application are applicable to battery cells, batteries, and electrical equipment using batteries.

[0111] Electrical equipment includes, but is not limited to, battery vehicles, electric vehicles, ships, and spacecraft, etc. For example, spacecraft include airplanes, rockets, space shuttles, and spacecraft, etc.

[0112] The battery disclosed in the embodiments of the present application can be used in, but is not limited to, a battery cabinet, a container-type energy storage device, etc. The energy storage device can include multiple batteries disclosed in the present application.

[0113] The battery disclosed in the embodiments of the present application can be used, but is not limited to, in electrical equipment such as vehicles, ships, or aircraft. The battery disclosed in the present application can be used to form a power supply system for the electrical equipment.

[0114] The present invention provides an electric device using a battery as a power source, which may include, but is not limited to, an electric bicycle, an electric motorcycle, an electric car, a ship, a heavy truck, a bus, a spacecraft, etc. The spacecraft may include, for example, an airplane, a rocket, a space shuttle, and a spacecraft.

[0115] For the convenience of description, the following embodiments are described by taking a vehicle 1000 as an example of an electrical device according to an embodiment of the present application.

[0116] Please refer to Figure 1 , Figure 1 The diagram is a schematic diagram of a vehicle 1000 according to some embodiments of the present application. The vehicle 1000 may be a fuel vehicle, a gas vehicle or a new energy vehicle. The new energy vehicle may be a pure electric vehicle, a hybrid vehicle or a range-extended vehicle, etc. The vehicle 1000 may be a sedan, an off-road vehicle, a heavy truck or a bus, etc. A battery 100 is provided inside the vehicle 1000. The battery 100 may be provided at the bottom, head or tail of the vehicle 1000. The battery 100 may be used to power the vehicle 1000. For example, the battery 100 may be used as an operating power source for the vehicle 1000 and for the circuit system of the vehicle 1000, such as for the working power requirements during the startup, navigation and operation of the vehicle 1000.

[0117] The vehicle 1000 may further include a controller 200 and a motor 300 . The controller 200 is used to control the battery 100 to supply power to the motor 300 , for example, to meet the power requirements of the vehicle 1000 during startup, navigation, and driving.

[0118] In some embodiments of the present application, the battery 100 can serve not only as an operating power source for the vehicle 1000, but also as a driving power source for the vehicle 1000, replacing or partially replacing fuel or natural gas to provide driving power for the vehicle 1000.

[0119] To meet different power requirements, the battery 100 may include multiple battery cells, wherein the multiple battery cells can be connected in series, in parallel, or in a hybrid connection. Hybrid connection refers to a mixture of series and parallel connections. The battery 100 may also be referred to as a battery pack. Optionally, multiple battery cells may first be connected in series, in parallel, or in a hybrid connection to form a battery module, and multiple battery modules may then be connected in series, in parallel, or in a hybrid connection to form the battery 100. In other words, multiple battery cells may directly form the battery 100, or they may first form battery modules, which may then form the battery 100.

[0120] For example, see Figure 2 The battery 100 may include a plurality of battery cells (not shown in the figure). The battery 100 may also include a box body, wherein the box body has a closed chamber inside, and the plurality of battery cells are accommodated in the closed chamber. Figure 3 As shown, the box body includes a first box body 10 and a second box body 20, which are buckled together. The shapes of the first box body 10 and the second box body 20 can be determined according to the shapes of the combination of multiple battery cells. The first box body 10 and the second box body 20 can both have an opening 13, or can be a frame structure composed of multiple wall parts. For example, please refer to Figure 3The first housing 10 may include three walls, forming a U-shaped frame. Two openings 13 are formed at both ends of the length of the first housing 10. The second housing 20 may include three walls, forming another U-shaped frame. Two opposing walls along the length of the second housing 20 correspond to the openings 13 and are used to close the corresponding openings 13. The two U-shaped frames interlock to form a housing with a closed chamber. Multiple battery cells are connected in parallel, series, or mixed and then placed in the closed chamber.

[0121] Optionally, the battery 100 may also include other structures, which are not described in detail here. For example, the battery may also include a busbar assembly, which is used to electrically connect multiple battery cells, such as in parallel, series, or mixed connection. Specifically, the busbar assembly can electrically connect the battery cells by connecting to the electrode terminals of the battery cells. Furthermore, the busbar assembly can be fixed to the electrode terminals of the battery cells by welding. The electrical energy of the multiple battery cells can be further extracted through the box body via a conductive mechanism.

[0122] According to different power requirements, the number of battery cells can be set to any value. Multiple battery cells can be connected in series, parallel or hybrid to achieve a larger capacity or power. Since the number of battery cells included in each battery 100 may be large, in order to facilitate installation, the battery cells can be grouped, and each group of battery cells constitutes a battery module. The number of battery cells included in the battery module is not limited and can be set according to requirements. The battery 100 may include multiple battery modules, which can be connected in series, parallel or hybrid. Multiple battery cells can also be arranged in groups and formed into one or more battery packs by bundling parts, and the bundled battery packs are housed in a closed space. Multiple battery packs can be arranged along the length, width or height of the box.

[0123] According to some embodiments of this application, please refer to Figure 2-Figure 3 、 Figures 8-12 、 Figure 14 and Figure 15The battery 100 includes a battery cell (not shown), a first housing 10, and a second housing 20. The first housing 10 includes a first end wall 11. The second housing 20 and the first housing 10 together form an enclosed space for accommodating the battery cell. The second housing 20 includes a second end wall 21 and two third side walls 23. The second end wall 21 is arranged opposite to the first end wall 11 along a first direction z. The two third side walls 23 are arranged opposite to each other along a third direction y and connected to the second end wall 21. The third side wall 23 includes a third surface 230 facing the enclosed space, a fourth surface 231 facing away from the enclosed space, and a second side surface 232 connecting the third surface 230 and the fourth surface 231. The second side surface 232 includes a flat surface and a transition surface 2322 for sealing connection with the first housing 10. The flat surface and the transition surface 2322 are connected and smoothly transitioned.

[0124] The flat surface may be the upper surface of the third side wall 23 in the first direction z, or the outer side surface of the third side wall 23 in the second direction x.

[0125] The straight surface and transition surface 2322 used for sealing connection with the first box body 10 can be understood as at least part of the sealing structure being arranged on the straight surface and transition surface 2322 after the first box body 10 and the second box body 20 are assembled. The sealing structure can be a seal or a weld, etc.

[0126] The straight surface and the transition surface 2322 are connected and smoothly transitioned, which can be understood as a non-right-angle transition between the straight surface and the transition surface 2322.

[0127] The transition surface 2322 may be a curved surface, or a combination of one or more inclined surfaces and one or more curved surfaces.

[0128] In some embodiments, the first box body 10 can be regarded as the upper box body of the battery 100, the first end wall 11 can be regarded as the top wall of the battery 100, and the first side wall 12 can be a portion connected to the first end wall 11 at one end and not in the same plane as the first end wall 11; the first side wall 12 can be connected to the first end wall 11 by welding, bonding, bolting, etc., and the first side wall 12 can also be integrally formed with the first end wall 11.

[0129] The second housing 20 can be considered as the lower housing of the battery 100, the second end wall 21 can be considered as the bottom wall of the battery 100, and the first direction z can be the height direction of the battery 100, that is, the top wall and the bottom wall are arranged opposite to each other along the height direction of the battery 100. The first direction z can also be understood as the direction of gravity.

[0130] The first box body 10 and the second box body 20 are connected to each other to form a closed space capable of accommodating a battery cell.

[0131] The first direction z intersects the second direction x, which may mean that the first direction z and the second direction x are not parallel.

[0132] In the technical solution of the embodiment of the present application, the second side surface 232 includes a flat surface and a transition surface 2322 for sealing connection with the first housing 10. The flat surface and the transition surface 2322 are connected and smoothly transitioned. This design can form a good sealing surface when the first housing 10 and the second housing 20 are connected, reducing the risk of seal failure after the first housing 10 and the second housing 20 are connected. The battery 100 has a high sealing performance, thereby improving the reliability of the battery 100.

[0133] According to some embodiments of this application, please refer to Figures 8-11 The flat surface includes a first flat surface 2320 and a second flat surface 2321. The first flat surface 2320 is arranged at the end of the third side wall 23 away from the second end wall 21. The two second flat surfaces 2321 are respectively arranged at the two ends of the third side wall 23 along the second direction x. The transition surface 2322 connects the first flat surface 2320 and the second flat surface 2321 to make the first flat surface 2320 and the second flat surface 2321 transition smoothly. The second direction x, the first direction z and the third direction y intersect with each other.

[0134] The first flat surface 2320 may be the upper surface of the third sidewall 23 and may be a flat surface. The second flat surface 2321 may be the outer side surface of the third sidewall 23 and may be a flat surface. In some embodiments, the first flat surface 2320 and the second flat surface 2321 are perpendicular to each other. The transition surface 2322 is the portion connecting the first flat surface 2320 and the second flat surface 2321, which enables a smooth transition between the first flat surface 2320 and the second flat surface 2321. A smooth transition may mean that the first flat surface 2320 and the second flat surface 2321 are not at a right angle.

[0135] In some embodiments, the transition surface 2322 may be a curved surface, or a combination of one or more inclined surfaces and one or more curved surfaces.

[0136] In the above solution, the first flat surface 2320 and the second flat surface 2321 are non-coplanar surfaces, and the transition surface 2322 connects the first flat surface 2320 and the second flat surface 2321 to achieve a smooth transition between the first flat surface 2320 and the second flat surface 2321, which can significantly reduce the risk of sealing failure at the transition point between the first flat surface 2320 and the second flat surface 2321.

[0137] According to some embodiments of the present application, see Figure 9 , the transition surface 2322 is an arc transition surface.

[0138] The transition surface 2322 is an arc transition surface, which can be understood as the transition surface 2322 being an arc transition surface as a whole.

[0139] The arc transition surface may refer to a surface extending along an arc-shaped trajectory. The transition surface 2322 being an arc transition surface can be understood as the first straight surface 2320 and the second straight surface 2321 being connected by an arc surface 2324, that is, the first straight surface 2320 and the second flat surface 2321 may not have sharp corners.

[0140] In some embodiments, a sealing structure may be provided between the first box body 10 and the second box body 20 so that the first box body 10 and the second box body 20 are sealed and connected. For example, a second sealing member 31 may be provided between the second side surface 232 and the first box body 10 (see Figure 3 ), the second sealing member 31 can be supported by the transition surface 2322. Since the first straight surface 2320 and the second straight surface 2321 transition through the arc surface 2324, the risk of stress concentration on the second sealing member 31 is small.

[0141] In the above solution, by setting the transition surface 2322 as an arc transition surface, the first flat surface 2320 and the second flat surface 2321 can be smoothly transitioned, so that the sealing structure can be smoothly set between the third side wall 23 and the first box body 10, reducing the risk of sealing failure due to damage to the sealing structure due to stress concentration, which is beneficial to the sealing performance between the second side surface 232 and the first box body 10, and improving the sealing and reliability of the battery 100.

[0142] According to some embodiments of the present application, the transition surface 2322 has a first edge in the third direction y, the first edge is in an arc shape, and the radius of the first edge is greater than or equal to 10 mm.

[0143] The first edge 23220 may correspond to the extension trajectory of the transition surface 2322 or may refer to an edge of the transition surface 2322 parallel to its extension direction. In some embodiments, one end of the first edge 23220 is connected to the first flat surface 2320 and the other end is connected to the second flat surface 2321.

[0144] In some embodiments, the first edge 23220 may be an arc line, and the radius of the first edge 23220 may be greater than or equal to 10 mm. For example, the first edge 23220 may be 10 mm, 11 mm, 12 mm, 13 mm or greater.

[0145] In some embodiments, the first flat surface 2320 and the second flat surface 2321 are rounded to form a transition surface 2322 having an arc shape.

[0146] In the above scheme, by limiting the first edge of the transition surface 2322 to an arc shape, that is, limiting the first edge to an arc line, the transition surface 2322 extends in an arc-shaped trajectory, and the radius of the first edge is set to be greater than or equal to 10 mm, the first flat surface 2320 and the second flat surface 2321 can be smoothly transitioned, and the sealing structure can be smoothly arranged between the third side wall 23 and the first box body 10, effectively reducing the risk of sealing failure due to damage to the sealing structure due to stress concentration, which is beneficial to the sealing performance between the second side surface 232 and the first box body 10, and improving the sealing and reliability of the battery 100.

[0147] According to some embodiments of this application, see Figure 8 The transition surface 2322 includes a first transition surface 2322a and a second transition surface 2322b connected to each other. The edge of the first transition surface 2322a in the third direction y is straight, and the edge of the second transition surface 2322b in the third direction y is arc-shaped.

[0148] The phrase "the edge of the first transition surface 2322a in the third direction y is flat" can be understood as meaning that the first transition surface 2322a is a straight surface with a flat surface, not a curved surface. The phrase "the edge of the second transition surface 2322b in the third direction y is arc-shaped" can be understood as meaning that the second transition surface 2322b is an arc-shaped surface with a curved surface.

[0149] The first transition surface 2322a can be provided with a locking position for cooperating with a locking member. For example, the first transition surface 2322a can be provided with a second threaded hole 2323, and the second threaded hole 2323 is used to cooperate with a locking member (such as a second fastener) to connect the second side surface 232 to the first box body 10.

[0150] In the above scheme, by setting the first transition surface 2322a and the second transition surface 2322b, on the one hand, the first flat surface 2320 and the second flat surface 2321 can be smoothly transitioned, which is beneficial to improving the sealing performance between the second side surface 232 and the first box body 10, and improving the sealing and reliability of the battery 100; on the other hand, the first transition surface 2322a can provide a flat surface for locking the third side wall 23 and the first box body 10, so that the locking part (such as a bolt) can pass through the first box body 10 stably and with good sealing and be locked in the first transition surface 2322a, thereby improving the structural stability of the battery 100 and making the battery 100 have higher reliability.

[0151] According to some embodiments of this application, please refer to Figure 8 The number of the first transition surfaces 2322a is n, n≥1, and the number of the second transition surfaces 2322b is n+1; any first transition surface 2322a is arranged between two adjacent second transition surfaces 2322b.

[0152] The number of second transition surfaces 2322b is one more than the number of first transition surfaces 2322a, and any first transition surface 2322a is arranged between two adjacent second transition surfaces 2322b. It can be understood that the first transition surfaces 2322a and the second transition surfaces 2322b are alternately connected, and the part where the transition surface 2322 is connected to the first flat surface 2320 and the second flat surface 2321 is the second transition surface 2322b.

[0153] In some embodiments, as Figure 8 The number of the first transition surface 2322a is 1, the number of the second transition surfaces 2322b is 2, and the first transition surface 2322a is located between the two second transition surfaces 2322b.

[0154] In other embodiments, the number of first transition surfaces 2322a may be 3. When the number of first transition surfaces 2322a is 3, the number of second transition surfaces 2322b is 4. In other embodiments, when the number of first transition surfaces 2322a is other values, such as 4, 5, or 6, the number of second transition surfaces 2322b is always one more than the number of first transition surfaces 2322a, such as 5, 6, or 7.

[0155] In the above scheme, by setting the number of second transition surfaces 2322b to be one more than the first transition surface 2322a, and making any first transition surface 2322a be set between two adjacent second transition surfaces 2322b, on the one hand, the first flat surface 2320 and the second flat surface 2321 can be smoothly transitioned, that is, the transition surfaces 2322 connected to the first flat surface 2320 and the second flat surface 2321 are both second transition surfaces 2322b with curved surfaces, thereby reducing the risk of sealing failure due to the formation of sharp corners between the flat surfaces. On the other hand, by setting the first transition surface 2322a, multiple locking positions can be provided between the third side wall 23 and the first box body 10, which is beneficial for the locking member to effectively connect the third side wall 23 and the first box body 10, thereby improving the structural stability of the battery 100 and making the battery 100 have higher reliability.

[0156] According to some embodiments of the present application, the length of the first transition surface 2322a is greater than or equal to 6 mm.

[0157] The length of the first transition surface 2322 a is L, and the length direction of the first transition surface 2322 a may be perpendicular to the thickness direction of the third sidewall 23 .

[0158] The length of the first transition surface 2322a can be 6 mm, 7 mm, 8 mm or a larger value.

[0159] In the above solution, by setting the length of the first transition surface 2322a to be greater than or equal to 6 mm, one or more locking positions can be set on the first transition surface 2322a, which is conducive to the locking member effectively connecting the third side wall 23 and the first box body 10, thereby improving the structural stability of the battery 100 and making the battery 100 have higher reliability.

[0160] According to some embodiments of this application, see Figure 10 The flat surface includes two second flat surfaces 2321, which are respectively arranged at the two ends of the third side wall 23 along the second direction x. The two second flat surfaces 2321 are connected by a transition surface 2322 at one end away from the second end wall 21, and the second direction x, the first direction z and the third direction y intersect each other.

[0161] The second side surface 232 includes an arc surface 2324 and a second flat surface 2321 . The two second flat surfaces 2321 are respectively provided at two ends of the third side wall 23 along the second direction x. The ends of the two second flat surfaces 2321 facing away from the second end wall 21 are connected by the arc surface 2324 .

[0162] The arc surface 2324 can be the upper surface of the third side wall 23. The arc surface 2324 is a curved surface with an arc-shaped outer edge. The second flat surface 2321 can be the outer surface of the third side surface 2140 and can be a flat surface. The second flat surface 2321 can be provided with multiple locking positions, such as multiple second threaded holes 2323, to connect the third side wall 23 to the first housing 10.

[0163] In the above solution, the arc surface 2324 smoothly transitions between the two oppositely disposed second straight surfaces 2321 , which can facilitate the formation of a good sealing surface between the first box body 10 and the second side surface 232 , so that the battery 100 has a higher sealing performance.

[0164] According to some embodiments of the present application, see Figure 8 The second end wall 21 has a first side surface 210 in the second direction x. The second direction x, the first direction z, and the third direction y intersect in pairs. The second straight surface 2321 is flush with the first side surface 210 .

[0165] The second flat surface 2321 is flush with the first side surface 210 , which may mean that the outer side surface of the third side wall 23 in the second direction x is flush with the outer side surface of the second end wall 21 in the second direction x, that is, the surface of the second box body 20 in the second direction x is a flat surface.

[0166] In the above solution, the second flat surface 2321 is flush with the first side surface 210 , which can reduce the risk of a gap between the first side wall 12 and the second side surface 232 , and reduce the risk of a gap between the connecting portion 14 and the second flat surface 2321 , thereby improving the sealing of the battery 100 .

[0167] According to some embodiments of this application, see Figure 11 and Figure 16 The second end wall 21 includes a first portion 213 and a second portion 214. Along the third direction y, the second portion 214 is located on one side of the first portion 213 and connected to the first portion 213. The dimension of the first portion 213 in the second direction x is greater than the dimension of the second portion 214 in the second direction x.

[0168] The second end wall 21 includes a first portion 213 and a second portion 214. Along the second direction x, the second portion 214 is located on one side of the first portion 213 and connected to the first portion 213. The dimension of the first portion 213 in the second direction x is greater than that of the second portion 214 in the second direction x.

[0169] The second end wall 21 may include a first portion 213 and a second portion 214. The phrase "along the second direction x, the second portion 214 is located on one side of the first portion 213 and connected to the first portion 213" may mean that, in the third direction y, the end of the first portion 213 may be connected to the second portion 214. In some embodiments, the second portion 214 may be provided at both ends of the first portion 213 in the third direction y.

[0170] “The dimension of the first portion 213 in the second direction x is greater than the dimension of the second portion 214 in the second direction x” may be understood as that the dimension of the end portion of the second end wall 21 in the second direction x is reduced.

[0171] In some embodiments, the first portion 213 may be a portion of the second end wall 21 for supporting battery cells, and the second portion 214 may not support battery cells. For example, along the first direction z, the projection of the battery cells does not fall on the second portion 214 .

[0172] In the above solution, the second end wall 21 includes a first portion 213 and a second portion 214. By setting the dimension of the first portion 213 in the second direction x to be larger than the dimension of the second portion 214 in the second direction x, a gap is formed between the first portion 213 and the second portion 214, or in other words, the end of the second end wall 21 is narrowed. Because the end of the second end wall 21 is not used by the battery cells, narrowing this portion can not only reduce the volume of the battery 100, saving installation space for the battery 100, but also achieve the effect of reducing the weight of the battery 100, making the battery 100 lighter.

[0173] According to some embodiments of this application, see Figure 11 and Figure 16 The second portion 214 has a third side surface 2140 in the second direction x, and the third side surface 2140 is flush with the second flat surface 2321.

[0174] The third side surface 2140 is a surface of the second portion 214 in the second direction x. The third side surface 2140 may be parallel to the first side surface 210 .

[0175] The third side surface 2140 is flush with the second straight surface 2321 , and the dimension of the third sidewall 23 in the second direction x may be equal to the dimension of the second portion 214 in the second direction x.

[0176] In the above solution, by setting the second flat surface 2321 to be flush with the third side surface 2140 of the second part 214, the sealing between the third side wall 23 and the second end wall 21 and the first box body 10 is facilitated, and the risk of sealing failure of the first box body 10 and the second box body 20 due to a gap between the third side wall 23 and the second end wall 21 at the second part 214 is reduced, so that the battery 100 has higher reliability.

[0177] According to some embodiments of this application, see Figure 11 and Figure 16 The first portion 213 has a fourth side surface 2130 in the second direction x. Along the second direction x, the fourth side surface 2130 protrudes from the third side surface 2140 .

[0178] The fourth side surface 2130 is a surface of the first portion 213 in the second direction x. The fourth side surface 2130 may be parallel to the first side surface 210 .

[0179] Along the third direction y, the fourth side surface 2130 protrudes from the third side surface 2140 . It can be understood that the fourth side surface 2130 exceeds the third side surface 2140 in the third direction y.

[0180] In the above scheme, along the third direction y, the fourth side 2130 protrudes from the third side 2140, which can form a gap between the first box body 10 and the second box body 20 at the position corresponding to the position between the third side 2140 and the fourth side 2130, or it can be understood that the first box body 10 and the second box body 20 are narrowed at this position. On the one hand, it can reduce the volume of the battery 100 and save the installation space of the battery 100. On the other hand, it can achieve the effect of reducing the weight of the battery 100, making the battery 100 lightweight.

[0181] According to some embodiments of the present application, see Figure 11 and Figure 16The first portion 213 has a third flat surface 2131 in the third direction y. Along the second direction x, one end of the third flat surface 2131 is connected to the third side surface 2140 in a circular arc transition, and the other end of the third flat surface 2131 is connected to the fourth side surface 2130 in a circular arc transition.

[0182] The third flat surface 2131 is a surface of the first portion 213 in the third direction y. The third flat surface 2131 may be parallel to the fourth surface 231 .

[0183] The third straight surface 2131 and the third side surface 2140 may be chamfered to form a circular arc transition between the third straight surface 2131 and the third side surface 2140. The third straight surface 2131 and the fourth side surface 2130 may be chamfered to form a circular arc transition between the third straight surface 2131 and the fourth side surface 2130.

[0184] In the above scheme, a third flat surface 2131 is provided between the third side surface 2140 and the fourth side surface 2130. By setting the third flat surface 2131 to have a circular arc transition connection with the third side surface 2140 at one end and a circular arc transition connection with the fourth side surface 2130 at the other end, the risk of damage to the sealing structure between the second end wall 21, the third side wall 23 and the first box body 10 due to stress concentration can be reduced, which is beneficial to the sealing between the first box body 10 and the second box body 20, so that the battery 100 has higher reliability.

[0185] According to some embodiments of this application, see Figure 12 The second end wall 21 has a first side surface 210 in the second direction x, and the flat surface includes a first flat surface 2320. The first flat surface 2320 is arranged at the end of the third side wall 23 away from the second end wall 21. The end of the first flat surface 2320 smoothly transitions to the first side surface 210 through a transition surface 2322. The second direction x, the first direction z and the third direction y intersect with each other.

[0186] The second side surface 232 includes a first flat surface 2320 and a transition surface 2322 . The first flat surface 2320 is provided at one end of the third side wall 23 away from the second end wall 21 . The end of the first flat surface 2320 smoothly transitions to the side surface of the second end wall 21 through the transition surface 2322 .

[0187] In some embodiments, the first flat surface 2320 may be the upper surface of the third sidewall 23, which may be a flat surface. The transition surface 2322 may be the outer side surface of the third sidewall 23, which may be an arc surface, for example, a circular arc surface.

[0188] “The end of the first straight surface 2320 smoothly transitions to the side surface of the second end wall 21 through the transition surface 2322” can be understood as that there are no sharp corners between the side surfaces of the first straight surface 2320 and the second end wall 21, and the first straight surface 2320 and the second end wall 21 are connected by the transition surface 2322 with a circular arc surface.

[0189] In the above scheme, the flat surface includes a first flat surface 2320 and a transition surface 2322. The first flat surface 2320 can form a good seal with the first box body 10. By setting the transition surface 2322 between the first flat surface 2320 and the side of the second end wall 21, the side of the first flat surface 2320 and the second end wall 21 can be smoothly transitioned, which can facilitate the formation of a good sealing surface between the first box body 10 and the second box body 20, so that the battery 100 has a higher sealing performance.

[0190] According to some embodiments of this application, see Figure 2-Figure 6 The second end wall 21 has a first side surface 210 in the second direction x. The first box body 10 also includes a first side wall 12. One end of the first side wall 12 is connected to the first end wall 11, and the other end is connected to the first side surface 210. The second direction x, the first direction z and the third direction y intersect with each other.

[0191] In some embodiments, the first side surface 210 may be a surface of the second end wall 21 in the second direction x. In some embodiments, the first side surface 210 may not be the surface of the second end wall 21 in the second direction x. For example, the first side surface 210 may be a surface of another component disposed on the second end wall 21 in the second direction x. In some embodiments, the first side surface 210 may be more convex toward the first housing 10 than the surface of the second end wall 21 in the second direction x.

[0192] Correspondingly, the first side surface 210 can be understood as a surface of the second end wall 21 that does not face or depart from the first end wall 11. In some embodiments, the first direction z is perpendicular to the second direction x.

[0193] “One end of the first side wall 12 is connected to the first end wall 11, and the other end is connected to the first side surface 210” may mean that the first side wall 12 connects the first end wall 11 and the second end wall 21 to each other, and the end of the first side wall 12 away from the first end wall 11 is directly or indirectly connected to the first side surface 210. It can be understood that the connection surface between the first side wall 12 and the first end wall 11 is located on the first side surface 210 and does not protrude from the outer contours of the first box body 10 and the second box body 20 in the second direction x. “The end of the first side wall 12 away from the first end wall 11 is directly or indirectly connected to the first side surface 210” may mean that the first side wall 12 is directly connected to the first side surface 210, or the first side wall 12 is indirectly connected to the first side surface 210 through an intermediate connecting member.

[0194] In the above scheme, the connection between the first box body 10 and the second box body 20 is achieved by connecting one end of the first side wall 12 of the first box body 10 to the first side surface 210 of the second box body 20. The connection between the first box body 10 and the second box body 20 can be achieved without setting a flange structure protruding along the second direction x, thereby improving the space utilization of the battery 100 in the second direction x to accommodate more battery cells or reduce the volume of the battery 100, thereby improving the volume energy density of the battery 100.

[0195] According to some embodiments of this application, see Figure 2-Figure 6 , the inner surface of the first side wall 12 is connected to the first side surface 210 .

[0196] The inner surface of the first sidewall 12 may refer to the surface of the first sidewall 12 facing the interior of the battery 100. “The inner surface of the first sidewall 12 is connected to the first side surface 210” may refer to a surface-to-surface connection between the inner surface of the first sidewall 12 and the first side surface 210.

[0197] In the above solution, by connecting the inner surface of the first side wall 12 (i.e., the surface of the first side wall 12 facing the first side surface 210) to the first side surface 210, the size of the battery 100 in the second direction x can be effectively reduced to maximize the volume energy density of the battery 100.

[0198] According to some embodiments of the present application, Figure 5 and Figure 6 The second end wall 21 has a first surface 211 facing the first end wall 11 , and an end of the first side wall 12 away from the first end wall 11 extends beyond the first surface 211 along the direction from the first end wall 11 to the second end wall 21 .

[0199] Second end wall 21 has a first surface 211 in a first direction z. First surface 211 is the surface of second end wall 21 facing first end wall 11. First surface 211 can be considered the upper surface of second end wall 21. In some embodiments, battery cells are located between first surface 211 and first end wall 11.

[0200] “In the direction from the first end wall 11 to the second end wall 21, the end of the first side wall 12 away from the first end wall 11 extends beyond the first surface 211” may mean that the orthographic projection of the first side wall 12 on the plane where the first side surface 210 is located overlaps with the first side surface 210, and the overlapping portion of the first side wall 12 and the first side surface 210 may be the portion where the first side wall 12 and the first side surface 210 are connected to each other.

[0201] In the above scheme, the end of the first side wall 12 away from the first end plate protrudes beyond the first surface 211, so that the first side wall 12 can be directly connected to the first side surface 210. On the one hand, it can effectively reduce the assembly difficulty and manufacturing cost caused by the indirect connection of the first side wall 12 to the first side surface 210 through the intermediate connecting member. On the other hand, the inner surface of the portion of the first end wall 11 protruding from the first surface 211 can be connected to the first side surface 210, which can effectively reduce the size of the battery 100 in the second direction x, so as to maximize the volume energy density of the battery 100.

[0202] According to some embodiments of the present application, Figure 5 and Figure 6 The second end wall 21 has a second surface 212 facing away from the first end wall 11 , and along the direction from the first end wall 11 to the second end wall 21 , the end of the first side wall 12 away from the first end wall 11 does not exceed the second surface 212 .

[0203] The second end wall 21 has a second surface 212 in the first direction z. The second surface 212 is a surface of the second end wall 21 facing away from the first end wall 11 . The second surface 212 can be regarded as the lower surface of the second end wall 21 .

[0204] “In the direction from the first end wall 11 to the second end wall 21 , the end of the first side wall 12 away from the first end wall 11 does not exceed the second surface 212 ” may mean that the end of the first side wall 12 away from the first end wall 11 is flush with the second surface 212 or is located between the second surface 212 and the first end wall 11 .

[0205] In the above solution, the end of the first side wall 12 away from the first end wall 11 does not exceed the second surface 212, so that the size of the battery 100 in the first direction z is controlled, and the battery 100 has a higher volume energy density.

[0206] In some embodiments, as Figure 3, the second direction x is the width direction of the battery 100. The battery 100 may be a prismatic battery. The height direction of the battery 100 may be the first direction z. The width and length directions of the battery 100 may be perpendicular to each other and both perpendicular to the height direction. The length of the battery 100 is generally greater than the width. In some embodiments, the side surface of the battery 100 in the width direction is the larger surface of the battery 100, i.e., the large surface. The first box body 10 can be the upper box body of the battery 100. In the manufacturing process of the battery 100, the material cost and density of the upper box body can be lower than those of the lower box body. For this reason, when the second direction x is the width direction of the battery 100, the first side wall 12 can be regarded as the large surface (the surface with a larger area) of the battery 100. The first side wall 12 can be set as large as possible so that the part of the second box body 20 corresponding to the first side wall 12 can be set as small as possible, thereby reducing the cost of the second box body 20 and the overall weight of the battery 100, making the battery 100 more lightweight, which is beneficial to improving the weight energy density of the battery 100.

[0207] According to some embodiments of the present application, the battery 100 further includes a first fastener (not shown in the figures), and the first side wall 12 is connected to the first side surface 210 via the first fastener.

[0208] The first fastener is a connecting component connecting the first side wall 12 and the first side surface 210. In some embodiments, the first fastener may be a connecting component such as a rivet, a screw, or a bolt. In other embodiments, the first fastener may also be an adhesive layer arranged between the first side wall 12 and the first side surface 210.

[0209] In the above solution, a first fastener is provided to connect the first side wall 12 and the first side surface 210 so that the connection between the first side wall 12 and the first side surface 210 has a higher stability, thereby improving the structural stability of the battery 100 .

[0210] According to some embodiments of this application, please combine Figure 6 and Figure 7 The first side wall 12 is provided with a first through hole 120 , the first side surface 210 is provided with a first threaded hole 2100 , and the first fastener passes through the first through hole 120 and is connected to the first threaded hole 2100 .

[0211] The first through hole 120 may refer to a hole-like structure that passes through the outer surface and the inner surface of the first side wall 12. The phrase "the first side surface 210 is provided with a first threaded hole 2100" may refer to a hole-like structure with an internal thread formed on the first side surface 210, such as a self-tapping thread; or may refer to a threaded hole for a rivet nut or a threaded hole for a pressure rivet nut provided on the first side surface 210. Figure 6 and Figure 7The number of the first through holes 120 can be multiple, and the multiple first through holes 120 are arranged at intervals along the extension direction of the first side wall 12 (the extension direction of the first side wall 12 is perpendicular to the first direction z and the second direction x); the number of the first threaded holes 2100 is also multiple, and the first threaded holes 2100 are arranged corresponding to the first through holes 120.

[0212] “The first fastener passes through the first through hole 120 and is connected to the first threaded hole 2100 ” may mean that the first fastener has an external thread that matches the first threaded hole 2100 so as to be threadedly connected to the first threaded hole 2100 .

[0213] In the above scheme, the first fastener can be a connecting component with external threads such as a bolt or a screw, which can be effectively connected to the first threaded hole 2100, thereby improving the connection stability between the first side wall 12 and the first side surface 210 and ensuring good sealing between the first side wall 12 and the first side surface 210.

[0214] According to some embodiments of the present application, Figure 3 The battery 100 further includes a first seal 30 , which is disposed between the first side wall 12 and the first side surface 210 .

[0215] The first seal 30 may be a component having sealing properties and disposed between the first sidewall 12 and the first side surface 210 . In some embodiments, the first seal 30 may be a sealant or a gasket, and the first seal 30 may be clamped between the first sidewall 12 and the first side surface 210 .

[0216] In the above solution, by disposing the first sealing member 30 between the first side wall 12 and the first side surface 210 , the sealing between the first side wall 12 and the first side surface 210 can be improved, thereby improving the sealing of the battery 100 .

[0217] According to some embodiments of the present application, Figure 3 、 Figure 4 and Figure 7 There are two first side walls 12, and the two first side walls 12 are arranged opposite to each other along the second direction x; the second end wall 21 is located between the two first side walls 12, and the second end wall 21 has two first side surfaces 210 arranged opposite to each other along the second direction x; the first side surfaces 210 correspond to the first side walls 12 one by one.

[0218] In some embodiments, there are two first side walls 12, which are arranged opposite each other along the second direction x to correspond to the two first side surfaces 210 of the second end wall 21 that are arranged opposite each other in the second direction x. The second end wall 21 is located between the two first side walls 12, and it can be understood that the outer contour of the battery 100 in the second direction x is defined by the two first side walls 12.

[0219] In the above solution, there are two first side walls 12 which are arranged opposite to each other along the second direction x and are respectively connected to the corresponding first side surfaces 210 , which can effectively improve the space utilization of the battery 100 in the second direction x, thereby improving the volume energy density of the battery 100 .

[0220] In some other embodiments, the number of the first side wall 12 may be one, and the one first side wall 12 can save space on one side of the battery 100 in the second direction x.

[0221] According to some embodiments of the present application, Figure 6 The second box body 20 further includes two second side walls 22 . The two second side walls 22 are arranged opposite to each other along the second direction x and connected to the second end wall 21 . The battery cell is arranged between the two second side walls 22 .

[0222] The second side wall 22 is a component mounted on the second end wall 21. The second side wall 22 can be mounted on the second end wall 21 by welding, bonding, bolting, or other methods. The second side wall 22 can also be integrally formed with the second end wall 21. The second end wall 21 has a first surface 211 facing the first end wall 11. The second side wall 22 protrudes from the first surface 211 in the direction from the second end wall 21 to the first end wall 11.

[0223] In some embodiments, the first side surface 210 may be a surface where the second side wall 22 and the first side wall 12 are connected to each other.

[0224] In some embodiments, the outer surface of the second sidewall 22 may be flush with the first side surface 210 .

[0225] In the above scheme, two opposite second side walls 22 are arranged on the second end wall 21 along the second direction x. On the one hand, the structural strength of the second box body 20 can be improved. On the other hand, the installation area of ​​the battery cell can be limited so that the battery cell can be stably assembled in the second box body 20. On the other hand, since the second side wall 22 protrudes from the surface of the second end wall 21, when the battery cell is bonded to the second box body 20 by glue, the glue overflow space can be effectively controlled, thereby reducing the risk of waste and environmental pollution caused by glue overflow.

[0226] According to some embodiments of this application, see Figure 4 and Figure 7 The first box body 10 is formed with openings 13 at both ends along the third direction y, and the two third side walls 23 respectively close the two openings 13.

[0227] When the first direction z is the height direction of the battery 100 and the second direction x is the width direction of the battery 100 , the third direction y may be the length direction of the battery 100 .

[0228] The third side wall 23 is a component provided on the second end wall 21. The third side wall 23 can be connected to the second end wall 21 by welding, bonding, or bolting, or the third side wall 23 can be integrally formed with the second end wall 21. The second end wall 21 has a first surface 211 facing the first end wall 11. The third side wall 23 protrudes from the first surface 211 in the direction from the second end wall 21 to the first end wall 11. The third side wall 23 can enhance the structural strength of the first housing 10. In some embodiments, the third side wall 23 can be mounted with components such as explosion-proof valves, water-cooling connectors, or high and low voltage connectors, allowing the battery 100 to charge and discharge normally.

[0229] The openings 13 formed at both ends of the first housing 10 along the third direction y can be notches corresponding to the third sidewalls 23. The third sidewalls 23 can correspondingly close the openings 13, reducing the risk of excessive interference or overlap between the batteries 100, thereby improving the utilization rate of materials used in the manufacturing of the batteries 100 and lowering the manufacturing cost of the batteries 100. This also reduces the risk of excessive interference or overlap between the batteries 100, which could waste space. In some embodiments, the cross-section of the first housing 10 can be U-shaped.

[0230] In the above scheme, by providing the third side wall 23, on the one hand, components such as explosion-proof valves, water-cooling connectors, or high and low voltage connectors can be installed on the third side wall 23, so that the battery 100 can be charged and discharged normally; on the other hand, compared with the flange structure protruding along the third direction y provided between the first box body 10 and the second box body 20, by providing the third side wall 23 to close the opening 13, the space utilization rate of the battery 100 in the third direction y can be improved, thereby improving the volume energy density of the battery 100.

[0231] According to some embodiments of this application, see Figure 15 , a dimension of one third side wall 23 along the first direction z is smaller than a dimension of the other third side wall 23 along the first direction z.

[0232] The dimension of the third sidewall 23 in the first direction z can be considered the height of the third sidewall 23. "One third sidewall 23 has a dimension along the first direction z that is smaller than the other third sidewall 23" can mean that one third sidewall 23 is taller and the other is shorter. Since the heights of the two third sidewalls 23 are different, the resulting height difference can be compensated by the first housing 10.

[0233] In the above scheme, the third side wall 23 with a larger size can be installed with components such as explosion-proof valves, water-cooling connectors or high and low voltage connectors, so that the battery 100 can be charged and discharged normally; by reducing the size of the other third side wall 23, the size of the part of the first box body 10 corresponding to the third side wall 23 can be adaptively increased, thereby increasing the proportion of the first box body 10 in the battery 100 (in this embodiment, the first box body 10 can be an upper box body with lower material cost and density), thereby reducing the manufacturing cost of the battery 100 and improving the weight energy density of the battery 100.

[0234] According to some embodiments of this application, see Figure 7 and Figure 8 The first box body 10 includes two connecting portions 14 , which are respectively located at two ends of the first box body 10 along the third direction y. The connecting portions 14 surround an opening 13 , and the connecting portions 14 are connected to the second side surface 232 .

[0235] The third surface 230 may be the inner surface of the third sidewall 23, the fourth surface 231 may be the outer surface of the third sidewall 23, and the second side surface 232 may be the outer peripheral surface of the third sidewall 23 located between the inner and outer surfaces. The outer peripheral surface of the third sidewall 23 may refer to the outer surface of the third sidewall 23 in the first direction z and the second direction x.

[0236] The connecting portion 14 is a component located at the end of the first box body 10 in the third direction y. It surrounds the opening 13 of the first box body 10 and the contour of the connecting portion 14 matches the second side surface 232 of the third side wall 23 .

[0237] “The connecting portion 14 is connected to the second side surface 232 ” may mean that in the third direction y, the first box body 10 and the second box body 20 are connected to each other through the connecting portion 14 and the second side surface 232 .

[0238] See also Figure 7 The connecting portion 14 may be in a sheet shape and cooperate with the second side surface 232. In some embodiments, the connection relationship between the connecting portion 14 and the second side surface 232 is a surface-to-surface connection.

[0239] In the above solution, by providing the connecting portion 14 to connect to the second side surface 232 of the third side wall 23 , the connection stability and sealing performance between the first box body 10 and the second box body 20 can be improved.

[0240] According to some embodiments of this application, see Figure 13 and Figure 14 The first box body 10 further includes a fourth side wall 15, which is adjacent to the first side wall 12. One end of the fourth side wall 15 is connected to the first end wall 11, and the connecting portion 14 protrudes from the fourth side wall 15 in a direction away from the enclosed space.

[0241] The first end wall 11 has a lower surface facing the second end wall 21. The fourth side wall 15 is a component that protrudes from the lower surface and is adjacent to the first side wall 12. The fourth side wall 15 can be welded, bonded, or bolted to the first end wall 11, or the fourth side wall 15 can be integrally formed with the first end wall 11. When the first housing 10 has two first side walls 12 arranged opposite each other along the second direction x, the fourth side wall 15 is located between the two first side walls 12, with one end of the fourth side wall 15 connected to the first end wall 11, and the opposite ends of the fourth side wall 15 in the second direction x are respectively connected to the two first side walls 12.

[0242] The connecting portion 14 can be protruded from the inside of the enclosed space to the outside of the enclosed space on the fourth side wall 15, the connecting portion 14 can be integrally formed with the fourth side wall 15, or the connecting portion 14 can be connected to the fourth side wall 15 by welding, bonding, bolting, etc.

[0243] In some embodiments, combined Figure 13 and Figure 14 By setting the fourth side wall 15, the size of the third side wall 23 in the first direction z can be reduced, that is, the larger the size of the fourth side wall 15 in the first direction z, the smaller the size of the third side wall 23 in the first direction z can be.

[0244] In the above scheme, the first box body 10 can be an upper box body, and the second box body 20 can be a lower box body. In the manufacturing process of the battery 100, the material cost and density of the upper box body can be lower than those of the lower box body. For this reason, the fourth side wall 15 is provided to increase the proportion of the first box body 10 in the battery 100, thereby effectively reducing the manufacturing cost of the battery 100 and improving the weight energy density of the battery 100.

[0245] According to some embodiments of the present application, the battery 100 further includes a second fastener (not shown in the figures), and the connecting portion 14 is connected to the second side surface 232 via the second fastener.

[0246] The second fastener is a connecting component connecting the second side surface 232 and the connecting portion 14. In some embodiments, the second fastener can be a connecting component such as a rivet, a screw, or a bolt. In other embodiments, the second fastener can also be an adhesive layer provided between the connecting portion 14 and the second side surface 232. Figure 8 When the second fastener is a threaded member, such as a bolt, a corresponding second threaded hole 2323 can be set on the second side surface 232.

[0247] In the above solution, a second fastener is provided to connect the second side surface 232 and the connecting portion 14 to improve the connection stability between the connecting portion 14 and the second side surface 232 , thereby improving the structural stability of the battery 100 .

[0248] According to some embodiments of the present application, Figure 7 and Figure 8 The connecting portion 14 is provided with a second through hole 140 , the second side surface 232 is provided with a second threaded hole 2323 , and the second fastener passes through the second through hole 140 and is connected to the second threaded hole 2323 .

[0249] The second through hole 140 may refer to a hole-like structure that passes through the outer surface and the inner surface of the connecting portion 14. The second side surface 232 is provided with a second threaded hole 2323, which may refer to a hole-like structure with an internal thread formed on the second side surface 232, such as a self-tapping thread; or may refer to a rivet nut or a pressure rivet nut provided on the second side surface 232. Figure 7 and Figure 8 The number of the second through holes 140 can be multiple, and the multiple second through holes 140 are arranged at intervals; the number of the second threaded holes 2323 is also multiple, and the first threaded holes 2100 are arranged corresponding to the first through holes 120.

[0250] “The second fastener passes through the second through hole 140 and is connected to the second threaded hole 2323 ” may mean that the second fastener has an external thread that matches the second threaded hole 2323 so as to be threadedly connected to the second threaded hole 2323 .

[0251] In the above scheme, the second fastener can be a connecting component with external threads such as a bolt or a screw, which can be effectively connected to the second threaded hole 2323, thereby improving the connection stability between the connecting part 14 and the second side 232, and ensuring good sealing between the connecting part 14 and the second side 232.

[0252] According to some embodiments of this application, see Figure 3 The battery 100 further includes a second sealing member 31 , which is disposed between the connecting portion 14 and the second side surface 232 .

[0253] The second sealing member 31 may be a component having sealing properties and disposed between the connecting portion 14 and the second side surface 232. In some embodiments, the second sealing member 31 may be a sealant or a gasket, and the second sealing member 31 is clamped between the first flat surface 2320 and the connecting portion 14, between the second flat surface 2321 and the connecting portion 14, and between the transition surface 2322 and the connecting portion 14.

[0254] In the above solution, by providing the second sealing member 31 between the connecting portion 14 and the second side surface 232 , the sealing between the connecting portion 14 and the second side surface 232 can be improved, thereby improving the sealing of the battery 100 .

[0255] According to some embodiments of this application, see Figure 3The battery 100 further includes a first sealing member 30, which is disposed between the first side wall 12 and the first side surface 210. Two ends of the first sealing member 30 are respectively connected to the two second sealing members 31.

[0256] exist Figure 3 In the figure, the first seal 30 corresponds to the connection part between the first side surface 210 and the first side wall 12, which can extend along the length direction of the battery 100, and the second seal 31 corresponds to the connection part between the second side surface 232 and the first box body 10, which includes a part extending along the width direction of the battery 100, a part extending along the height direction of the battery 100, and a part corresponding to the transition surface 2322.

[0257] In some embodiments, the first seal 30 and the second seal 31 may be independent structures, connected by bonding or an intermediate connector. In other embodiments, the first seal 30 and the second seal 31 may be an integral structure.

[0258] In the above solution, the first sealing member 30 and the second sealing member 31 can be integrally formed or separately connected. By providing the first sealing member 30 and the second sealing member 31, good sealing can be achieved between the first box body 10 and the second box body 20, thereby improving the reliability of the battery 100.

[0259] According to some embodiments of the present application, Figure 3 and Figure 5 The second end wall 21 is provided with a mounting portion 40 for mounting the battery 100 on an electrical device.

[0260] The mounting portion 40 is provided on the second end wall 21 and is used to mount the battery 100 on an electrical device. The mounting portion 40 can be a connecting structure such as a nut or a connecting bracket provided on the second end wall 21. In some embodiments, there can be multiple mounting portions 40, which can be arranged along the third direction y and the second direction x. In some embodiments, the mounting portion 40 can be an M8, M10, M12, or M16 threaded hole provided on the second end wall 21.

[0261] In the above solution, the second end wall 21 is provided with a mounting portion 40 to achieve stable assembly of the battery 100 , so that the battery 100 can stably provide electrical energy.

[0262] According to some embodiments of the present application, the material density of the first box body 10 is less than the material density of the second box body 20 .

[0263] The density of a material is the mass per unit volume of a material in a specific volume state.

[0264] The material density of the first box body 10 is smaller than that of the second box body 20 , so the density of the battery 100 is reduced. Under the same volume, the weight of the battery 100 is reduced, thereby improving the weight energy density of the battery 100 .

[0265] In some other embodiments, the material density of the first box body 10 may also be equal to or greater than the material density of the second box body 20 .

[0266] According to some embodiments of the present application, the first box body 10 is made of plastic, and the second box body 20 is made of aluminum alloy.

[0267] The cost of plastic is lower than that of aluminum alloy, and its density is lower than that of aluminum alloy. The structural strength and rigidity of aluminum alloy are higher than those of plastic.

[0268] In the above solution, the first housing 10 can be the upper housing of the battery 100, and the second housing 20 can be the lower housing of the battery 100. The second housing 20 is made of aluminum alloy, which gives it high structural strength and rigidity, providing high protection for the battery cells. The first housing 10, as the upper housing, seals the battery cells between the upper and lower housings. Its plastic construction can effectively reduce the manufacturing cost of the battery 100 and effectively reduce the weight of the battery 100, thereby increasing its gravimetric energy density.

[0269] In some other embodiments, the first box body 10 may also be made of aluminum, aluminum alloy, steel, stainless steel, etc. In some other embodiments, the second box body 20 may also be made of plastic, aluminum, steel, stainless steel, etc.

[0270] According to some embodiments of the present application, the second end wall 21 is used to support battery cells.

[0271] During assembly, the battery cells can be assembled to the inner surface of the second end wall 21 . The second end wall 21 supports the battery cells, which can facilitate the positioning of the battery cells.

[0272] In the above solution, the second end wall 21 can be used as an assembly base when assembling the battery cell, thereby facilitating the assembly of the battery cell.

[0273] According to some embodiments of the present application, there is also provided an electric device, comprising the battery 100 described above, for providing electric energy. In some embodiments, the electric device may be a vehicle 1000, which may be a heavy truck or a bus.

[0274] According to some embodiments of the present application, the present application also provides a battery 100, see Figure 3-Figure 8The battery 100 includes a first housing 10, a second housing 20, and battery cells. The first housing 10 is the upper housing of the battery 100, and the second housing 20 is the lower housing of the battery 100. The second housing 20 and the first housing 10 are connected to each other to form a closed space, and the battery cells are arranged in the closed space. The first housing 10 includes a first end wall 11, two first side walls 12, and two connecting portions 14. The first end wall 11 can be the top wall of the battery 100, and the two first side walls 12 are arranged opposite to the first end wall 11 along the second direction x (the width direction of the battery 100). The two connecting portions 14 are respectively located at the two ends of the first housing 10 in the third direction y (the length direction of the battery 100), and the connecting portions 14 enclose an opening 13. The second housing 20 includes a second end wall 21 and two second side walls 22. The second end wall 21 can be the bottom wall of the battery 100. The second housing 20 has two first surfaces 211 arranged opposite to each other along the second direction x. The second end wall 21 may be provided with a crossbeam 24. There may be multiple crossbeams 24, spaced apart along the third direction y. The crossbeams 24 enhance the structural strength of the second housing 20, and the battery cells may also be connected to the crossbeams 24. Two second sidewalls 22 are disposed relative to the second end wall 21 along the third direction y (the length of the battery 100). The second sidewalls 22 have a first flat surface 2320 facing the first end wall 11, two second flat surfaces 2321 disposed opposite each other along the second direction x, and a transition surface 2322 connecting the first flat surface 2320 and the second flat surface 2321.

[0275] The first end wall 11 and the second end wall 21 are arranged opposite each other along a first direction z (the height direction of the battery 100). The inner surface of the first side wall 12 is connected to the first side surface 210. A first seal 30 is provided between the first side wall 12 and the first side surface 210. The first side wall 12 and the second side surface 232 are connected by a first fastener. The second side wall 22 corresponds to the connecting portion 14. A second seal 31 is provided between the second side wall 22 and the connecting portion 14. The first flat surface 2320, the second flat surface 2321, and the transition surface 2322 are all connected to the connecting portion 14 via a second fastener.

[0276] A mounting portion 40 for mounting the battery 100 on an electrical device (such as a heavy truck or a bus) is provided on the crossbeam 24 .

[0277] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some or all of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the scope of the technical solutions of the embodiments of the present application, and they should all be included in the scope of the claims and specification of the present application. In particular, as long as there is no structural conflict, the various technical features mentioned in the various embodiments can be combined in any way. The present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions that fall within the scope of the claims.

Claims

1. A battery, characterized in that: include: Multiple battery cells; A busbar component, used to achieve electrical connection between the plurality of battery cells; A first box body including a first end wall; a second box body, which, together with the first box body, encloses a closed space for accommodating the battery cells, the second box body comprising a second end wall and two third side walls, the second end wall being arranged opposite to the first end wall along a first direction, and the two third side walls being arranged opposite to each other along a third direction and connected to the second end wall; The third side wall includes a third surface facing the enclosed space, a fourth surface facing away from the enclosed space, and a second side surface connecting the third surface and the fourth surface; the second side surface includes a straight surface and a transition surface for sealingly connecting with the first box body, and the straight surface and the transition surface are connected and smoothly transitioned; The second end wall has a first side surface in the second direction, the first box body further includes a first side wall, one end of the first side wall is connected to the first end wall, and the other end is connected to the first side surface, and the second direction, the first direction and the third direction intersect each other; The battery also includes a first seal disposed between the first sidewall and the first side surface.

2. The battery according to claim 1, characterized in that The flat surface includes a first flat surface and a second flat surface. The first flat surface is arranged at an end of the third side wall away from the second end wall. The two second flat surfaces are respectively arranged at both ends of the third side wall along the second direction. The transition surface connects the first flat surface and the second flat surface to ensure a smooth transition between the first flat surface and the second flat surface.

3. The battery according to claim 2, characterized in that The transition surface is an arc transition surface.

4. The battery according to claim 2, characterized in that The transition surface includes a first transition surface and a second transition surface connected to each other. The edge of the first transition surface in the third direction is straight, and the edge of the second transition surface in the third direction is arc-shaped.

5. The battery according to claim 4, characterized in that The number of the first transition surface is one, the number of the second transition surfaces is two, and the first transition surface is arranged between two adjacent second transition surfaces.

6. The battery according to claim 1, characterized in that The flat surface includes two second flat surfaces, which are respectively arranged at two ends of the third side wall along the second direction, and the ends of the two second flat surfaces facing away from the second end wall are connected by the transition surface.

7. The battery according to any one of claims 2 to 6, characterized in that The second flat surface is flush with the first side surface.

8. The battery according to claim 1, characterized in that The flat surface includes a first flat surface, which is arranged at an end of the third side wall away from the second end wall, and an end of the first flat surface smoothly transitions to the first side surface through the transition surface.

9. The battery according to claim 1, characterized in that The inner surface of the first side wall is connected to the first side surface.

10. The battery according to claim 1, characterized in that The second end wall has a first surface facing the first end wall, and an end of the first side wall away from the first end wall extends beyond the first surface in a direction from the first end wall to the second end wall.

11. The battery according to claim 1, characterized in that The second end wall has a second surface facing away from the first end wall. In a direction from the first end wall to the second end wall, an end of the first side wall away from the first end wall does not exceed the second surface.

12. The battery according to claim 1, characterized in that The battery further includes a first fastener, and the first side wall is connected to the first side surface through the first fastener.

13. The battery according to claim 12, characterized in that The first side wall is provided with a first through hole, the first side surface is provided with a first threaded hole, and the first fastener passes through the first through hole and is connected to the first threaded hole.

14. The battery according to claim 1, characterized in that There are two first side walls, and the two first side walls are arranged opposite to each other along the second direction; the second end wall is located between the two first side walls, and the second end wall has two first side faces arranged opposite to each other along the second direction; the first side faces correspond to the first side walls one by one.

15. The battery according to claim 1, characterized in that The second box body further includes two second side walls, which are arranged opposite to each other along the second direction and connected to the second end wall, and the battery cell is arranged between the two second side walls.

16. The battery according to claim 1, characterized in that The first box body is formed with openings at both ends along the third direction, and the two third side walls respectively close the two openings.

17. The battery according to claim 16, characterized in that A dimension of one of the third side walls along the first direction is smaller than a dimension of the other third side wall along the first direction.

18. The battery according to claim 16, characterized in that The first box body includes two connecting parts, which are respectively located at two ends of the first box body along the third direction. The connecting parts surround the opening and are connected to the second side surface.

19. The battery according to claim 18, characterized in that The first box body further includes a fourth side wall, the fourth side wall being adjacent to the first side wall; One end of the fourth side wall is connected to the first end wall, and the connecting portion protrudes from the fourth side wall in a direction away from the closed space.

20. The battery according to claim 18, characterized in that The battery further includes a second fastener, and the connecting portion is connected to the second side surface via the second fastener.

21. The battery according to claim 20, characterized in that The connecting portion is provided with a second through hole, the second side surface is provided with a second threaded hole, and the second fastener passes through the second through hole and is connected to the second threaded hole.

22. The battery according to claim 18, characterized in that The battery further includes a second sealing member disposed between the connecting portion and the second side surface.

23. The battery according to claim 22, characterized in that Both ends of the first sealing member are respectively connected to the two second sealing members.

24. The battery according to claim 1, characterized in that The second end wall is provided with a mounting portion for mounting the battery on an electrical device.

25. The battery according to claim 1, characterized in that The material density of the first box body is lower than the material density of the second box body.

26. The battery according to claim 1, characterized in that The first box body is made of plastic, and the second box body is made of aluminum alloy.

27. The battery according to claim 1, characterized in that The second end wall is used to support the battery cell.

28. An electrical device, characterized in that: The battery according to any one of claims 1 to 27 is used to provide electrical energy.

Citation Information

Patent Citations

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