Battery device, power utilization device and energy storage device
By separating the high-voltage distribution box and connector on the battery unit's enclosure and connecting the wiring harness through the wire hole, the problem of the high-voltage distribution box occupying space is solved, achieving efficient utilization of the internal space of the battery unit and improved sealing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CONTEMPORARY AMPEREX TECHNOLOGY CO LTD
- Filing Date
- 2026-01-19
- Publication Date
- 2026-04-17
AI Technical Summary
The existing high-voltage distribution box design of battery packs occupies a large amount of internal space, resulting in low utilization of the internal space of the battery pack and affecting battery capacity.
The high-voltage distribution box is placed on the side of the battery unit's enclosure wall away from the housing cavity, and is set separately from the connector on different sides of the enclosure wall. The connecting wire harness is introduced through the wire hole on the enclosure wall to realize the electrical connection between the high-voltage distribution box and the battery cell, simplifying the wiring design and forming a sealed interface.
Without increasing the volume of the enclosure, the battery distribution within the cavity is optimized, improving the space utilization and sealing of the battery device, reducing the space occupied by wiring harnesses, reducing the risk of electrical component exposure, and increasing battery capacity.
Smart Images

Figure CN224138259U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of battery technology, and in particular to a battery device, an electrical device, and an energy storage device. Background Technology
[0002] Energy conservation and emission reduction are key to the sustainable development of the automotive industry, and electric vehicles, due to their energy-saving and environmentally friendly advantages, have become an important component of this sustainable development. For electric vehicles, battery technology is a crucial factor in their development.
[0003] Typically, a battery pack contains individual battery cells and various electrical components. Among these, the high-voltage distribution box is the control unit for distributing energy within the battery pack, used for high-voltage distribution. As the demand for battery power increases, the existing high-voltage distribution box design occupies a significant amount of internal space, resulting in low space utilization within the battery pack. Utility Model Content
[0004] This application aims to at least solve one of the technical problems existing in the background art. To this end, one object of this application is to provide a battery device, an electrical device and an energy storage device to improve the space utilization rate inside the battery device.
[0005] An embodiment of the first aspect of this application provides a battery device, including a housing, a battery cell, a connector, a high-voltage distribution box, a first connecting harness, and a second connecting harness. The housing includes a receiving cavity, and the housing wall of the housing has a wire-passing hole communicating with the receiving cavity. The battery cell is disposed in the receiving cavity. The connector passes through the housing and is electrically connected to the battery cell. The high-voltage distribution box is disposed on the side of the housing wall away from the receiving cavity, and the high-voltage distribution box and the connector are respectively located on different sides of the housing wall. One end of the first connecting harness is electrically connected to a functional device in the high-voltage distribution box, and the other end is introduced into the receiving cavity through the wire hole and electrically connected to the battery cell. One end of the second connecting harness is electrically connected to a functional device in the high-voltage distribution box, and the other end is introduced into the receiving cavity through the wire hole and electrically connected to the connector.
[0006] In the technical solution of this application embodiment, the high-voltage distribution box is placed on the side of the battery device's enclosure wall away from the receiving cavity, and the high-voltage distribution box and connector are separately and independently set on different sides of the enclosure wall. The connector passes through the enclosure wall and is electrically connected to the battery cell. The connection harnesses between the functional components in the high-voltage distribution box and the battery cell and the connector are introduced into the receiving cavity through the wire holes on the enclosure wall. This realizes the integrated design of the high-voltage distribution box and the battery device, eliminating the need for additional connectors to transfer the external high-voltage distribution box to the battery cell in the receiving cavity. The external high-voltage distribution box design makes full use of the planar expansion space of the enclosure wall, freeing up a certain space for the receiving cavity without increasing the enclosure volume, optimizing the battery distribution in the receiving cavity, significantly improving the utilization rate of the internal space of the battery device, and thus increasing the battery capacity of the battery device.
[0007] In some embodiments, the high-voltage distribution box and the wiring hole are located on the same side wall of the enclosure, and the wiring hole is located within the outer contour of the high-voltage distribution box's orthographic projection onto the enclosure. This not only reduces wiring harness bending and redundant length, and lowers the space occupied by the wiring harness, but also reduces the risk of electrical components within the wiring harness and battery device being exposed to the outside environment, improving the overall sealing and protection performance of the device.
[0008] In some embodiments, a sealed interface is formed between the high-voltage distribution box and the enclosure wall, and the wire passage hole corresponds to the sealed area of the sealed interface. By forming a sealed interface around the wire passage hole between the high-voltage distribution box and the enclosure, the electrical connection paths between the high-voltage distribution box and the battery cells and connectors are sealed, achieving a sealing and protection effect.
[0009] In some embodiments, the connector is located on the first wall of the enclosure, and the high-voltage distribution box is located on the second wall of the enclosure, with the first and second walls adjacent to or opposite each other. This allows for more complex space designs for battery devices and enables the placement of more individual battery cells within the internal space of the battery device, thereby increasing the battery's capacity.
[0010] In some embodiments, the high-voltage distribution box further includes a high-voltage distribution box cover. The high-voltage distribution box cover includes a cover body and a first flange. The first flange is located around the perimeter of the cover body and has a first mounting hole. A first fastener passes through the first mounting hole to install the high-voltage distribution box cover onto the enclosure. The surface of the cover body facing the enclosure wall has a receiving groove, in which functional components are placed. Thus, there is no need for a separate bracket or support plate structure to fix the high-voltage distribution box. Instead, the installation of the high-voltage distribution box and the enclosure is achieved simultaneously during the assembly of the high-voltage distribution box, simplifying the installation process and saving time and costs.
[0011] In some embodiments, the high-voltage distribution box cover and the box wall enclose a cavity for accommodating functional devices. Using the box wall as part of the high-voltage distribution box simplifies its structure and reduces its thickness, thereby reducing its space-consuming proportion. This allows for more internal space within the limited storage space of the battery device, which is beneficial for further increasing the battery's capacity.
[0012] In some embodiments, the high-voltage distribution box further includes a first sealing element located between the first flange and the box wall. The high-voltage distribution box cover and the box wall form a sealing interface through the first sealing element, and the wire passage hole is located within the inner contour of the orthographic projection of the first sealing element onto the box body. This allows for simultaneous sealing of the high-voltage distribution box and the wire passage hole, further reducing the risk of dust or moisture intruding into the high-voltage distribution box and the box body, improving the overall sealing and protection performance of the device, and further reducing the risk of corrosion or short circuits in wiring harnesses and electrical components caused by environmental factors.
[0013] In some embodiments, the orthographic projection profile of the first seal on the housing coincides with the orthographic projection profile of the first flange on the housing. This maximizes the effective sealing interface between the high-voltage distribution box cover and the housing, extends the sealing path from the outside to the inside of the high-voltage distribution box, and effectively improves the sealing performance of the entire device.
[0014] In some embodiments, the first sealing element has second mounting holes that correspond one-to-one with the first mounting holes. The first fastener passes through the first mounting holes and the second mounting holes in sequence to install the high-voltage distribution box cover and the first sealing element onto the enclosure. In this way, the high-voltage distribution box cover and the first sealing element can be installed synchronously and precisely aligned. At the same time, by tightening the first fastener, a compression seal can be achieved between the high-voltage distribution box cover and the enclosure, improving the sealing effect.
[0015] In some embodiments, the high-voltage distribution box further includes a mounting bracket, through which functional components are mounted on at least one of the enclosure and the cover body. This allows for three-dimensional mounting of the functional components. Compared to the traditional high-voltage distribution box design that lays the functional components flat, this application can reduce the thickness of the high-voltage distribution box in the direction perpendicular to the adjacent enclosure wall, thereby reducing the space occupied by the high-voltage distribution box.
[0016] In some embodiments, the high-voltage distribution box further includes a high-voltage distribution box base adapted to the high-voltage distribution box cover. The high-voltage distribution box base is mounted on the enclosure and includes a base body and a second flange. The second flange is located around the perimeter of the base body and has third mounting holes corresponding to the first mounting holes. A first fastener passes through the first mounting holes and the third mounting holes in sequence to mount the high-voltage distribution box cover onto the high-voltage distribution box base. The high-voltage distribution box cover and the high-voltage distribution box base together form a cavity for accommodating functional components. The functional components are mounted on at least one of the base body and the cover body. Since the high-voltage distribution box cover and the high-voltage distribution box base combine to form the outer shell structure of the high-voltage distribution box, the overall structural stability of the high-voltage distribution box can be improved, providing better protection for each functional component. In addition, it also enables three-dimensional mounting of each functional component of the high-voltage distribution box, reducing the thickness of the high-voltage distribution box in the direction perpendicular to the adjacent enclosure wall, thereby reducing the space ratio of the high-voltage distribution box.
[0017] In some embodiments, the base body is provided with a through hole corresponding to the wire hole. The connecting wires are introduced into the receiving cavity from inside the high-voltage distribution box by passing through the through hole and the wire hole in sequence. In this way, the first and second connecting wires leading out from the through hole are directly introduced into the box through the wire hole, eliminating the need for winding design, reducing wire bending and redundant length, reducing the space occupied by the wires, and simplifying the wire wiring design.
[0018] In some embodiments, the high-voltage distribution box further includes a second seal and a third seal. The second seal is located between the high-voltage distribution box cover and the high-voltage distribution box base, forming a sealed interface between them. The third seal is located between the high-voltage distribution box base and the box wall, forming a sealed interface between them. The wire passage hole is located within the inner contour of the orthographic projection of the third seal onto the box body, and the outer contour of the wire hole's orthographic projection onto the box body is located within the inner contour of the third seal's orthographic projection onto the box body. The second seal achieves a seal between the high-voltage distribution box cover and the high-voltage distribution box base, while the third seal seals the wire passage hole and the wire hole, reducing the risk of external dust or moisture intruding into the high-voltage distribution box and the box body, thus improving the overall sealing performance of the device.
[0019] In some embodiments, the second seal is located between the first flange and the second flange, and the second seal has a fourth mounting hole that corresponds one-to-one with the first mounting hole. The first fastener passes through the first mounting hole, the fourth mounting hole, and the third mounting hole in sequence to install the high-voltage distribution box cover and the second seal onto the high-voltage distribution box base. This allows for the synchronous installation and precise alignment of the high-voltage distribution box cover, the second seal, and the high-voltage distribution box base, while also achieving a compression seal between the high-voltage distribution box cover and the high-voltage distribution box base, simplifying the installation process.
[0020] In some embodiments, the second flange is further provided with a fifth mounting hole, which is spaced apart from and alternately distributed with the third mounting hole. A second fastener passes through the fifth mounting hole to mount the high-voltage distribution box base onto the enclosure. The second sealing element has a clearance groove corresponding to the position of the fifth mounting hole. The separate fixing of the high-voltage distribution box base provides a stable foundation for the subsequent sealing between the high-voltage distribution box cover and the high-voltage distribution box base, thereby improving the reliability of the seal between the high-voltage distribution box cover and the high-voltage distribution box base. The clearance groove design allows the second sealing element to tightly fit against the mounting surfaces of the first and second flanges in a compressed state, improving the sealing effect of the second sealing element.
[0021] In some embodiments, the third seal is provided corresponding to the second flange, and the third seal has a sixth mounting hole that corresponds one-to-one with the fifth mounting hole. The second fastener passes through the fifth mounting hole and the sixth mounting hole in sequence to install the high-voltage distribution box base and the third seal onto the enclosure. In this way, the high-voltage distribution box base and the third seal can be installed synchronously and precisely aligned, and the compression seal between the high-voltage distribution box base and the enclosure assembly can also be achieved, simplifying the installation process.
[0022] In some embodiments, the outer contour of the orthographic projection of the third seal on the enclosure coincides with the outer contour of the orthographic projection of the high-voltage distribution box base on the enclosure. This allows for sealing of the entire high-voltage distribution box base, flexible arrangement of wiring holes and through holes, and avoids material redundancy due to an excessively large third seal or sealing blind spots due to an excessively small third seal.
[0023] In some embodiments, at least a portion of the outer contour of the orthographic projection of the third seal onto the housing lies within the outer contour of the orthographic projection of the base body onto the housing. This allows for a suitable reduction in the size of the third seal, which only needs to simultaneously seal both the wire-passing hole and the wire-through hole, saving costs and making the third seal suitable for various models and specifications.
[0024] In some embodiments, the base body corresponding to the third sealing element has a seventh mounting hole, and the third sealing element has an eighth mounting hole corresponding to the seventh mounting hole. The third fastener passes through the seventh mounting hole and the eighth mounting hole in sequence to install the high-voltage distribution box base and the third sealing element onto the enclosure. In this way, a compression seal can be achieved between the high-voltage distribution box and the enclosure, preventing moisture or dust from entering the interior of the high-voltage distribution box and the enclosure.
[0025] In some embodiments, the high-voltage distribution box is an irregularly shaped structure manufactured using a die-casting process. This satisfies more complex and demanding spatial structural requirements, enabling the battery device to adapt to more complex spatial design needs, thereby meeting the increasingly higher space utilization requirements of electrical devices for battery devices.
[0026] In some embodiments, the battery device further includes a maintenance switch, which is located on the same side wall of the housing as the connector, and is spaced apart from the connector. This allows the housing wall with the maintenance switch and connector to be positioned towards an area easily accessible to maintenance personnel, facilitating convenient plugging, unplugging, and power disconnection during subsequent maintenance of the battery device.
[0027] An embodiment of the second aspect of this application provides an electrical device, including the battery device described in the above embodiments.
[0028] An embodiment of the third aspect of this application provides an energy storage device, including the battery device described in the above embodiments.
[0029] The above description is only an overview of the technical solution of this application. In order to better understand the technical means of this application and to implement it in accordance with the contents of the specification, and to make the above and other objects, features and advantages of this application more obvious and understandable, the following are specific embodiments of this application. Attached Figure Description
[0030] In the accompanying drawings, unless otherwise specified, the same reference numerals throughout the various drawings denote the same or similar parts or elements. These drawings are not necessarily drawn to scale. It should be understood that these drawings depict only some embodiments disclosed in this application and should not be construed as limiting the scope of this application.
[0031] Figure 1 This is a schematic diagram of the vehicle structure according to some embodiments of this application;
[0032] Figure 2 This is an exploded view of the battery device according to some embodiments of this application;
[0033] Figure 3 This is a schematic diagram of the structure of a battery device provided in some embodiments of this application;
[0034] Figure 4 This is a partial exploded view of the battery device provided in Embodiment 1 of this application;
[0035] Figure 5 This is a partial exploded view of the battery device provided in Embodiment 2 of this application;
[0036] Figure 6 This is a partial exploded view of the battery device provided in Embodiment 3 of this application.
[0037] Explanation of reference numerals in the attached figures:
[0038] Box 10, First Part 11, Second Part 12, Wiring Hole 101, Tenth Mounting Hole 102, Ninth Mounting Hole 103, Battery Cell 20, Connector 30, High Voltage Connector 31, Low Voltage Connector 32, High Voltage Distribution Box 40, Functional Components 41, High Voltage Distribution Box Cover 42, Cover Body 421, First Flanged Edge 422, First Mounting Hole 423, First Fastener 43, First Seal 44, Second Mounting Hole 441, Second Seal 45, Fourth Mounting Hole 451, Clearance Groove 452, High Voltage Distribution Box Base 46, Base Body 461, Second Flanged Edge 462, Third Mounting Hole 4621, Fifth Mounting Hole 4622, Second Fastener 47, Third Seal 48, Sixth Mounting Hole 481, Eighth Mounting Hole 482, Mounting Bracket 49, Second Connecting Wiring Harness 50, Maintenance Switch 60, Battery Unit 100, Controller 200, Motor 300, Vehicle 1000. Detailed Implementation
[0039] The embodiments of the technical solution of this application will now be described in detail with reference to the accompanying drawings. These embodiments are only used to more clearly illustrate the technical solution of this application and are therefore merely examples, and should not be used to limit the scope of protection of this application.
[0040] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains; the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the application; the terms “comprising” and “having”, and any variations thereof, in the specification, claims, and foregoing description of the drawings are intended to cover non-exclusive inclusion.
[0041] In the description of the embodiments of this application, technical terms such as "first" and "second" are used only to distinguish different objects and should not be construed as indicating or implying relative importance or implicitly specifying the number, specific order, or primary and secondary relationship of the indicated technical features. In the description of the embodiments of this application, "multiple" means two or more, unless otherwise explicitly defined.
[0042] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0043] In the description of the embodiments in this application, the term "and / or" is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. Additionally, the character " / " in this document generally indicates that the preceding and following related objects have an "or" relationship.
[0044] In the description of the embodiments of this application, the term "multiple" refers to two or more (including two), similarly, "multiple sets" refers to two or more (including two sets), and "multiple pieces" refers to two or more (including two pieces).
[0045] In the description of the embodiments of this application, the technical terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of this application and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this application.
[0046] In the description of the embodiments of this application, unless otherwise expressly specified and limited, technical terms such as "installation," "connection," "joining," and "fixing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. For those skilled in the art, the specific meaning of the above terms in the embodiments of this application can be understood according to the specific circumstances.
[0047] Currently, the application of rechargeable batteries is becoming increasingly widespread, judging from market trends. They are not only used in energy storage systems for hydropower, thermal power, wind power, and solar power plants, but also extensively in various electronic devices, such as electric bicycles, electric motorcycles, and electric vehicles, as well as in military equipment and aerospace. As the application areas of rechargeable batteries continue to expand, the market demand is also constantly increasing.
[0048] A battery pack is an assembly of multiple energy storage battery cells, each a tiny unit for storing and releasing electrical energy. This assembly of battery cells achieves energy storage and release through the connection and control of the individual cells. Within a battery pack, multiple battery cells can be connected in series, parallel, or a combination thereof. A combination of series and parallel connections refers to a configuration where multiple battery cells are connected in both series and parallel configurations. Multiple battery cells can be directly connected in series, parallel, or a combination thereof, and then housed within the battery pack's casing.
[0049] In some related technologies, the high-voltage distribution box is typically located inside the battery pack. This results in the high-voltage distribution box occupying internal space, hindering battery capacity and impacting battery power output. To address this, other related technologies have proposed a separate external high-voltage distribution box. However, this external high-voltage distribution box is generally an independent unit located outside the battery pack, connected and fixed to it by a separate bracket or support plate structure. In other words, the battery pack and the high-voltage distribution box are two independent designs. Furthermore, the external high-voltage distribution box requires an additional connector (such as a high-low voltage connector) to connect to the battery pack. This connector is usually located on the high-voltage distribution box itself, making it difficult to meet customers' design requirements for maximizing battery pack space utilization.
[0050] Based on the above considerations, this application provides a battery device, an electrical device, and an energy storage device. The battery device includes a housing, battery cells, a connector, a high-voltage distribution box, a first connecting harness, and a second connecting harness. The housing includes a receiving cavity, and the housing wall of the housing is provided with a wire hole communicating with the receiving cavity. The battery cells are disposed in the receiving cavity. The connector passes through the housing and is electrically connected to the battery cells. The high-voltage distribution box is disposed on the side of the housing wall away from the receiving cavity, and the high-voltage distribution box and the connector are respectively located on different sides of the housing wall. One end of the first connecting harness is electrically connected to a functional device in the high-voltage distribution box, and the other end is introduced into the receiving cavity through the wire hole and electrically connected to the battery cells. One end of the second connecting harness is electrically connected to a functional device in the high-voltage distribution box, and the other end is introduced into the receiving cavity through the wire hole and electrically connected to the connector.
[0051] It should be noted that the battery device of this application can be a battery pack, or other types of battery structures with a housing and individual battery cells, such as electric vehicle battery boxes, containerized energy storage boxes, or industrial battery structures.
[0052] In the technical solution of this application embodiment, the high-voltage distribution box is placed on the side of the battery device's enclosure wall away from the receiving cavity, and the high-voltage distribution box and connector are separately and independently set on different sides of the enclosure wall. The connector passes through the enclosure wall and is electrically connected to the battery cell. The connection harnesses between the functional components in the high-voltage distribution box and the battery cell and the connector are introduced into the receiving cavity through the wire holes on the enclosure wall. This realizes the integrated design of the high-voltage distribution box and the battery device, eliminating the need for additional connectors to transfer the external high-voltage distribution box to the battery cell in the receiving cavity. The external high-voltage distribution box design makes full use of the planar expansion space on the side of the enclosure wall away from the receiving cavity, freeing up space for the receiving cavity without increasing the enclosure volume, optimizing the battery distribution in the receiving cavity, significantly improving the utilization rate of the internal space of the battery device, and thus increasing the battery capacity of the battery device.
[0053] The battery device disclosed in this application can be used, but is not limited to, in electrical devices or energy storage devices such as vehicles, ships, or aircraft. A power system incorporating the battery device disclosed in this application can be used to form such an electrical device or energy storage device.
[0054] This application provides an electrical device that uses a battery as a power source. The electrical device can be, but is not limited to, mobile phones, tablets, laptops, electric toys, power tools, electric vehicles, electric cars, ships, spacecraft, etc. Electric toys can include stationary or mobile electric toys, such as game consoles, electric car toys, electric ship toys, and electric airplane toys, etc. Spacecraft can include airplanes, rockets, space shuttles, and spacecraft, etc.
[0055] This application also provides an energy storage device that uses a battery as a power source. The energy storage device can be, but is not limited to, an energy storage container, an energy storage cabinet, an energy storage power station, an energy storage battery pack, or a portable energy storage system.
[0056] For ease of explanation, the following embodiments will be described using a vehicle 1000 as an example of an electrical device according to an embodiment of this application.
[0057] Please refer to Figure 1 , Figure 1This is a schematic diagram of the structure of a vehicle provided in some embodiments of this application. The vehicle 1000 can be a gasoline-powered vehicle, a natural gas-powered vehicle, or a new energy vehicle. New energy vehicles can be pure electric vehicles, hybrid electric vehicles, or range-extended electric vehicles, etc. A battery device 100 is installed inside the vehicle 1000, and the battery device 100 can be located at the bottom, front, or rear of the vehicle 1000. The battery device 100 can be used to power the vehicle 1000; for example, the battery device 100 can serve as the operating power source for the vehicle 1000. The vehicle 1000 may also include a controller 200 and a motor 300. The controller 200 is used to control the battery device 100 to supply power to the motor 300, for example, to meet the power needs of the vehicle 1000 during starting, navigation, and driving.
[0058] In some embodiments of this application, the battery device 100 can not only serve as the operating power source for the vehicle 1000, but also as the driving power source for the vehicle 1000, replacing or partially replacing fuel or natural gas to provide driving power for the vehicle 1000.
[0059] Please refer to Figure 2 , Figure 2 This is an exploded structural diagram of a battery device provided in some embodiments of this application. The battery device 100 includes a housing 10 and a battery cell 20. The housing 10 includes a receiving cavity, and the battery cell 20 is received within the receiving cavity of the housing 10. The housing 10 provides receiving space for the battery cell 20, and the housing 10 can adopt various structures. In some embodiments, the housing 10 may include a first portion 11 and a second portion 12, which overlap each other, and the first portion 11 and the second portion 12 together define a receiving cavity for receiving the battery cell 20. The second portion 12 may be a hollow structure with one open end, and the first portion 11 may be a plate-like structure, with the first portion 11 covering the open side of the second portion 12 so that the first portion 11 and the second portion 12 together define the receiving cavity; the first portion 11 and the second portion 12 may also both be hollow structures with one open side, with the open side of the first portion 11 covering the open side of the second portion 12. Of course, the box 10 formed by the first part 11 and the second part 12 can be of various shapes, such as a cylinder, a cuboid, etc.
[0060] In the battery device 100, there can be multiple battery cells 20, which can be connected in series, parallel, or in a mixed configuration. A mixed configuration means that multiple battery cells 20 are connected in both series and parallel connections. Multiple battery cells 20 can be directly connected in series, parallel, or in a mixed configuration, and then the entire assembly of the multiple battery cells 20 is housed within the housing 10. Alternatively, the battery device 100 can also consist of multiple battery cells 20 first connected in series, parallel, or in a mixed configuration to form battery modules, and then these battery modules are connected in series, parallel, or in a mixed configuration to form a whole, which is also housed within the housing 10. The battery device 100 may also include other structures; for example, it may include a busbar component for electrical connection between the multiple battery cells 20.
[0061] Each battery cell 20 can be a rechargeable battery, such as a lithium-ion battery, lithium-sulfur battery, sodium-ion battery, or magnesium-ion battery, etc. The battery cell 20 can be cylindrical, flat, cuboid, or other shapes.
[0062] Please refer to Figures 2-6 , Figure 2 This is an exploded view of the battery device provided in some embodiments of this application. Figure 3 This is a schematic diagram of the structure of a battery device provided in some embodiments of this application. Figure 4 This is a partial exploded view of the battery device provided in Embodiment 1 of this application. Figure 5 This is a partial exploded view of the battery device provided in Embodiment 2 of this application. Figure 6 This is a partial exploded view of the battery device provided in Embodiment 3 of this application.
[0063] like Figures 2-6 This application provides a battery device 100, which includes a housing 10 and a battery cell 20. The housing 10 includes a receiving cavity, and the battery cell 20 is disposed within the receiving cavity. A wire hole 101 communicating with the receiving cavity is provided on the housing wall of the housing 10. The battery device 100 also includes a connector 30, a high-voltage distribution box 40, a first connecting harness (not shown), and a second connecting harness 50. The connector 30 passes through the housing 10 and is electrically connected to the battery cell 20. The high-voltage distribution box 40 is disposed on the side of the housing wall away from the receiving cavity, and the high-voltage distribution box 40 and the connector 30 are respectively located on different sides of the housing wall of the housing 10. One end of the first connecting harness is electrically connected to a functional device 41 inside the high-voltage distribution box 40, and the other end is introduced into the receiving cavity through the wire hole 101 and electrically connected to the battery cell 20. One end of the second connecting harness 50 is electrically connected to the functional device 41 inside the high-voltage distribution box 40, and the other end is introduced into the receiving cavity through the wire hole 101 and electrically connected to the connector 30.
[0064] The wire through hole 101 refers to a through-hole structure provided on the wall of the enclosure 10, used to realize the electrical connection of electrical components (such as battery cells, relays, battery management system (BMS)) inside and outside the enclosure 10. The hole diameter is designed according to the specifications of the wire harness. In this application, the wire through hole 101 can be located in any area of the enclosure 10 except for the area where the connector 30 is located, as long as it can lead the first connection wire harness and the second connection wire harness 50 used to connect the functional device 41 in the high-voltage distribution box 40 into the interior of the enclosure 10.
[0065] Connector 30 refers to the electrical interface device disposed on the housing 10 of the battery pack 100, including a high-voltage connector 31 and a low-voltage connector 32. The high-voltage connector 31 is used to transmit high-voltage DC power from the battery cells 20 to the motor controller and charger, while the low-voltage connector 32 is used to transmit CAN bus signals between the BMS and the vehicle controller. The high-voltage connector 31 and the low-voltage connector 32 are centrally located on the same side wall of the housing 10, with a center-to-center distance ≥80mm to avoid high-voltage arc interference. The high-voltage connector 31 and the low-voltage connector 32 are suitable for quick docking of the battery pack 100 with external systems and support hot-swappable maintenance.
[0066] The high-voltage distribution box 40 refers to the electrical control device integrated on the housing 10 of the battery device 100. It includes, but is not limited to, core functional components such as the main positive relay, the main negative relay, the precharge relay, the fuse, the precharge resistor, the current sensor, and the BMS. The high-voltage distribution box 40 is used to realize the main circuit on / off control, overcurrent protection, and precharge function of the battery cell 20.
[0067] The first connecting harness refers to the wire assembly used for the electrical connection between the high-voltage distribution box 40 and the battery cell 20. The functional devices 41 in the high-voltage distribution box 40 are electrically connected to the battery cell 20 through the first connecting harness to realize the signal transmission between each functional device 41 and the battery cell 20.
[0068] The second connecting harness 50 refers to the wire assembly used for electrical connection between the high-voltage distribution box 40 and the connector 30. The functional device 41 in the high-voltage distribution box 40 is electrically connected to the connector 30 through the second connecting harness 50 to realize signal transmission between the battery device 100 and the external system.
[0069] In the technical solution of this application embodiment, the high-voltage distribution box 40 is placed on the side of the housing 10 of the battery device 100 away from the receiving cavity, and the high-voltage distribution box 40 and the connector 30 are separately and independently arranged on different sides of the housing 10. The connector 30 passes through the housing wall of the housing 10 and is electrically connected to each battery cell 20. The functional device 41 in the high-voltage distribution box 40 is electrically connected to the battery cell 20 through a first connecting wire harness, and the functional device 41 in the high-voltage distribution box 40 is electrically connected to the connector 30 through a second connecting wire harness 50. Both the first connecting wire harness and the second connecting wire harness 50 pass through the housing wall. The wire through hole 101 on the upper part leads from the high voltage distribution box 40 into the receiving cavity, thereby realizing the overall design of the high voltage distribution box 40 and the battery device 100. No additional connector is needed to transfer the external high voltage distribution box 40 to the battery cell 20 in the receiving cavity. The design of the external high voltage distribution box 40 makes full use of the planar expansion space on the side of the box wall away from the receiving cavity. Without increasing the overall volume of the battery device 100, it frees up a certain space for the receiving cavity, optimizes the battery distribution in the receiving cavity, significantly improves the utilization rate of the internal space of the battery device 100, and thus increases the battery capacity of the battery device 100.
[0070] According to some embodiments of this application, such as Figures 3-6 As shown, the high-voltage distribution box 40 and the wire hole 101 are located on the same side of the box wall of the enclosure 10, and the wire hole 101 is located within the outer contour of the orthographic projection of the high-voltage distribution box 40 on the enclosure 10.
[0071] Orthographic projection is a special form of parallel projection, referring to the projection of an object onto the projection plane when the projection lines are perpendicular to the projection plane. In parallel projection, if the projection lines are always perpendicular to the projection plane, it is called orthographic projection. For example, when one face of a cube is parallel to the projection plane, its orthographic projection is completely consistent with its true shape. In this application, the projection plane is the side wall of the enclosure 10 where the high-voltage distribution box 40 is located. The orthographic projection of the high-voltage distribution box 40 on the enclosure 10 refers to the closed shape formed by projecting the high-voltage distribution box 40 along a direction perpendicular to the enclosure 10 onto the side wall of the enclosure 10 where the high-voltage distribution box 40 is located. This closed shape has an outer contour.
[0072] By placing the wiring hole 101 within the outer contour of the orthographic projection of the high-voltage distribution box 40 on the enclosure 10, the wiring path between the high-voltage distribution box 40, the battery cell 20, and the connector 30 can be shortened, reducing wire harness bending and redundant length, reducing the space occupied by the wire harness, and simplifying the wire harness wiring design. In addition, placing the wiring hole 101 within the outer contour of the orthographic projection of the high-voltage distribution box 40 on the enclosure 10 can also improve the sealing performance of the battery device 100. Compared with the exposed wiring hole 101 design, the solution of covering the wiring hole 101 with the high-voltage distribution box 40 can reduce the risk of the wire harness and electrical components inside the battery device 100 being exposed to the outside world, improve the sealing and protection performance of the entire device, and reduce the risk of corrosion or short circuit of the wire harness and electrical components caused by mechanical wear or environmental factors (such as dust and moisture).
[0073] In some embodiments of this application, such as Figures 3-6 As shown, a sealed interface is formed between the high-voltage distribution box 40 and the box wall of the enclosure 10, and the wire hole 101 is located within the sealed area of the sealed interface.
[0074] A sealed interface refers to a contact surface formed by two or more mechanical components through a specific structure and materials. Its core function is to block the leakage path of fluids (gas, liquid) or solid particles, thereby isolating the internal and external environments. In this application, the sealed interface between the high-voltage distribution box 40 and the enclosure wall refers to the sealed contact surface formed between the high-voltage distribution box 40 and the enclosure wall through a sealant or adhesive. This sealed contact surface can prevent gases, liquids, or particles from the external environment from entering the interior of the high-voltage distribution box 40 and the enclosure 10 through the space between the high-voltage distribution box 40 and the enclosure wall.
[0075] A seal is a component or material used to prevent fluid or solid particles from leaking between adjacent mating surfaces, and to prevent external dust or moisture and other impurities from entering the interior of mechanical equipment. In this application, the seal includes, but is not limited to, elastic sealing rings (such as rubber or polyurethane sealing rings) or elastic sealing gaskets (such as rubber or polyurethane sealing gaskets) to achieve a sealed connection between the high-voltage distribution box 40 and the enclosure wall of the housing 10.
[0076] The adhesive includes, but is not limited to, at least one of silicone adhesive, polyurethane adhesive and epoxy resin adhesive, to achieve a sealed connection between the high-voltage distribution box 40 and the enclosure wall of the box 10.
[0077] By forming a sealed interface between the high-voltage distribution box 40 and the enclosure wall of the box 10, and setting the wire hole 101 within the sealed range of the sealed interface, both the high-voltage distribution box 40 and the interior of the box 10 form a sealed space. The first connecting wire harness and the second connecting wire harness 50 are directly introduced into the box 10 from the interior of the high-voltage distribution box 40 through the wire hole 101, thus achieving the sealing of the electrical connection path between the high-voltage distribution box 40 and the battery cell 20 and the connector 30 respectively, achieving a sealing and protection effect.
[0078] According to some embodiments of this application, such as Figures 3-6 As shown, connector 30 is located on the first wall of enclosure 10, and high-voltage distribution box 40 is located on the second wall of enclosure 10. The first wall and the second wall are arranged adjacent to or opposite to each other.
[0079] The first box wall refers to the box wall on any side of the box body 10, and the second box wall refers to the box wall adjacent to or opposite to the first box wall. In this application, the box body 10 is a rectangular box body, the first box wall can be the left box wall of the rectangular box body, and the second box wall can be the front box wall, rear box wall, top box wall or bottom box wall of the rectangular box body; or, the first box wall can be the left box wall of the rectangular box body, and the second box wall can be the right box wall of the rectangular box body.
[0080] Since both the connector 30 and the high-voltage distribution box 40 require a certain amount of space on the surface of the enclosure wall, and since the structure of the high-voltage distribution box 40 is relatively complex, there is not enough space on the side of the enclosure wall where the connector 30 is located to accommodate the complex structure of the high-voltage distribution box 40. By placing the high-voltage distribution box 40 and the connector 30 on different sides of the enclosure wall of the enclosure 10, the space design of the more complex battery device 100 can be satisfied, and more battery cells can be placed in the internal space of the battery device 100, thereby increasing the power capacity of the battery device 100.
[0081] According to some embodiments of this application, such as Figures 3-6 As shown, the high-voltage distribution box 40 also includes a high-voltage distribution box cover 42. The high-voltage distribution box cover 42 includes a cover body 421 and a first flange 422. The first flange 422 is located around the perimeter of the cover body 421. The first flange 422 is provided with a first mounting hole 423. A first fastener 43 passes through the first mounting hole 423 to install the high-voltage distribution box cover 42 onto the enclosure 10. The side surface of the cover body 421 facing the enclosure wall is provided with a receiving groove, and the functional device 41 is placed in the receiving groove.
[0082] The cover body 421 refers to the cover structure that covers the opening of the high-voltage distribution box 40, forming the outer shell of the high-voltage distribution box 40. The first flange 422 refers to a bent structure extending along the edge of the cover body 421, which can be integrally formed with the cover body 421 to form the mounting surface of the high-voltage distribution box cover 42. The first mounting hole 423 refers to a through hole penetrating the first flange 422, specifically a circular hole structure, used for inserting fasteners such as bolts. The receiving groove refers to a recessed area located inside the cover body 421, specifically formed by machining, used to accommodate functional devices such as relays. The first fastener 43 includes, but is not limited to, bolts, screws, or studs.
[0083] Specifically, the cover body 421 forms a surface contact with the box body 10 through the first flange 422, and the first mounting holes 423 are evenly distributed around the first flange 422, so that the first fastener 43 can stably fix the high voltage distribution box cover 42 to the box wall of the box body 10.
[0084] Traditional external, independent high-voltage distribution boxes 40 require additional brackets or support plates for fixation. In contrast, this application directly mounts the high-voltage distribution box 40 onto the enclosure 10, eliminating the need for additional brackets or support plates. Furthermore, this application simultaneously installs the high-voltage distribution box 40 onto the enclosure 10 during assembly, simplifying the installation process and saving time and costs.
[0085] According to some embodiments of this application, such as Figures 3-6 As shown, the high-voltage distribution box cover 42 and the box wall of the enclosure 10 enclose a cavity for accommodating the functional device 41. The box wall of the enclosure 10 has a ninth mounting hole 103 corresponding to the first mounting hole 423, and the depth of the ninth mounting hole 103 is less than the thickness of the box wall.
[0086] The cavity refers to the three-dimensional enclosed space formed by the lid body 421 and the box wall. Specifically, it can be achieved by the lid body 421 covering the box wall and being fixedly connected by the first flange 422. This cavity has the function of supporting the functional device 41. The ninth mounting hole 103 can be a threaded hole that partially penetrates the box wall, and the first fastener 43 is threadedly connected to the threaded hole.
[0087] The high-voltage distribution box cover 42 and the box wall of the enclosure 10 together form a hollow, sandwich-like cavity. Using the box wall as part of the high-voltage distribution box 40 not only simplifies the structure of the high-voltage distribution box 40 but also reduces its thickness, thereby reducing its space ratio. This allows for more internal space within the limited capacity of the battery device 100, which is beneficial for further increasing the battery's capacity. Furthermore, the depth of the ninth mounting hole 103 is less than the thickness of the box wall. This ensures the stability of the connection between the high-voltage distribution box 40 and the enclosure 10 while preventing the ninth mounting hole 103 from affecting the airtightness of the battery device 100, thus ensuring that the installation of the high-voltage distribution box 40 does not affect the airtightness of the battery device 100.
[0088] According to some embodiments of this application, such as Figure 3 and Figure 6 As shown, the high-voltage distribution box 40 also includes a first sealing element 44, which is located between the first flange 422 and the box wall of the box body 10. The high-voltage distribution box cover 42 and the box wall of the box body 10 form a sealing interface through the first sealing element 44. The wire hole 101 is located within the inner contour of the orthographic projection of the first sealing element 44 on the box body 10.
[0089] The first sealing element 44 refers to an elastic sealing component disposed between the high-voltage distribution box cover 42 and the enclosure 10. Specifically, it can be a sealing gasket or a sealing ring, made of rubber or silicone material, and its shape matches the shape of the first flange 422. Since the high-voltage distribution box cover 42 is installed with the enclosure 10 through the first flange 422, and the first sealing element 44 is disposed corresponding to the first flange 422, the effective sealing interface between the high-voltage distribution box cover 42 and the enclosure 10 is located within the range of the orthographic projection of the first flange 422 onto the enclosure 10.
[0090] Specifically, both the first flange 422 and the first seal 44 are closed ring structures. The orthographic projection of the first seal 44 onto the housing 10 refers to the closed shape formed by the first seal 44 projecting along a direction perpendicular to the housing 10 onto the side wall of the housing 10 where the high-voltage distribution box 40 is located. This closed shape has an outer contour and an inner contour. The high-voltage distribution box cover 42 forms a closed ring sealing interface between the first seal 44 and the housing wall of the housing 10. The wire hole 101 is located within the inner contour of the orthographic projection of the first seal 44 onto the housing 10, thereby sealing the high-voltage distribution box 40 and the wire hole 101 to prevent moisture or dust from entering the interior of the high-voltage distribution box 40.
[0091] Compared to the embodiment where the high-voltage distribution box cover 42 directly covers the wire hole 101, this embodiment achieves synchronous sealing of the high-voltage distribution box 40 and the wire hole 101 by setting a first sealing element 44 between the first flange 422 and the box wall of the box 10. This further reduces the risk of external environmental factors (such as dust and moisture) intruding into the high-voltage distribution box 40 and the box 10, improves the sealing and protection performance of the entire device, and further reduces the risk of corrosion or short circuit of wire harnesses and electrical components caused by environmental factors.
[0092] According to some embodiments of this application, such as Figure 6 As shown, the orthographic projection outline of the first seal 44 on the housing 10 coincides with the orthographic projection outline of the first flange 422 on the housing 10.
[0093] The orthographic projection of the first sealing element 44 on the enclosure 10 includes an outer contour and an inner contour. The orthographic projection of the first flange 422 on the enclosure 10 refers to the closed shape formed by the first flange 422 projected onto the side wall of the enclosure 10 where the high-voltage distribution box 40 is located, along a direction perpendicular to the enclosure 10. This closed shape has an inner contour and an outer contour. The coincidence of the orthographic projection of the first sealing element 44 on the enclosure 10 with the orthographic projection of the first flange 422 on the enclosure 10 means that the outer contour of the orthographic projection of the first sealing element 44 on the enclosure 10 coincides with the outer contour of the orthographic projection of the first flange 422 on the enclosure 10, and the inner contour of the orthographic projection of the first sealing element 44 on the enclosure 10 coincides with the inner contour of the orthographic projection of the first flange 422 on the enclosure 10. That is, the external dimensions of the first sealing element 44 and the orthographic projection of the first flange 422 on the surface of the enclosure 10 completely overlap.
[0094] By setting the first seal 44 to match the orthographic projection profile of the first flange 422 on the housing 10, the effective sealing interface between the high voltage distribution box cover 42 and the housing 10 is maximized, the sealing path from the outside of the high voltage distribution box 40 to the inside of the high voltage distribution box 40 is extended, and the sealing performance of the entire device is effectively improved.
[0095] According to some embodiments of this application, such as Figure 6 As shown, the first sealing member 44 is provided with a second mounting hole 441 corresponding to the first mounting hole 423. The first fastener 43 passes through the first mounting hole 423 and the second mounting hole 441 in sequence to install the high voltage distribution box cover 42 and the first sealing member 44 on the box body 10, and to compress and seal the first sealing member 44 between the high voltage distribution box cover 42 and the box wall of the box body 10.
[0096] The second mounting hole 441 refers to a through hole penetrating the first sealing element 44. Specifically, it can be a circular hole structure used for fasteners such as bolts. The distribution pattern of the second mounting hole 441 is consistent with the distribution pattern of the first mounting hole 423.
[0097] Compression sealing refers to a sealing method that uses external force to cause the sealing material to undergo elastic deformation, thereby filling the gap between the mating surfaces and forming continuous contact pressure to block the leakage of fluids (gas, liquid) or solid particles. In this application, the seal located between the high-voltage distribution box 40 and the enclosure 10 is compressed during installation, forming continuous contact pressure between the high-voltage distribution box 40 and the enclosure wall of the enclosure 10, thus achieving a compression seal between the high-voltage distribution box 40 and the enclosure wall of the enclosure 10.
[0098] With the high-voltage distribution box cover 42 installed on the side of the enclosure wall of the housing 10 away from the receiving cavity, the first seal 44 is compressed between the first flange 422 and the housing 10. Since the orthographic projection contour of the first seal 44 completely overlaps with the orthographic projection contour of the first flange 422, the coverage area of the first seal 44 precisely corresponds to the contact surface between the first flange 422 and the housing 10. This spatial matching ensures that the first seal 44 neither exceeds the installation area of the first flange 422, thus avoiding material waste, nor causes seal failure due to insufficient size. During installation, the first fastener 43 passes sequentially through the first mounting hole 423 and the second mounting hole 441 to fix itself to the enclosure wall, achieving synchronous installation and precise alignment of the high-voltage distribution box cover 42 and the first seal 44. Simultaneously, tightening the first fastener 43 also achieves a compression seal between the high-voltage distribution box cover 42 and the housing 10, improving the sealing effect.
[0099] According to some embodiments of this application, such as Figure 6 As shown, the high-voltage distribution box 40 also includes a mounting bracket 49, and the functional device 41 is mounted on at least one of the enclosure 10 and the box cover body 421 via the mounting bracket 49.
[0100] Mounting bracket 49 refers to a rigid support for mounting functional devices 41, including but not limited to rigid structures such as connecting plates, support plates, or mounting bases. In this application, each functional device 41 in the high-voltage distribution box 40 is mounted on the side of the box wall of the enclosure 10 away from the receiving cavity via mounting bracket 49, or mounted on the side of the box cover body 421 close to the receiving cavity; or, some functional devices 41 are mounted on the side of the box wall of the enclosure 10 away from the receiving cavity, and the remaining functional devices 41 are mounted on the side of the box cover body 421 close to the receiving cavity.
[0101] Compared to traditional high-voltage distribution boxes where functional components are laid flat (perpendicular to the box wall) on the bottom plate, this application uses mounting brackets 49 to install each functional component 41 on at least one of the box body 10 and the box cover body 421 in a direction parallel to the box wall, thereby achieving three-dimensional installation of each functional component 41 in the high-voltage distribution box 40, reducing the thickness of the high-voltage distribution box 40 in the direction perpendicular to the adjacent box wall, and thus reducing the space ratio of the high-voltage distribution box 40.
[0102] According to some embodiments of this application, such as Figures 3-5 As shown, the high-voltage distribution box 40 also includes a high-voltage distribution box base 46 adapted to the high-voltage distribution box cover 42. The high-voltage distribution box base 46 is installed on the housing 10 and includes a base body 461 and a second flange 462. The second flange 462 is located around the perimeter of the base body 461. The second flange 462 is provided with a third mounting hole 4621 corresponding to the first mounting hole 423. The first fastener 43 passes through the first mounting hole 423 and the third mounting hole 4621 in sequence to install the high-voltage distribution box cover 42 onto the high-voltage distribution box base 46. The high-voltage distribution box cover 42 and the high-voltage distribution box base 46 enclose a cavity for accommodating the functional device 41. The functional device 41 is installed on at least one of the base body 461 and the cover body 421.
[0103] The base body 461 refers to the structure corresponding to the high-voltage distribution box base 46 and the cover body 421, used to form the outer shell of the high-voltage distribution box 40. The second flange 462 refers to a bent structure extending from the edge of the base body 461 towards the high-voltage distribution box cover 42, which can be integrally formed with the base body 461. The installation of the high-voltage distribution box base 46 and the high-voltage distribution box cover 42 is achieved by forming a surface contact with the first flange 422. The third mounting hole 4621 refers to a through hole that penetrates or partially penetrates the second flange 462, specifically a circular hole structure, used for fasteners such as bolts.
[0104] The third mounting hole 4621 is evenly distributed around the second flange 462, and its specific distribution method is consistent with the distribution method of the first mounting hole 423, so that the first fastener 43 can stably fix the high voltage distribution box cover 42 on the high voltage distribution box base 46.
[0105] Understandably, when the third mounting hole 4621 is a through hole penetrating the second flange 462, the first fastener 43 passes through the first mounting hole 423 and the third mounting hole 4621 in sequence and is threadedly connected to the wall of the enclosure 10, thereby fixing the high-voltage distribution box cover 42 and the high-voltage distribution box base 46 together to the wall of the enclosure 10. When the third mounting hole 4621 is a through hole partially penetrating the second flange 462, the high-voltage distribution box base 46 is first fixed to the wall of the enclosure 10, and the first fastener 43 passes through the first mounting hole 423 and is threadedly connected to the third mounting hole 4621, thereby fixing the high-voltage distribution box cover 42 to the high-voltage distribution box base 46.
[0106] Among them, the functional device 41 is installed on the side of the base body 461 or the cover body 421 near the receiving cavity; or, some of the functional devices 41 are installed on the side of the base body 461 near the receiving cavity, and the remaining functional devices 41 are installed on the side of the cover body 421 near the receiving cavity.
[0107] The high-voltage distribution box cover 42 and the high-voltage distribution box base 46 of this application combine to form the outer shell structure of the high-voltage distribution box 40. The functional components 41 are installed within the cavity formed by the high-voltage distribution box cover 42 and the high-voltage distribution box base 46, which improves the overall structural stability of the high-voltage distribution box 40 and provides better protection for each functional component 41. Compared to traditional high-voltage distribution boxes where functional components are laid flat (perpendicular to the box wall) on the bottom plate, this application installs each functional component 41 along a direction parallel to the box wall on at least one of the base body 461 and the cover body 421 near the receiving cavity. This achieves three-dimensional installation of each functional component 41 in the high-voltage distribution box 40, reducing the thickness of the high-voltage distribution box 40 in the direction perpendicular to the adjacent box wall, thereby reducing the space ratio of the high-voltage distribution box 40.
[0108] According to some embodiments of this application, such as Figures 3-5 As shown, the base body 461 is provided with a wire hole at the position corresponding to the wire hole 101. The first connecting wire harness and the second connecting wire harness 50 are introduced into the receiving cavity from the high voltage distribution box 40 by passing through the wire hole and the wire hole 101 in sequence.
[0109] A wire-through hole refers to a through-hole structure provided on the base 46 of the high-voltage distribution box, used to realize the electrical connection between the internal and external electrical components of the high-voltage distribution box 40. The hole diameter is designed according to the specifications of the wire harness. In this application, the hole diameter is the same as the through-hole diameter 101. The wire-through hole is used to lead the first connecting wire harness and the second connecting wire harness 50 connected to the functional device 41 inside the high-voltage distribution box 40 to the outside of the high-voltage distribution box 40.
[0110] Since the positions of the through hole and the wire hole 101 correspond, the first connecting wire harness and the second connecting wire harness 50 led out from the through hole can be directly introduced into the housing cavity of the battery cell through the wire hole 101, eliminating the need for winding design, reducing wire harness bending and redundant length, reducing the space occupied by the wire harness, and simplifying the wire harness wiring design.
[0111] According to some embodiments of this application, such as Figures 3-5 As shown, the high-voltage distribution box 40 also includes a second sealing element 45 and a third sealing element 48. The second sealing element 45 is located between the high-voltage distribution box cover 42 and the high-voltage distribution box base 46, so that a sealing interface is formed between the high-voltage distribution box cover 42 and the high-voltage distribution box base 46. The third sealing element 48 is located between the high-voltage distribution box base 46 and the box wall of the enclosure 10, so that a sealing interface is formed between the high-voltage distribution box base 46 and the box wall of the enclosure 10.
[0112] The wire hole 101 is located within the inner contour of the orthographic projection of the third seal 48 on the housing 10, and the outer contour of the orthographic projection of the wire hole on the housing 10 is located within the inner contour of the orthographic projection of the third seal 48 on the housing 10.
[0113] The second sealing element 45 refers to the elastic sealing component disposed between the high-voltage distribution box cover 42 and the high-voltage distribution box base 46. Specifically, it can be a sealing gasket or a sealing ring, made of rubber or silicone material, and its shape matches the shape of the first flange 422 and / or the second flange 462, so that a closed ring sealing interface is formed between the first flange 422 and the second flange 462.
[0114] The third sealing element 48 refers to the elastic sealing component set between the high-voltage distribution box base 46 and the box body 10. Specifically, it can be a sealing gasket or a sealing ring, made of rubber or silicone material. Its shape is not limited, as long as it can form a closed ring-shaped sealing interface between the high-voltage distribution box base 46 and the box body 10 around the area corresponding to the wire hole 101 and the wire hole.
[0115] Specifically, both the second seal 45 and the third seal 48 are closed-ring structures. The orthographic projection of the third seal 48 onto the enclosure 10 refers to the closed shape formed by the third seal 48 projected onto the side wall of the enclosure 10 where the high-voltage distribution box 40 is located, along a direction perpendicular to the enclosure 10. This closed shape has an inner contour and an outer contour. The high-voltage distribution box base 46 forms a closed-ring sealing interface with the enclosure wall of the enclosure 10 through the third seal 48.
[0116] This application achieves a seal between the high-voltage distribution box cover 42 and the high-voltage distribution box base 46 using a second sealing element 45. Furthermore, a third sealing element 48 is provided between the high-voltage distribution box base 46 and the enclosure 10. The wire passage hole 101 is positioned within the inner contour of the orthographic projection of the third sealing element 48 onto the enclosure 10, and the outer contour of the orthographic projection of the wire hole onto the enclosure 10 is located within the inner contour of the orthographic projection of the third sealing element 48 onto the enclosure 10. This seals both the wire passage hole 101 and the wire hole. Through this design, the risk of external dust and moisture intruding into the high-voltage distribution box 40 and the enclosure 10 can be reduced, improving the overall sealing performance of the device and further reducing the risk of corrosion or short circuits in wiring harnesses and electrical components caused by environmental factors.
[0117] According to some embodiments of this application, such as Figures 3-5 As shown, the second sealing member 45 is located between the first flange 422 and the second flange 462. The second sealing member 45 is provided with a fourth mounting hole 451 that corresponds one-to-one with the first mounting hole 423. The first fastener 43 passes through the first mounting hole 423, the fourth mounting hole 451 and the third mounting hole 4621 in sequence to install the high voltage distribution box cover 42 and the second sealing member 45 on the high voltage distribution box base 46, and to compress and seal the second sealing member 45 between the high voltage distribution box cover 42 and the high voltage distribution box base 46.
[0118] The fourth mounting hole 451 refers to a through hole penetrating the second seal 45. Specifically, it can be a circular hole structure used for fasteners such as bolts. The distribution pattern of the fourth mounting hole 451 is the same as that of the first mounting hole 423, and will not be described again here.
[0119] During the installation of the high-voltage distribution box cover 42 and the high-voltage distribution box base 46, the first fastener 43 passes through the first mounting hole 423, the fourth mounting hole 451 and the third mounting hole 4621 in sequence. By locking the first fastener 43, the second sealing element 45 is compressed between the first flange 422 and the second flange 462. This achieves the synchronous installation and precise alignment of the high-voltage distribution box cover 42, the second sealing element 45 and the high-voltage distribution box base 46. At the same time, it also achieves the compression sealing of the high-voltage distribution box cover 42 and the high-voltage distribution box base 46, simplifying the installation process.
[0120] According to some embodiments of this application, such as Figures 3-5 As shown, the second flange 462 is also provided with a fifth mounting hole 4622. The fifth mounting hole 4622 and the third mounting hole 4621 are alternately distributed. The second fastener 47 passes through the fifth mounting hole 4622 to install the high voltage distribution box base 46 on the box body 10.
[0121] The second seal 45 is provided with a clearance groove 452 at the position corresponding to the fifth mounting hole 4622.
[0122] The fifth mounting hole 4622 refers to a through hole penetrating the second flange 462, specifically a circular hole structure, used for fasteners such as bolts. Alternating distribution means that the fifth mounting hole 4622 and the third mounting hole 4621 are spaced apart, with no overlap, and are arranged alternately. The second fastener 47 includes, but is not limited to, bolts, screws, or studs. The clearance groove 452 refers to a notch or groove formed in the second seal 45 through machining, mainly used to provide assembly space for the second fastener 47 or to avoid interference.
[0123] The high-voltage distribution box base 46 is mounted on the enclosure 10 via the second fastener 47, which improves the reliability of the connection between the high-voltage distribution box base 46 and the enclosure 10, and provides a stable foundation for the subsequent sealing between the high-voltage distribution box cover 42 and the high-voltage distribution box base 46, thereby improving the reliability of the seal between the high-voltage distribution box cover 42 and the high-voltage distribution box base 46. The second sealing element 45 has a relief groove 452 at the position corresponding to the fifth mounting hole 4622, so that the second sealing element 45 avoids the second fastener 47, thereby allowing the second sealing element 45 to tightly fit the mounting surfaces of the first flange 422 and the second flange 462 in the compressed state, improving the sealing effect of the second sealing element 45.
[0124] According to some embodiments of this application, such as Figures 3-4 As shown, the third sealing element 48 is provided corresponding to the second flange 462. The third sealing element 48 is provided with a sixth mounting hole 481 that corresponds one-to-one with the fifth mounting hole 4622. The second fastener 47 passes through the fifth mounting hole 4622 and the sixth mounting hole 481 in sequence to install the high voltage distribution box base 46 and the third sealing element 48 on the enclosure 10, and to compress and seal the third sealing element 48 between the high voltage distribution box base 46 and the enclosure wall of the enclosure 10.
[0125] The sixth mounting hole 481 refers to the through hole that passes through the third seal 48. Specifically, it can be a circular hole structure used to pass through fasteners such as bolts.
[0126] During the installation of the high-voltage distribution box base 46 and the enclosure 10, the second fastener 47 passes through the fifth mounting hole 4622 and the sixth mounting hole 481 in sequence to simultaneously install the high-voltage distribution box base 46 and the third sealing element 48 onto the enclosure 10. This achieves precise alignment of the high-voltage distribution box base 46 and the third sealing element 48. Furthermore, by tightening the second fastener 47, the third sealing element 48 is compressed between the high-voltage distribution box base 46 and the enclosure 10, thereby achieving a compression seal between the high-voltage distribution box base 46 and the enclosure 10, simplifying the installation process.
[0127] According to some embodiments of this application, such as Figures 3-4 As shown, the outer contour of the orthographic projection of the third seal 48 on the housing 10 coincides with the outer contour of the orthographic projection of the high voltage distribution box base 46 on the housing 10.
[0128] The outer contour of the orthographic projection of the third seal 48 on the enclosure 10 coincides with the outer contour of the orthographic projection of the high-voltage distribution box base 46 on the enclosure 10, meaning that the four edges of the third seal 48 and the high-voltage distribution box base 46 are aligned in the direction perpendicular to the enclosure wall.
[0129] By aligning the third sealing element 48 and the four edges of the high-voltage distribution box base 46 in a direction perpendicular to the box wall, the entire high-voltage distribution box base 46 can be sealed. The wire hole 101 and the wire through hole can be flexibly set, and the sealing blind zone can be avoided due to the third sealing element 48 being too large, resulting in material redundancy, or too small, resulting in sealing blind zone.
[0130] According to some embodiments of this application, such as Figures 3-5 As shown, at least a portion of the outer contour of the orthographic projection of the third seal 48 onto the housing 10 lies within the outer contour of the orthographic projection of the base body 461 onto the housing 10.
[0131] The orthographic projection of the base body 461 onto the enclosure 10 refers to the closed shape formed by the base body 461 projected onto the enclosure wall of the enclosure 10 on the side where the high-voltage distribution box 40 is located, along a direction perpendicular to the enclosure 10. This closed shape has an outer contour. At least a portion of the outer contour of the orthographic projection of the third seal 48 onto the enclosure 10 lies within the outer contour of the orthographic projection of the base body 461 onto the enclosure 10. That is, a portion of the third seal 48 can be set corresponding to the second flange 462, and the remaining portion can be set corresponding to the base body 461; or, the entire third seal 48 can be set corresponding to the base body 461.
[0132] Since the second flange 462 is a bent structure formed by extending the edge of the base body 461 towards the high-voltage distribution box cover 42, i.e., the second flange 462 and the base body 461 are integrally formed, the sealing between the high-voltage distribution box base 46 and the box 10 only needs to consider the positions of the wire hole 101 and the through hole. By setting the third seal 48 such that at least a portion of its outer contour as an orthographic projection on the box 10 is located within the outer contour of the orthographic projection of the base body 461 on the box 10, the size of the third seal 48 can be appropriately reduced. The third seal 48 only needs to be able to simultaneously seal the wire hole 101 and the through hole, which not only saves costs, but also allows the third seal 48 to be used for various different models and specifications.
[0133] According to some embodiments of this application, such as Figure 3 and Figure 5 As shown, the base body 461 has a seventh mounting hole corresponding to the third sealing member 48. The third sealing member 48 has an eighth mounting hole 482 corresponding to the seventh mounting hole. The third fastener passes through the seventh mounting hole and the eighth mounting hole 482 in sequence to install the high voltage distribution box base 46 and the third sealing member 48 on the box 10, and to compress and seal the third sealing member 48 between the high voltage distribution box base 46 and the box wall of the box 10.
[0134] The seventh mounting hole is a through hole penetrating the base body 461, which can be a circular hole for fasteners such as bolts. The eighth mounting hole 482 is a through hole penetrating the third seal 48, which can also be a circular hole for fasteners such as bolts. The third fastener includes, but is not limited to, bolts, screws, or studs.
[0135] The third seal 48 is fixed by at least one of the second fastener 47 and the third fastener. During installation, by locking the second fastener 47 and the third fastener, the third seal 48 is compressed in the direction perpendicular to the box wall, thereby forming a closed annular sealing interface between the high voltage distribution box base 46 and the box wall of the box 10, realizing the compression seal between the high voltage distribution box 40 and the box 10, and preventing water vapor or dust from entering the interior of the high voltage distribution box 40 and the box 10.
[0136] According to some embodiments of this application, such as Figures 3-6 As shown, the high-voltage distribution box 40 is an irregularly shaped structure manufactured by die casting.
[0137] Die casting is a metal casting process that uses high pressure applied to molten metal within a mold cavity to solidify the molten metal into a precise casting shape. Die casting can be used to manufacture complex structures or structures of different shapes. Irregular structures refer to structural components with non-traditional or non-standard shapes, that is, special structural forms whose shape and size differ from conventional standard components. In this application, the high-voltage distribution box 40 being an irregular structure means that the high-voltage distribution box cover 42 has a non-traditional or non-standard shape; or, both the high-voltage distribution box cover 42 and the high-voltage distribution box base 46 have non-traditional or non-standard shapes.
[0138] With the development of power batteries, electrical devices are demanding increasingly higher space utilization rates for battery packs, making traditional, regularly shaped high-voltage distribution boxes increasingly difficult to meet market demands. This application utilizes die-casting technology to break away from the traditional regular shape of high-voltage distribution boxes, creating irregularly shaped boxes to meet more complex and demanding spatial requirements. This allows battery packs to adapt to more complex spatial design needs, thus satisfying the ever-increasing space utilization requirements of electrical devices.
[0139] According to some embodiments of this application, such as Figures 3-6 As shown, the battery device 100 also includes a maintenance switch 60, which is located on the same side wall of the housing 10 as the connector 30, and the maintenance switch 60 and the connector 30 are spaced apart.
[0140] The maintenance switch 60 refers to the manual service disconnect (MSD), a manually operated device used to quickly disconnect high-voltage circuits during maintenance.
[0141] The maintenance switch 60 and connector 30 are placed on the same side wall of the housing 10. When placing the battery device 100, the side wall of the battery device 100 with the maintenance switch 60 and connector 30 can be placed towards an area that is easy for maintenance personnel to operate. This arrangement makes it convenient to plug, unplug, disassemble and disconnect the power when the battery device 100 is maintained.
[0142] This application also provides an electrical device that includes a battery device as described in any of the above embodiments, the battery device being used to provide electrical energy.
[0143] Electrical devices include vehicles (such as cars, electric vehicles, ships, spacecraft, etc.), display devices (such as mobile phones, tablets, laptops, etc.), electric toys, power tools, etc.
[0144] It is understood that the electrical device provided in this application, by applying the battery device of any of the above embodiments, has all the beneficial effects of the battery device described above, which will not be repeated here.
[0145] This application also provides an energy storage device, which includes a battery device as described in any of the above embodiments, the battery device being used for energy storage.
[0146] Energy storage devices can include, but are not limited to, centralized energy storage devices (such as containerized energy storage devices), distributed energy storage devices, mobile energy storage devices, and so on.
[0147] It is understood that the energy storage device provided in this application, by applying the battery device of any of the above embodiments, has all the beneficial effects of the battery device described above, which will not be repeated here.
[0148] The battery device of this application will be described in detail below with reference to specific embodiments, as detailed below.
[0149] like Figure 2 , Figure 3 and Figure 4 As shown, Embodiment 1 of this application provides a battery device 100, which includes a housing 10 and a battery cell 20. The housing 10 includes a receiving cavity, and the battery cell 20 is disposed in the receiving cavity. The housing wall of the housing 10 is provided with a wire hole 101 communicating with the receiving cavity.
[0150] The battery assembly 100 also includes a connector 30, a high-voltage distribution box 40, a first connecting harness (not shown), and a second connecting harness 50. The connector 30 passes through the housing 10 and is electrically connected to the battery cell 20. The high-voltage distribution box 40 is located on the side of the housing wall away from the receiving cavity of the housing 10. The high-voltage distribution box 40 and the connector 30 are located on different sides of the housing wall of the housing 10. The wire hole 101 and the high-voltage distribution box 40 are located on the same side wall of the housing 10, and the wire hole 101 is located within the outer contour of the orthographic projection of the high-voltage distribution box 40 onto the housing 10. One end of the first connecting harness is electrically connected to the functional device 41 inside the high-voltage distribution box 40, and the other end is introduced into the receiving cavity through the wire hole 101 and electrically connected to the battery cell 20. One end of the second connecting harness 50 is electrically connected to the functional device 41 inside the high-voltage distribution box 40, and the other end is introduced into the receiving cavity through the wire hole 101 and electrically connected to the connector 30.
[0151] like Figure 4 As shown, specifically, the high-voltage distribution box 40 includes a high-voltage distribution box cover 42, a high-voltage distribution box base 46, a second seal 45, a third seal 48, and a functional device 41.
[0152] The high-voltage distribution box base 46 is mounted on the wall of the enclosure 10, and the high-voltage distribution box cover 42 is mounted on the high-voltage distribution box base 46. The high-voltage distribution box cover 42 and the high-voltage distribution box base 46 together form a cavity for accommodating the functional device 41, which is placed in the cavity. The high-voltage distribution box cover 42 is sealed to the high-voltage distribution box base 46 by a second sealing member 45, and the high-voltage distribution box base 46 is sealed to the enclosure 10 by a third sealing member 48.
[0153] The high-voltage distribution box base 46 includes a base body 461 and a second flange 462. The second flange 462 is located around the perimeter of the base body 461 and is bent towards the high-voltage distribution box cover 42 to form a mounting surface for the high-voltage distribution box base 46. The second flange 462 has a third mounting hole 4621 and a fifth mounting hole 4622 arranged alternately along its circumference. The third mounting hole 4621 is a threaded hole that partially penetrates the second flange 462, and the fifth mounting hole 4622 is a through hole that completely penetrates the second flange 462. A second fastener 47 passes through the fifth mounting hole 4622 to fix the high-voltage distribution box base 46 to the housing 10. A functional component 41 is mounted on the surface of the base body 461 facing the high-voltage distribution box cover 42, and the base body 461 provides good support for the functional component 41.
[0154] To facilitate the exit of the first and second connecting wire harnesses 50 from the high-voltage distribution box 40, the base body 461 is provided with a through hole (not shown) corresponding to the wire passage hole 101. Both the first and second connecting wire harnesses 50 pass through the through hole and the wire passage hole 101 sequentially from inside the high-voltage distribution box 40 into the receiving cavity. The size of the through hole is the same as the size of the wire passage hole 101.
[0155] The high-voltage distribution box cover 42 includes a cover body 421 and a first flange 422. The first flange 422 is located around the periphery of the cover body 421 and forms the mounting surface of the high-voltage distribution box cover 42. The first flange 422 has first mounting holes 423 spaced circumferentially thereon, each corresponding to a third mounting hole 4621. The first mounting holes 423 are through holes that completely penetrate the first flange 422. A first fastener 43 passes through the first mounting hole 423 and is threadedly connected to the third mounting hole 4621, thereby mounting the high-voltage distribution box cover 42 onto the high-voltage distribution box base 46. The cover body 421 protrudes towards the side opposite to the high-voltage distribution box base 46 to form a receiving groove for accommodating functional components 41, facilitating the placement of the functional components 41.
[0156] The shape of the second sealing element 45 is adapted to the first flange 422 and the second flange 462 respectively, and the second sealing element 45 is located between the first flange 422 and the second flange 462. The second sealing element 45 is provided with fourth mounting holes 451 arranged at intervals along its circumference. The fourth mounting holes 451 correspond one-to-one with the first mounting holes 423. The fourth mounting holes 451 are through holes that completely penetrate the first flange 422, and the first fastener 43 passes through the fourth mounting holes 451.
[0157] During the installation of the high-voltage distribution box cover 42 and the high-voltage distribution box base 46, the first fastener 43 passes through the first mounting hole 423 and the fourth mounting hole 451 in sequence to install the high-voltage distribution box cover 42 and the second sealing member 45 together on the high-voltage distribution box base 46. Furthermore, by tightening the first fastener 43, the second sealing member 45 is compressed in the direction perpendicular to the mounting surfaces of the first flange 422 and the second flange 462, thereby forming a closed annular sealing interface between the first flange 422 and the second flange 462. This achieves a compression seal between the high-voltage distribution box cover 42 and the high-voltage distribution box base 46, preventing moisture or dust from entering the interior of the high-voltage distribution box 40.
[0158] In some embodiments, in order to achieve a better sealing effect, the second seal 45 is provided with an avoidance groove 452 at the position corresponding to the fifth mounting hole 4622, so that the second seal 45 avoids the second fastener 47, thereby enabling the second seal 45 to fit tightly against the mounting surfaces of the first flange 422 and the second flange 462 in the compressed state, thereby improving the sealing effect of the second seal 45.
[0159] Furthermore, with the high-voltage distribution box base 46 installed in the enclosure 10, the end of the second fastener 47 away from the enclosure assembly is flush with or embedded in the surface of the second flange 462 facing the first flange 422, so as to prevent the second fastener 47 from protruding from the surface of the second flange 462 facing the first flange 422 and affecting the compression of the second seal 45.
[0160] The third sealing element 48 is located between the high-voltage distribution box base 46 and the box wall of the enclosure 10, and has a hollow structure at least at the position corresponding to the wire hole 101. The third sealing element 48 has a sixth mounting hole 481 arranged at intervals along its edge area. The sixth mounting hole 481 corresponds one-to-one with the fifth mounting hole 4622. The sixth mounting hole 481 is a through hole that penetrates the third sealing element 48, and the second fastener 47 passes through the sixth mounting hole 481. Correspondingly, the box wall of the enclosure 10 has a tenth mounting hole 102 that corresponds one-to-one with the fifth mounting hole 4622. The tenth mounting hole 102 is a threaded hole that partially penetrates the box wall, and the second fastener 47 is threadedly connected to the tenth mounting hole 102.
[0161] During the installation of the high-voltage distribution box base 46 and the enclosure 10, the second fastener 47 passes through the fifth mounting hole 4622 and the sixth mounting hole 481 in sequence to install the high-voltage distribution box base 46 and the third sealing element 48 together onto the enclosure 10. By tightening the second fastener 47, the third sealing element 48 is compressed in the direction perpendicular to the enclosure wall. The expansion force generated after the third sealing element 48 is compressed allows it to completely fill the gap between the high-voltage distribution box base 46 and the enclosure 10, thereby forming a closed annular sealing interface between the high-voltage distribution box base 46 and the enclosure wall of the enclosure 10. This achieves a compression seal between the high-voltage distribution box 40 and the enclosure 10, preventing moisture or dust from entering the interior of the high-voltage distribution box 40 and the enclosure 10.
[0162] The outer contour of the orthographic projection of the third sealing element 48 on the enclosure 10 coincides with the outer contour of the orthographic projection of the high-voltage distribution box base 46 on the enclosure 10. The inner contour of the orthographic projection of the third sealing element 48 on the enclosure 10 lies between the boundary of the wire hole 101 and the outer contour of the orthographic projection of the third sealing element 48 on the enclosure 10. In other words, the shape and size of the hollow structure on the third sealing element 48 are not limited, as long as the wire hole 101 and the wire through hole are exposed.
[0163] In this embodiment, the shape of the third seal 48 is adapted to the second flange 462, and the third seal 48 is provided corresponding to the second flange 462 to achieve a seal between the entire high-voltage distribution box base 46 and the box body 10.
[0164] The wire hole 101 is located within the inner contour of the orthographic projection of the third seal 48 on the housing 10, and the outer contour of the orthographic projection of the wire hole on the housing 10 is located within the inner contour of the orthographic projection of the third seal 48 on the housing 10. The third seal 48 simultaneously seals both the wire hole 101 and the wire hole.
[0165] The battery device 100 also includes a maintenance switch 60, which is located on the same side wall of the housing 10 as the connector 30. The maintenance switch 60 and the connector 30 are separated to facilitate operation by the staff when the battery device 100 is being maintained.
[0166] In this embodiment, the high-voltage distribution box 40 is placed on the side of the housing 10 of the battery device 100 away from the receiving cavity, and the high-voltage distribution box 40 and the connector 30 are separately and independently set on different sides of the housing 10. The connection harness between the functional devices in the high-voltage distribution box 40 and the battery cell 20 and the connector 30 is introduced into the receiving cavity through the wire hole 101 on the housing wall. This realizes the overall design of the high-voltage distribution box 40 and the battery device 100, without the need for additional connectors to transfer the external high-voltage distribution box 40 to the battery cell 20 in the receiving cavity. The design of the external high-voltage distribution box 40 makes full use of the planar expansion space on the side of the housing 10 away from the receiving cavity. Without increasing the volume of the housing 10, it releases a certain space for the receiving cavity, optimizes the battery distribution in the receiving cavity, significantly improves the utilization rate of the internal space of the battery cell, and thus increases the battery capacity of the battery device 100.
[0167] like Figure 2 , Figure 3 and Figure 5 As shown, Embodiment 2 of this application provides a battery device. The difference between this embodiment and Embodiment 1 is that at least a portion of the outer contour of the orthographic projection of the third sealing member 48 on the housing 10 is located within the outer contour of the orthographic projection of the base body 461 on the housing 10. The base body 461 is provided with a seventh mounting hole (not shown) corresponding to the third sealing member 48. The third sealing member 48 is provided with an eighth mounting hole 482 corresponding to the seventh mounting hole. The third fastener passes through the seventh mounting hole and the eighth mounting hole 482 in sequence to install the high voltage distribution box base 46 and the third sealing member 48 on the housing 10.
[0168] In this embodiment, the third sealing element 48 is disposed tightly around the wire hole 101 and the wire through hole. A portion of the third sealing element 48 corresponds to the second flange 462, and the remaining portion corresponds to the base body 461. That is to say, in this embodiment, the third sealing element 48 only needs to seal the wire through hole 101 and the wire through hole, and does not need to be disposed over a large area.
[0169] During the installation of the high-voltage distribution box base 46 and the enclosure 10, the second fastener 47 corresponding to the third seal 48 passes through the fifth mounting hole 4622 and the sixth mounting hole 481 in sequence and connects to the enclosure 10. The remaining second fasteners 47 pass through the fifth mounting hole 4622 and connect directly to the enclosure 10. The third fasteners corresponding to the third seal 48 pass through the seventh mounting hole and the eighth mounting hole 482 in sequence and connect to the enclosure 10, thereby installing the high-voltage distribution box base 46 and the third seal 48 together on the enclosure 10. In addition, by tightening the second fasteners 47 and the third fasteners, the third seal 48 is compressed in the direction perpendicular to the enclosure wall, thereby forming a closed annular sealing interface between the high-voltage distribution box base 46 and the enclosure wall of the enclosure 10, achieving a compression seal between the high-voltage distribution box 40 and the enclosure 10, preventing moisture or dust from entering the interior of the high-voltage distribution box 40 and the enclosure 10.
[0170] The other structures of the battery device 100 in this embodiment are the same as or similar to those of the battery device 100 in Embodiment 1 above, and have the same as or similar technical effects as those in Embodiment 1 above. Please refer to the description in Embodiment 1 above for details, which will not be repeated here.
[0171] like Figure 2 , Figure 3 and Figure 6 As shown, Embodiment 3 of this application provides a battery device. The battery device in this embodiment is structurally similar to the battery device in Embodiment 1 above, except that: the design of the high-voltage distribution box base 46 is omitted in this embodiment. The high-voltage distribution box 40 in this embodiment includes a functional component 41, a high-voltage distribution box cover 42, a first fastener 43, and a first sealing element 44. The box wall of the housing 10 is provided with a first mounting hole (such as...). Figure 4 The high voltage distribution box cover 42 is directly installed on the box body 10 by the first fastener 43 through the ninth mounting hole 103 (423) corresponding to the box body 10. The high voltage distribution box cover 42 and the box body 10 are sealed by the first sealing element 44. The high voltage distribution box cover 42 and the box wall of the box body 10 form a cavity for accommodating the functional device 41, and the functional device 41 is placed in the cavity.
[0172] The ninth mounting hole 103 is a threaded hole that partially penetrates the box wall, and the first fastener 43 is threadedly connected to the ninth mounting hole 103.
[0173] The structure of the high-voltage distribution box cover 42 is described in Embodiment 1 above and will not be repeated here. The shape of the first sealing element 44 is adapted to the first flange 422, and the first sealing element 44 is located between the first flange 422 and the housing 10. The first sealing element 44 has second mounting holes 441 arranged at intervals along its circumference. Each second mounting hole 441 corresponds to one of the first mounting holes, and the second mounting holes 441 are through holes that completely penetrate the first sealing element 44. The first fastener 43 passes through the second mounting holes 441.
[0174] During the installation of the high-voltage distribution box cover 42 and the enclosure 10, the first fastener 43 passes through the first mounting hole and the second mounting hole 441 in sequence and connects to the enclosure 10, thereby installing the high-voltage distribution box cover 42 and the first sealing element 44 together on the enclosure 10. By tightening the first fastener 43, the first sealing element 44 is compressed in the direction perpendicular to the enclosure wall. The expansion force generated after the first sealing element 44 is compressed allows it to completely fill the gap between the high-voltage distribution box cover 42 and the enclosure 10, thereby forming a closed ring-shaped sealing interface between the first flange 422 and the enclosure wall of the enclosure 10. This achieves a compression seal between the high-voltage distribution box cover 42 and the enclosure 10, preventing moisture or dust from entering the high-voltage distribution box 40 and the interior of the enclosure 10, and improving the sealing performance of the entire device.
[0175] The wire hole 101 is located within the inner contour of the orthographic projection of the first sealing member 44 on the housing 10, so that the high-voltage distribution box 40 and the wire hole 101 can be sealed simultaneously through the first sealing member 44.
[0176] Furthermore, since the first flange 422 is used to form the mounting surface between the high-voltage distribution box cover 42 and the enclosure 10, the first seal 44 is designed so that its orthographic projection contour on the enclosure 10 coincides with the orthographic projection contour of the first flange 422 on the enclosure 10. In this way, the sealing path from the outside to the inside of the high-voltage distribution box 40 can be maximized, achieving the best sealing effect.
[0177] Since the design of the high-voltage distribution box base 46 is omitted in this embodiment, if the functional components 41 are all installed on the inner side wall of the box cover body 421, the load on the first fastener 43 will be increased, which may affect the sealing performance between the high-voltage distribution box cover 42 and the box body 10 in the long term.
[0178] To address this issue, the high-voltage distribution box 40 in this embodiment is further provided with a mounting bracket 49. The functional components 41 are mounted on the housing 10 via the mounting bracket 49, achieving three-dimensional mounting of each functional component 41, reducing the thickness of the high-voltage distribution box 40 in the direction perpendicular to the adjacent housing wall, and reducing the space ratio of the high-voltage distribution box 40. Furthermore, since the high-voltage distribution box base 46 is eliminated in this embodiment, the structural design of the high-voltage distribution box 40 is simplified, thereby further reducing the space ratio of the high-voltage distribution box 40.
[0179] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and not to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application, and they should all be covered within the scope of the claims and specification of this application. In particular, as long as there is no structural conflict, the various technical features mentioned in the embodiments can be combined in any way. This application is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A battery device, characterized by, include: The enclosure includes a receiving cavity, and the enclosure wall is provided with a wire passage hole communicating with the receiving cavity; A single battery cell is disposed within the receiving cavity; A connector is mounted on the housing and electrically connected to the individual battery cells; A high-voltage distribution box is disposed on the side of the enclosure wall away from the receiving cavity, and the high-voltage distribution box and the connector are respectively located on the enclosure walls on different sides of the enclosure; The first connecting harness has one end electrically connected to the functional device inside the high-voltage distribution box, and the other end is introduced into the receiving cavity through the wire hole and electrically connected to the battery cell. The second connecting harness has one end electrically connected to the functional device inside the high-voltage distribution box, and the other end is introduced into the receiving cavity through the wire hole and electrically connected to the connector.
2. The battery device of claim 1, wherein The high-voltage distribution box and the wire passage hole are located on the same side of the enclosure wall, and the wire passage hole is located within the outer contour of the orthographic projection of the high-voltage distribution box on the enclosure.
3. The battery device of claim 2, wherein A sealing interface is formed between the high-voltage distribution box and the box wall, and the wire hole corresponds to the sealing range of the sealing interface.
4. The battery device of claim 2, wherein The connector is located on the first wall of the enclosure, and the high-voltage distribution box is located on the second wall of the enclosure. The first wall and the second wall are arranged adjacent to or opposite to each other.
5. The battery device according to any one of claims 2 to 4, characterized by, The high-voltage distribution box also includes a high-voltage distribution box cover. The high-voltage distribution box cover includes a cover body and a first flange. The first flange is located around the perimeter of the cover body. The first flange has a first mounting hole. A first fastener passes through the first mounting hole to install the high-voltage distribution box cover onto the enclosure. The side surface of the cover body facing the enclosure wall has a receiving groove, and the functional device is placed in the receiving groove.
6. The battery device of claim 5, wherein The high-voltage distribution box cover and the box wall enclose a cavity for accommodating the functional devices.
7. The battery device of claim 6, wherein The high-voltage distribution box also includes a first sealing element, which is located between the first flange and the box wall. The high-voltage distribution box cover and the box wall form a sealing interface through the first sealing element, and the wire hole is located within the inner contour of the orthographic projection of the first sealing element on the box body.
8. The battery device of claim 7, wherein, The orthographic projection outline of the first seal on the housing coincides with the orthographic projection outline of the first flange on the housing.
9. The battery device of claim 7, wherein, The first sealing element is provided with a second mounting hole that corresponds one-to-one with the first mounting hole. The first fastener passes through the first mounting hole and the second mounting hole in sequence to install the high voltage distribution box cover and the first sealing element on the box body.
10. The battery device of claim 6, wherein, The high-voltage distribution box also includes a mounting bracket, and the functional components are mounted on at least one of the enclosure and the cover body via the mounting bracket.
11. The battery device of claim 5, wherein, The high-voltage distribution box also includes a high-voltage distribution box base adapted to the high-voltage distribution box cover. The high-voltage distribution box base is installed on the enclosure and includes a base body and a second flange. The second flange is located around the perimeter of the base body and has a third mounting hole that corresponds one-to-one with the first mounting hole. The first fastener passes through the first mounting hole and the third mounting hole in sequence to install the high-voltage distribution box cover onto the high-voltage distribution box base. The high-voltage distribution box cover and the high-voltage distribution box base together form a cavity for accommodating the functional device. The functional device is installed on at least one of the base body and the cover body.
12. The battery device of claim 11, wherein, The base body is provided with a through hole corresponding to the position of the through hole. The connecting wire harness is introduced into the receiving cavity from the high voltage distribution box by passing through the through hole and the through hole in sequence.
13. The battery device of claim 12, wherein, The high-voltage distribution box further includes a second sealing element and a third sealing element. The second sealing element is located between the high-voltage distribution box cover and the high-voltage distribution box base, so that a sealing interface is formed between the high-voltage distribution box cover and the high-voltage distribution box base. The third sealing element is located between the high-voltage distribution box base and the box wall, so that a sealing interface is formed between the high-voltage distribution box base and the box wall; Wherein, the wire hole is located within the inner contour of the orthographic projection of the third seal on the housing, and the outer contour of the wire hole on the orthographic projection of the third seal on the housing is located within the inner contour of the orthographic projection of the third seal on the housing.
14. The battery device of claim 13, wherein, The second sealing element is located between the first flange and the second flange. The second sealing element has a fourth mounting hole that corresponds one-to-one with the first mounting hole. The first fastener passes through the first mounting hole, the fourth mounting hole and the third mounting hole in sequence to install the high voltage distribution box cover and the second sealing element on the high voltage distribution box base.
15. The battery device of claim 14, wherein, The second flange is also provided with a fifth mounting hole, which is spaced apart from and alternately distributed with the third mounting hole. The second fastener passes through the fifth mounting hole to install the high voltage distribution box base onto the box body. The second sealing element has a clearance groove at the position corresponding to the fifth mounting hole.
16. The battery device of claim 15, wherein, The third sealing element is provided corresponding to the second flange, and the third sealing element is provided with a sixth mounting hole that corresponds one-to-one with the fifth mounting hole. The second fastener passes through the fifth mounting hole and the sixth mounting hole in sequence to install the high voltage distribution box base and the third sealing element on the box body.
17. The battery device of claim 16, wherein, The outer contour of the orthographic projection of the third sealing element on the enclosure coincides with the outer contour of the orthographic projection of the high-voltage distribution box base on the enclosure.
18. The battery device of claim 13, wherein, At least a portion of the outer contour of the orthographic projection of the third seal onto the housing lies within the outer contour of the orthographic projection of the base body onto the housing.
19. The battery device of claim 18, wherein, The base body has a seventh mounting hole corresponding to the third sealing member, and the third sealing member has an eighth mounting hole corresponding to the seventh mounting hole. The third fastener passes through the seventh mounting hole and the eighth mounting hole in sequence to install the high voltage distribution box base and the third sealing member onto the box body.
20. The battery device of any one of claims 1-4, wherein, The high-voltage distribution box is an irregularly shaped structure manufactured using a die-casting process.
21. The battery device of any one of claims 1-4, wherein, It also includes a maintenance switch, which is located on the same side of the enclosure wall as the connector, and the maintenance switch is separated from the connector.
22. An electrical device, comprising: Includes the battery device as described in any one of claims 1-21.
23. An energy storage device, comprising: Includes the battery device as described in any one of claims 1-21.