Battery and power consumption device
The battery design with a larger thermal management member on a separate wall and discharge passages addresses safety issues by enhancing temperature regulation and directing exhaust, improving safety during thermal runaway events.
Patent Information
- Application Number
- JP2025178343
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-02-10
AI Technical Summary
Existing battery technologies face safety issues due to inadequate temperature regulation and pressure management, particularly during thermal runaway events, which can lead to explosions or fires.
A battery design incorporating a thermal management member attached to a second wall with a larger area than the first wall, where the pressure reduction mechanism is installed, along with discharge passages and support members to manage temperature and exhaust efficiently, preventing thermal diffusion and improving safety.
Enhances temperature regulation and directs exhaust away from the thermal management member, reducing the risk of thermal diffusion and improving overall battery safety by effectively managing pressure and temperature fluctuations.
Smart Images

Figure 2026021370000001_ABST
Abstract
Description
[Technical Field]
[0001] This application relates to the field of battery technology, and more particularly to batteries and power consuming devices. [Background technology]
[0002] Energy conservation and emission reduction are key points in the sustainable development of the automotive industry. In this context, electric vehicles have become an important component in the sustainable development of the automotive industry due to their advantages of energy saving and environmental friendliness. For electric vehicles, battery technology is a key element in their development.
[0003] In the development of battery technology, in addition to improving battery performance, safety issues are also an issue that cannot be ignored. If the safety issues of a battery cannot be guaranteed, the battery cannot be used. Therefore, how to improve battery safety is a technical issue that needs to be resolved as soon as possible in battery technology. Summary of the Invention
[0004] The present application provides a battery and a power consuming device that can improve the safety of the battery.
[0005] According to a first aspect, there is provided a battery including a battery cell, a thermal management member, and an exhaust passage, wherein a first pressure reduction mechanism is installed on a first wall of the battery cell, the thermal management member is used to adjust the temperature of the battery cell, the thermal management member is attached to a second wall of the battery cell, the second wall is different from the first wall, and the area of the second wall is equal to or greater than the area of the first wall, and the exhaust passage is arranged so that it can communicate with the interior of the battery cell via the first pressure reduction mechanism when the first pressure reduction mechanism is activated, thereby allowing exhaust from the battery cell to be discharged to the exhaust passage.
[0006] In the embodiment of the present application, the thermal management member is attached to the second wall where the first pressure reduction mechanism of the battery cell is not installed, and the contact area between the thermal management member and the battery cell is large, so that the temperature regulation effect on the battery cell is significant when the battery cell is operating normally. Furthermore, the second wall where the thermal management member is attached is not the first wall where the first pressure reduction mechanism of the battery cell is installed. As a result, if thermal runaway occurs in the battery cell, the exhaust from the battery cell that passes through the first pressure reduction mechanism is discharged in a direction away from the thermal management member, making it less likely to break through the thermal management member. This allows the thermal management member to reduce the temperature of the battery cell where thermal runaway occurs, avoiding thermal diffusion and improving battery safety.
[0007] Furthermore, the battery further includes a discharge passage, and when the first pressure reducing mechanism is activated, the discharge passage can communicate with the interior of the battery cell via the first pressure reducing mechanism, allowing discharged matter from the interior of the battery cell to pass through the first pressure reducing mechanism and be discharged to the discharge passage, preventing heat diffusion caused by the discharged matter accumulating in the battery cell and improving the safety of the battery.
[0008] In some embodiments, the battery further includes a housing including an electrical cavity, the electrical cavity adapted to accommodate the battery cells and the thermal management element. The electrical cavity of the housing of the present embodiment is adapted to accommodate at least one battery cell and at least one thermal management element. That is, the electrical cavity provides mounting space for the battery cells and the thermal management element, improving the packability of the battery.
[0009] In some embodiments, the exhaust passage includes a first passage, which is used to exhaust effluent from the first pressure reducing mechanism to the electrical cavity. Because the battery cell is installed in the electrical cavity, effluent from the first pressure reducing mechanism of the battery cell passes through the first passage and is directly exhausted into the electrical cavity in which the battery cell is located, allowing effluent to be exhausted from the electrical cavity without adding any additional structure. This makes the structure of the housing simpler and easier to implement.
[0010] In some embodiments, the electrical cavity includes a third wall opposite the first wall, and at least a portion of the first passage is located between the first wall and the third wall. A first pressure reducing mechanism is installed on the first wall of the battery cell, and a first passage is installed between the first wall and the third wall, so that effluent discharged through the first pressure reducing mechanism can be directly introduced into the first passage. Therefore, by installing the first passage, the purpose of directional discharge of the effluent can be achieved, and the effluent can be prevented from affecting other components in the electrical cavity, thereby improving the safety of the battery.
[0011] In some embodiments, the battery further includes a first support member disposed between the first wall and the third wall, the first support member being used to define at least a portion of the first passageway.
[0012] On the one hand, the first support member is located between the first wall and the third wall and can provide support, thereby improving the third wall's compressive strength. When external pressure acts on the battery, the installed first support member can block most or even all of the external pressure, thereby reducing or eliminating the influence of the external pressure on components such as the battery cells and thermal management components in the electrical cavity, and improving the pressure resistance and safety performance of the battery. On the other hand, the first support member can be used to form at least a part of a first passage for exhaust passing through the battery cells, thereby allowing the exhaust to pass through the first passage and achieving directional exhaust.
[0013] In some embodiments, the first support member is disposed in correspondence with an area of the first wall other than the first pressure reduction mechanism, thereby forming at least a portion of the first passage outside the first support member. The first support member is disposed in correspondence with an area of the first wall other than the first pressure reduction mechanism, such that effluent passing through the first pressure reduction mechanism and discharged is outside the first support member, thereby forming at least a portion of the first passage outside the first support member. For example, at least a portion of the first passage may be formed between multiple first support members or between the first support member and a wall of the electrical cavity, thereby discharging the effluent in a directional manner.
[0014] In some embodiments, the first support member abuts against an area of the first wall other than the first pressure reducing mechanism. The first support member can abut against an area of the first wall other than the first pressure reducing mechanism, thereby ensuring that the first support member has a good supporting effect on the first wall.
[0015] In some embodiments, the battery includes a plurality of the first support members spaced apart, with at least a portion of the first passageway being formed between the plurality of first support members. Since a battery typically includes a plurality of battery cells, a plurality of first support members can be spaced apart between the first and third walls of the plurality of battery cells. This allows at least a portion of the first passageway to be formed between the plurality of first support members, and the discharged matter can be discharged between the plurality of first support members after passing through the first pressure reducing mechanism, thereby achieving directional discharge.
[0016] In some embodiments, the first support member has a first opening, which is located corresponding to the first pressure reducing mechanism, so that the waste material passing through the first pressure reducing mechanism is discharged through the first opening. In this way, the waste material from the battery cell passes through the first pressure reducing mechanism and enters the first opening, and by rationally setting the position of the first opening, directional discharge of the waste material can be achieved.
[0017] In some embodiments, the first support member has a hollow structure, and the first pressure reducing mechanism communicates with the interior of the first support member through the first aperture, thereby forming at least a portion of the first passage within the first support member.
[0018] The first openings are located opposite the first pressure reduction mechanism and do not interfere with the operation of the first pressure reduction mechanism, thereby enabling the first support member to perform its supporting function while also easily receiving waste from the battery cells that has passed through the first pressure reduction mechanism via the first openings of the first support member. The waste can then pass through the first openings and be collected inside the first support member, enabling directional discharge of the waste and preventing it from affecting components within the electrical cavity.
[0019] In some embodiments, the cross-sectional area of the first aperture is equal to or greater than the area of the first pressure reducing mechanism, thereby further improving the good conduction effect of the first aperture on the effluent and preventing the first aperture from blocking the effluent discharged from the first pressure reducing mechanism from entering the first passage.
[0020] In some embodiments, the first support member abuts the first wall and / or the third wall. This allows the first support member to provide support to the first wall and / or the third wall, improving the overall compressive strength of the first wall and / or the third wall. In particular, when the first support member abuts the first wall and the third wall simultaneously, the overall compressive strength of the first wall and the third wall can be improved simultaneously, preventing external pressure from affecting components such as battery cells in the electrical cavity.
[0021] In some embodiments, the connecting surface of the first support member abuts the first wall and / or the third wall, and a second aperture is provided on the non-connecting surface of the first support member, thereby forming at least a portion of the first passage outside the first support member and increasing the discharge path for waste matter passing through the battery cell.
[0022] In some embodiments, a gap is provided between the first wall and the third wall, and the gap is used to form at least a portion of the first passage, which can reduce the requirement for sealing of the electrical cavity, especially the requirement for sealing between the first wall and the third wall, thereby reducing the difficulty and improving the processing efficiency of the battery.
[0023] In some embodiments, a second pressure reducing mechanism is installed in the third wall and / or the fourth wall, and the second pressure reducing mechanism is used to exhaust the effluent that has passed through the first passage from the electrical cavity, and the fourth wall is a wall of the electrical cavity that intersects with the third wall.
[0024] The first passage is located between the first and third walls, and when the second pressure reducing mechanism is installed on the third wall, the effluent in the first passage can be quickly discharged from the electrical cavity, preventing thermal diffusion caused by effluent accumulation in the electrical cavity and improving battery safety. When the second pressure reducing mechanism is installed on the fourth wall, the second pressure reducing mechanism is located close to the end of the first passage, similarly achieving the purpose of quickly discharging effluent, preventing thermal diffusion caused by effluent accumulation in the electrical cavity and improving battery safety.
[0025] In some embodiments, the exhaust passage includes a second passage, which is used to exhaust the exhaust from the first pressure reduction mechanism from the electrical cavity. The exhaust from the battery cell that has passed through the first pressure reduction mechanism passes through the second passage and is exhausted from the electrical cavity. The exhaust does not affect the battery cells in the electrical cavity, effectively preventing heat diffusion and short-circuiting of the battery cells caused by the exhaust, and improving battery safety. In addition, the second passage allows the exhaust from the battery cells to be collected in a concentrated manner to avoid affecting other components.
[0026] In some embodiments, the housing further includes a collection cavity for collecting effluent from the battery cells through the second passage when the first pressure reducing mechanism is activated. The collection cavity collects and / or processes effluent discharged through the first pressure reducing mechanism when the pressure reducing mechanism is activated, for example, by collecting effluent discharged through the second passage when the first pressure reducing mechanism is activated. The collection cavity can reduce the temperature of the effluent and further discharge the effluent to the outside of the battery.
[0027] In some embodiments, the electrical cavity includes a third wall facing the first wall, the third wall being hollow, and at least a portion of the collection cavity being formed within the third wall. Because the third wall has an integrated structure, the housing structure can be simplified, installation is easy, and processing efficiency of the battery can be improved.
[0028] In some embodiments, a first pressure reduction region is provided in a first sub-wall of the third wall facing the first wall, the first pressure reduction region being provided opposite the first pressure reduction mechanism and configured to form at least a portion of the second passage. The first pressure reduction region is configured to allow effluent that has passed through the first pressure reduction mechanism to be discharged into the third wall, i.e., into the collection cavity, when the first pressure reduction mechanism is activated, thereby preventing the effluent from damaging other battery cells in the electrical cavity and avoiding heat diffusion, thereby improving the safety of the battery.
[0029] In some embodiments, the first pressure reduction region is a first through-hole extending through the thickness of the first minor wall, and the second passage includes the first through-hole. The first pressure reduction region is configured as a first through-hole, which facilitates processing and provides a deformation space for the first pressure reduction mechanism to operate. During operation of the first pressure reduction mechanism, the effluent is quickly discharged into the collection cavity within the third wall, thereby improving the discharge efficiency and safety of the battery.
[0030] In some embodiments, the first pressure reduction region is a first weakened region on the first minor wall, which is adapted to break upon activation of the first pressure reduction mechanism to form at least a portion of the second passageway.
[0031] When the first pressure-reducing mechanism is not activated, for example, during normal use of the battery, the first weakened area can keep the third wall relatively sealed, effectively protecting the first pressure-reducing mechanism from being destroyed and ineffective by external forces. Furthermore, when the first pressure-reducing mechanism is activated, the strength of the first weakened area is lower than the strength of other areas of the first sub-wall other than the first pressure-reducing area. Therefore, the first weakened area is easily destroyed, and exhaust from the battery cell equipped with the first pressure-reducing mechanism can pass through the first weakened area and be discharged from the electrical cavity, for example, into the collection cavity inside the third wall.
[0032] In some embodiments, a third pressure reducing mechanism is installed in a second sub-wall of the third wall, and the third pressure reducing mechanism is used to exhaust the effluent that has passed through the second passage from the collection cavity, and the second sub-wall is different from the first sub-wall.
[0033] When the internal pressure or temperature of the collection cavity inside the third wall reaches a threshold, the third pressure reducing mechanism is activated to release the internal pressure or temperature of the collection cavity, and the effluent in the collection cavity is immediately discharged from the housing. Furthermore, because the second sub-wall is different from the first sub-wall, the effluent does not pass through the third pressure reducing mechanism and re-enter the electrical cavity, thereby avoiding any impact on components in the electrical cavity and improving the safety of the battery.
[0034] In some embodiments, the electrical cavity includes a fourth wall intersecting the third wall, the fourth wall being hollow and communicating with the interior of the third wall, thereby forming at least a portion of the collection cavity within the third wall and the fourth wall. This allows the collection cavity to be expanded, the second passage to be extended, and the collection cavity can accommodate more effluent. This is advantageous in reducing the temperature of the internal effluent, improving the effluent discharge efficiency, and improving the safety of the battery.
[0035] In some embodiments, the battery further includes an isolation member attached to the first wall, which is used to isolate the electrical cavity from the collection cavity. The isolation member isolates the electrical cavity from the collection cavity, i.e., the electrical cavity for accommodating the battery cells and thermal management components and the collection cavity for collecting waste are spatially separated from each other, thereby preventing mutual influence between them.
[0036] In some embodiments, the isolator member has a second decompression region that forms at least a portion of the second passageway. When the first decompression mechanism of the battery cell is activated, the effluent discharged through the first decompression mechanism can penetrate the second decompression region and enter the collection cavity, thereby preventing the effluent from damaging other battery cells in the electrical cavity and avoiding heat diffusion, thereby improving the safety of the battery.
[0037] In some embodiments, the second pressure reduction region is a second through-hole extending through the thickness of the separator, and the second passage includes the second through-hole. The second pressure reduction region is configured as a second through-hole, which facilitates processing and provides a deformation space for the first pressure reduction mechanism. During operation of the first pressure reduction mechanism, the effluent is quickly discharged through the second through-hole into the collection cavity, thereby improving the effluent discharge efficiency and the safety of the battery.
[0038] In some embodiments, the second pressure reduction region is a second weakened region that is ruptured to form at least a portion of the second passageway when the first pressure reduction mechanism is activated. Therefore, when the first pressure reduction mechanism is not activated, for example, during normal use of the battery, the second weakened region can relatively seal the collection cavity and effectively protect the first pressure reduction mechanism from being ruptured and ineffective by external forces. Furthermore, when the first pressure reduction mechanism is activated, the strength of the second weakened region is lower than the strength of other regions of the isolation member other than the second pressure reduction region. Therefore, the second weakened region is easily ruptured, and exhaust from the battery cell equipped with the first pressure reduction mechanism can pass through the second weakened region to be discharged from the electrical cavity, for example, to pass through the second weakened region and enter the collection cavity.
[0039] In some embodiments, the battery further includes a second support member installed within the collection cavity, which is used to improve the compressive strength of the collection cavity. The second support member installed within the collection cavity provides support for a hollow collection cavity. Therefore, the collection cavity with the second support member installed has better compressive strength. In other words, when external pressure acts on the battery, the collection cavity with the second support member installed can prevent most or even all of the external pressure. This reduces or eliminates the effects of the external pressure on components such as the battery cells and thermal management components within the electrical cavity, improving the pressure resistance and safety performance of the battery.
[0040] In some embodiments, the second support member is installed in a region of the isolation member other than the second pressure reduction region, thereby forming at least a portion of the second passageway outside the second support member. The second support member is installed in a region of the isolation member other than the second pressure reduction region, thereby preventing the second support member from affecting the first pressure reduction mechanism and the second pressure reduction region. For example, the second support member can be prevented from blocking exhaust from the interior of the battery cell that is discharged through the first pressure reduction mechanism and the second pressure reduction region, allowing the exhaust to be immediately discharged from the electrical cavity and collected by the collection cavity. Therefore, the second support member installed according to the embodiments of the present application improves the compressive strength of the collection cavity without affecting the safety performance of the battery cell.
[0041] In some embodiments, the second support member abuts an area of the isolation member other than the second reduced pressure area, thereby ensuring that the second support member provides good support to the collection cavity.
[0042] In some embodiments, the second support member has a third opening, which is located corresponding to the second decompression region, so that waste material passing through the second decompression region is discharged through the third opening. Waste material from the battery cell is discharged through the first decompression mechanism and the second decompression region and enters the third opening. By rationally positioning the third opening, directional discharge of the waste material can be achieved.
[0043] In some embodiments, the second support member has a hollow structure, and the second reduced pressure region communicates with the interior of the second support member through the third aperture, thereby forming at least a portion of the second passage within the second support member.
[0044] The third opening is positioned opposite the first pressure reduction mechanism and the second pressure reduction region, so it does not interfere with the operation of the first pressure reduction mechanism or prevent waste from passing through the second pressure reduction region. This not only fulfills the support function of the second support member, but also allows the third opening of the second support member to easily receive waste from the battery cells that is discharged sequentially through the first pressure reduction mechanism and the second pressure reduction region. Therefore, the waste can pass through the third opening and be collected inside the second support member. The third opening and the second support member can be used as at least a part of the second passage. This allows for directional discharge of waste and prevents the waste from affecting components in the electrical cavity.
[0045] In some embodiments, the cross-sectional area of the third aperture is equal to or greater than the area of the second reduced pressure region, thereby further improving the good conduction effect of the third aperture on the effluent and preventing the third aperture from blocking the effluent discharged from the second reduced pressure region from entering the second passage.
[0046] In some embodiments, the housing further includes a protective member, which together with the isolation member is used to form the collection cavity and which further protects the isolation member.
[0047] In some embodiments, the second support member abuts the isolation member and / or the protection member. This allows the second support member to provide support to the isolation member and / or the protection member, improving the compressive strength of the isolation member and / or the protection member as a whole. In particular, when the second support member abuts the isolation member and / or the protection member simultaneously, the compressive strength of the isolation member and / or the protection member as a whole is improved simultaneously. This prevents external pressure from affecting the collection cavity and also prevents external pressure from affecting components such as battery cells in the electrical cavity.
[0048] In some embodiments, the connecting surface of the second support member abuts the isolation member and / or the protection member, and a fourth opening is provided on the non-connecting surface of the second support member, thereby forming at least a portion of the second passage outside the second support member and increasing the discharge path for waste matter passing through the battery cell.
[0049] In some embodiments, the electrical cavity includes a fourth wall intersecting the isolation member, the fourth wall being hollow, thereby forming at least a portion of the collection cavity within the fourth wall. The interior of the fourth wall communicates with the collection cavity between the isolation member and the protective member, expanding the area of the collection cavity and extending the area of the second passage, allowing the collection cavity to accommodate more effluent. This is advantageous in reducing the temperature of the internal effluent, improving the effluent discharge efficiency, and enhancing the safety of the battery.
[0050] In some embodiments, a fourth pressure reducing mechanism is installed in a third sub-wall of the fourth wall, which is distant from the electrical cavity, and the fourth pressure reducing mechanism is used to discharge the effluent that has passed through the second passage from the collection cavity. When the internal pressure or temperature of the collection cavity reaches a threshold, the fourth pressure reducing mechanism installed in the third sub-wall is activated to release the internal pressure or temperature of the collection cavity and immediately discharge the effluent in the collection cavity from the housing. The third sub-wall is the wall of the fourth wall distant from the electrical cavity. Furthermore, because the third sub-wall is distant from the electrical cavity, the effluent does not pass through the fourth pressure reducing mechanism and enter the electrical cavity, avoiding any impact on components in the electrical cavity and improving the safety of the battery.
[0051] In some embodiments, the second wall is the largest wall in the battery cell, thereby increasing the contact area between the thermal management member and the battery cell, effectively regulating the temperature of the battery cell and improving the efficiency of increasing or decreasing the temperature.
[0052] In some embodiments, the battery includes a plurality of rows of battery cells arranged along a first direction, and each row of the plurality of rows of battery cells includes at least one battery cell arranged along a second direction, the first direction being perpendicular to the second direction and the second wall. By arranging the plurality of battery cells in an array within the battery, assembly of the battery can be facilitated and the space utilization rate of the plurality of battery cells within the battery can be improved.
[0053] In some embodiments, the thermal management member is attached to the second wall of at least one battery cell in at least one row of battery cells in the plurality of rows of battery cells, such that there is at least one thermal management member within the battery, each thermal management member capable of regulating the temperature of at least one battery cell.
[0054] In some embodiments, the battery cell includes two second walls arranged opposite to each other along the first direction, and the thermal management members attached to the two second walls of at least one battery cell are respectively arranged on both sides of the battery cells in at least one row of the battery cells in the plurality of rows along the first direction. Thus, the battery has two thermal management members, which can simultaneously regulate the temperatures of the battery cells in the row, improve the efficiency of temperature regulation, and improve the safety of the battery.
[0055] In some embodiments, the same thermal management members are provided between at least two adjacent rows of battery cells in the plurality of rows of battery cells, thereby facilitating battery processing and assembly.
[0056] In some embodiments, the battery includes a plurality of the thermal management elements arranged along the first direction, which can increase the number of thermal management elements and improve the efficiency of temperature regulation.
[0057] In some embodiments, the thermal management elements are spaced apart along the first direction, and at least one battery cell is located between two adjacent thermal management elements, avoiding the presence of mutual attachment between the thermal management elements, thereby improving not only the space utilization rate of the battery but also the efficiency of temperature regulation.
[0058] In some embodiments, the thermal management element has a heat exchange passage for accommodating a heat exchange medium, and the heat exchange passages of the thermal management elements communicate with each other. This communication between the thermal management elements facilitates management and control, improving the integration and safety of the battery, and also allows heat exchange through the heat exchange passage when the temperature of some of the thermal management elements in the battery changes significantly, thereby reducing the temperature difference between the thermal management elements and improving the efficiency of temperature control.
[0059] In some embodiments, the ratio D / S of the thickness D of the thermal management element along a first direction to the area occupied by the element S ranges from 0.5 mm to 200 mm. The first direction is perpendicular to the second wall, and the area occupied by the element S is the ratio of the area of the second wall in contact with the element to the area of the second wall. Preferably, the value of D / S ranges from 1 mm to 100 mm. If the ratio of the thickness of the thermal management element to the area occupied by the element S is set too small, the element will be too thin for a given area occupied by the element S. This makes the element S difficult to process and too weak, making it susceptible to fracture during assembly and reducing the processing efficiency of the battery. Conversely, if the ratio of the thickness of the thermal management element to the area occupied by the element S is set too large, the element S will be too thick, occupying a large amount of space, reducing the battery's space utilization rate, i.e., potentially reducing the battery's energy density, and potentially affecting the battery's electrical capacity requirements. On the other hand, the area occupancy may be too small, i.e., the contact area between the thermal management member and the second wall of the battery cell is too small, resulting in poor temperature regulation efficiency.
[0060] According to a second aspect, there is provided a power consuming device battery including the battery according to the first aspect used to supply electrical energy.
[0061] In some embodiments, the power consuming device is a vehicle, a watercraft or a spacecraft. [Brief explanation of the drawings]
[0062] [Figure 1] 1 is a structural schematic diagram of a vehicle according to an embodiment of the present invention; [Figure 2] 1 is a schematic exploded view of a battery according to an embodiment of the present invention; [Figure 3] 1 is a cross-sectional schematic view of a battery according to an embodiment of the present application. [Figure 4] 1 is a schematic exploded view of a battery cell according to an embodiment of the present invention; [Figure 5] 1 is a partial cross-sectional schematic view of a battery according to one embodiment of the present application. [Figure 6] 2 is a partial cross-sectional schematic view of another battery according to an embodiment of the present application. [Figure 7] FIG. 2 is a schematic exploded view of another battery according to an embodiment of the present application. [Figure 8] FIG. 2 is a cross-sectional schematic view of another battery according to an embodiment of the present application. [Figure 9] 2 is a partial cross-sectional schematic view of another battery according to an embodiment of the present application. [Figure 10] FIG. 1 is a cross-sectional schematic view of yet another battery according to an embodiment of the present application. [Figure 11] FIG. 10 is a schematic exploded view of yet another battery according to an embodiment of the present application. [Figure 12] FIG. 1 is a cross-sectional schematic view of yet another battery according to an embodiment of the present application. [Figure 13] 1 is a partial cross-sectional schematic view of yet another battery according to an embodiment of the present application. [Figure 14] 1 is another partial cross-sectional schematic view of yet another battery according to an embodiment of the present application. [Figure 15] 1 is yet another partial cross-sectional schematic view of yet another battery in accordance with an embodiment of the present application. [Figure 16] 1 is a schematic diagram of a partial structure of a battery according to an embodiment of the present application. [Figure 17] 1 is a structural schematic diagram of a plurality of battery cells and a thermal management member according to one embodiment of the present application. [Figure 18] FIG. 2 is another partial cross-sectional schematic view of a battery according to an embodiment of the present application.
[0063] In the drawings, the drawings are not drawn to scale. DETAILED DESCRIPTION OF THE INVENTION
[0064] The embodiments of the present application will be described in more detail below with reference to the drawings and examples. The detailed description of the following examples and the drawings are used to exemplify the principles of the present application, but are not intended to limit the scope of the present application, and the present application is not limited to the described examples.
[0065] It should be noted that in the description of this application, unless otherwise specified, "multiple" means two or more, and the orientations or positional relationships indicated by terms such as "up," "down," "left," "right," "inside," and "outside" are merely for ease of explanation and simplification of the description, and do not indicate or imply that the subject devices or elements have a particular orientation or should be configured and operated in a particular orientation, and therefore should not be understood as limiting the application. Furthermore, terms such as "first," "second," and "third" are used for descriptive purposes only and should not be understood as indicating or implying relative importance. "Perpendicular" does not mean perpendicular in the strict sense, but is within a tolerance range. "Parallel" does not mean parallel in the strict sense, but is within a tolerance range.
[0066] Any directional expressions appearing in the following description refer to the directions shown in the drawings and do not limit the specific structure of the present application. It should be further explained that, unless otherwise clearly specified and limited, the terms "attached," "connected," and "connect" should be understood in a broad sense, and may refer to, for example, a fixed connection, a detachable connection, or an integral connection. They may be directly connected or indirectly connected via an intermediate medium. Those skilled in the art can understand the specific meanings of the above terms in the present application according to specific circumstances.
[0067] In the embodiments of the present application, the same reference numerals indicate the same elements, and detailed descriptions of the same elements will be omitted in different embodiments for the sake of brevity. Note that the dimensions such as thickness, length, and width of each element in the embodiments of the present application and the overall dimensions such as thickness, length, and width of the integrated device shown in the drawings are merely illustrative and do not limit the present application in any way.
[0068] In this application, the battery cells may include lithium ion secondary batteries, lithium ion primary batteries, lithium-sulfur batteries, sodium lithium ion batteries, sodium ion batteries, magnesium ion batteries, etc., but the embodiments of this application are not limited thereto. The battery cells may be cylindrical, flat, rectangular, or have other shapes, but the embodiments of this application are not limited thereto. Battery cells are generally divided into three types based on the packaging method: cylindrical battery cells, prismatic battery cells, and soft-pack battery cells, but the embodiments of this application are not limited thereto.
[0069] The battery referred to in the embodiments of this application refers to a single physical module containing one or more battery cells to provide higher voltage and capacity. For example, the battery referred to in this application may include a battery module or a battery pack. The battery generally includes a housing for packaging one or more battery cells. The housing prevents liquids or other foreign objects from affecting the charging and discharging of the battery cells.
[0070] A battery cell includes an electrode assembly and an electrolyte, and the electrode assembly is composed of a positive electrode sheet, a negative electrode sheet, and a separator. The battery cell operates primarily through the movement of metal ions between the positive electrode sheet and the negative electrode sheet. The positive electrode sheet includes a positive electrode current collector and a positive electrode active material layer. The positive electrode active material layer is coated on the surface of the positive electrode current collector, and the current collector without the positive electrode active material layer protrudes from the current collector with the positive electrode active material layer coated thereon, and the current collector without the positive electrode active material layer is called a positive electrode tab. For example, in a lithium-ion battery, the positive electrode current collector may be made of aluminum, and the positive electrode active material may be lithium cobalt oxide, lithium iron phosphate, ternary lithium, lithium manganese oxide, etc. The negative electrode sheet includes a negative electrode current collector and a negative electrode active material layer. The negative electrode active material layer is coated on the surface of the negative electrode current collector, and the portion of the current collector not coated with the negative electrode active material layer protrudes from the current collector coated with the negative electrode active material layer. The portion of the current collector not coated with the negative electrode active material layer is referred to as a negative electrode tab. The material of the negative electrode current collector may be copper, and the negative electrode active material may be carbon or silicon, etc. To ensure that melting does not occur due to a large current, multiple positive electrode tabs are stacked together, and multiple negative electrode tabs are stacked together. The material of the separator may be polypropylene (PP) or polyethylene (PE), etc. The electrode assembly may have a wound structure or a stacked structure, but the present application is not limited thereto.
[0071] The development of battery technology requires simultaneous consideration of various design factors, such as performance parameters such as energy density, cycle life, discharge capacity, and charge / discharge efficiency, as well as battery safety.
[0072] The main safety hazards for battery cells stem from the charging and discharging processes. To effectively prevent unnecessary losses while also taking into account appropriate environmental temperature settings, battery cells generally have at least three protective measures. Specifically, these measures include at least a switching element, an appropriately selected separator material, and a pressure reduction mechanism. A switching element is a device that can stop the charging or discharging of a battery when the temperature or resistance within the battery cell reaches a certain threshold. The separator is used to separate the positive and negative electrode sheets. When the temperature rises to a certain level, the micrometer-order (or even nanometer-order) pores on the separator dissolve by themselves, preventing metal ions from passing through the separator and halting the internal reaction of the battery cell.
[0073] The pressure reducing mechanism is an element or component that operates to release the internal pressure or temperature of a battery cell when the internal pressure or temperature reaches a predetermined threshold. The design of the threshold varies depending on design requirements. The threshold may depend on one or more of the materials of the positive electrode sheet, the negative electrode sheet, the electrolyte, and the separator in the battery cell. The pressure reducing mechanism may take the form of an explosion-proof valve, an air valve, a pressure reducing valve, or a safety valve, and may specifically be a pressure- or temperature-sensitive element or structure. That is, when the internal pressure or temperature of the battery cell reaches a predetermined threshold, the pressure reducing mechanism operates or a weak structure in the pressure reducing mechanism breaks, forming an opening or flow path through which the internal pressure or temperature can escape.
[0074] As used herein, "activation" refers to the pressure reduction mechanism operating or being activated to a certain state, thereby releasing the internal pressure and temperature of the battery cell. The operation of the pressure reduction mechanism includes, but is not limited to, at least a portion of the pressure reduction mechanism rupturing, crushing, tearing, or opening. When the pressure reduction mechanism is activated, high-temperature and high-pressure materials inside the battery cell are discharged as emissions from the activated location. In this manner, pressure and temperature can be released from the battery cell under controllable pressure or temperature conditions, preventing the occurrence of potentially more serious accidents.
[0075] The discharged materials from the battery cell referred to in this application include, but are not limited to, electrolyte, dissolved or split positive and negative electrode sheets, separator fragments, high-temperature and high-pressure gases produced by reactions, flames, etc.
[0076] The pressure reduction mechanism in a battery cell has a significant impact on battery safety. For example, if a short circuit or overcharging occurs, thermal runaway can occur inside the battery cell, causing a sudden rise in pressure or temperature. In such cases, activating the pressure reduction mechanism releases the internal pressure and temperature to the outside, preventing the battery cell from exploding or catching fire.
[0077] In a battery assembly method, a thermal management element may be attached to the wall of a battery cell where a pressure reduction mechanism is installed. This allows the thermal management element to regulate the temperature of the battery cell when the battery cell is operating normally. However, because the pressure reduction mechanism is generally installed on the wall of the battery cell, which has a small area, the effect of regulating the temperature of the battery cell is not significant when the battery cell is operating normally. Furthermore, if a thermal runaway occurs in the battery cell, for example, when the pressure reduction mechanism of the battery cell is activated, the force and destructive power of the battery cell's exhaust gases passing through the pressure reduction mechanism may be large enough to break through the thermal management element in that direction, causing a safety hazard.
[0078] In view of this, the present application provides a battery and a power consumption device, the battery including a battery cell and a thermal management member, a first pressure reduction mechanism installed on a first wall of the battery cell, and a thermal management member attached to a second wall of the battery cell, the second wall being different from the first wall and having an area equal to or greater than that of the first wall. As a result, the thermal management member is attached to the second wall of the battery cell, where the first pressure reduction mechanism of the battery cell is not installed, and the contact area between the thermal management member and the battery cell is large, resulting in a significant temperature regulation effect on the battery cell when the battery cell is operating normally. Furthermore, the second wall to which the thermal management member is attached is different from the first wall to which the first pressure reduction mechanism of the battery cell is installed. As a result, if thermal runaway occurs in the battery cell, the exhaust from the battery cell that passes through the first pressure reduction mechanism is discharged in a direction away from the thermal management member, making it less likely to break through the thermal management member. This allows the thermal management member to reduce the temperature of the battery cell where thermal runaway occurs, avoiding thermal diffusion and improving battery safety.
[0079] Furthermore, the battery further includes a discharge passage, and when the first pressure reducing mechanism is activated, the discharge passage can communicate with the interior of the battery cell via the first pressure reducing mechanism, allowing discharged matter from the interior of the battery cell to pass through the first pressure reducing mechanism and be discharged to the discharge passage, preventing heat diffusion caused by the discharged matter accumulating in the battery cell and improving the safety of the battery.
[0080] The technical solutions described in the embodiments of this application are all applicable to power-consuming devices that use batteries.
[0081] The power consuming devices may be vehicles, mobile phones, mobile devices, laptops, ships, spacecraft, electric toys, power tools, etc. The vehicles may be gasoline-powered vehicles, natural gas-powered vehicles, or new energy vehicles, and the new energy vehicles may be pure electric vehicles, hybrid vehicles, range-extender vehicles, etc. The spacecraft may include aircraft, rockets, space shuttles, spaceships, etc. The electric toys may include stationary or mobile electric toys such as game consoles, electric car toys, electric ship toys, and electric aircraft toys. The power tools may include metal cutting power tools, polishing power tools, assembly power tools, and railroad power tools, such as electric drills, electric grinders, electric wrenches, electric screwdrivers, electric hammers, electric impact drivers, concrete vibrators, and electric planers. The embodiments of the present application are not particularly limited to the above power consuming devices.
[0082] For convenience of explanation, the following embodiment will be described using a vehicle as an example of a power consuming device.
[0083] For example, FIG. 1 shows a structural schematic diagram of a vehicle 1 according to an embodiment of the present application. The vehicle 1 may be a gasoline-powered vehicle, a natural gas-powered vehicle, or a new energy vehicle. The new energy vehicle may be a pure electric vehicle, a hybrid vehicle, a range-extender vehicle, or the like. A motor 40, a controller 30, and a battery 10 may be installed inside the vehicle 1. The controller 30 is used to control the battery 10 and supply power to the motor 40. For example, the battery 10 may be installed at the bottom, front, or rear of the vehicle 1. The battery 10 is used to supply power to the vehicle 1. For example, the battery 10 may be used as an operating power source for the vehicle 1 and for the circuit system of the vehicle 1, for example, to meet the operating power needs of the vehicle 1 during startup, navigation, and driving. In another embodiment of the present application, the battery 10 may not only serve as an operating power source for the vehicle 1, but also as a driving power source for the vehicle 1, replacing or partially replacing fuel or natural gas to provide driving power to the vehicle 1.
[0084] To meet different power needs, a battery can include multiple battery cells. The multiple battery cells can be connected in series, parallel, or series-parallel, with series-parallel connection referring to a combination of series and parallel connections. A battery is also called a battery pack. For example, multiple battery cells can be first connected in series, parallel, or series-parallel to form a battery module, and then multiple battery modules can be further connected in series, parallel, or series-parallel to form a battery. That is, multiple battery cells can directly form a battery, or first form a battery module, and then the battery module can form a battery.
[0085] FIG. 2 is a schematic exploded view of a battery 10 according to an embodiment of the present application. FIG. 3 is a schematic cross-sectional view of the battery 10 according to an embodiment of the present application. For example, the battery 10 shown in FIG. 3 may be the battery 10 shown in FIG. 2. As shown in FIGS. 2 and 3 , the battery 10 according to the embodiment of the present application includes a battery cell 20, a thermal management member 12, and an exhaust passage 13. A first pressure reduction mechanism 213 is installed on a first wall 21a of the battery cell 20. The thermal management member 12 is used to adjust the temperature of the battery cell 20 and is attached to a second wall 21b of the battery cell 20. The second wall 21b is different from the first wall 21a and has an area equal to or greater than that of the first wall 21a. The exhaust passage 13 is arranged to communicate with the interior of the battery cell 20 via the first pressure reduction mechanism 213 when the first pressure reduction mechanism 213 is activated. As a result, the waste from the battery cell 20 is discharged into the discharge passage 13 .
[0086] The shape of the battery cell 20 in the embodiments of the present application can be set according to actual applications. For example, the battery cell 20 may have a polyhedral structure, and the polyhedral structure may be surrounded by multiple walls, and thus the battery cell 20 may include multiple walls. A first pressure reduction mechanism 213 is installed on a first wall 21a of the battery cell 20, and a second wall 21b of the battery cell 20 faces the thermal management member 12. The first wall 21a and the second wall 21b may be any two different walls of the battery cell 20. For example, the first wall 21a and the second wall 21b may or may not intersect, and the area of the second wall 21b is equal to or greater than the area of the first wall 21a. For example, the second wall 21b may be the wall with the largest area of the battery cell 20, and the first wall 21a may be the wall with the smallest area of the battery cell 20. Alternatively, the first wall 21a and the second wall 21b may have the same area, and for example, both may be walls in which the area of the battery cell 20 is the largest, but the embodiment of the present application is not limited to this.
[0087] The thermal management element 12 of the present embodiment is used to adjust the temperature of the battery cells 20. For example, the thermal management element 12 can accommodate a fluid or a solid-liquid phase change material to adjust the temperature of the battery cells 20. The thermal management element 12 can also include a flow path 121 for accommodating the fluid or the solid-liquid phase change material. Specifically, the fluid can be liquid or gas. The solid-liquid phase change material may be initially solid and then transform into a liquid after absorbing heat. Adjusting the temperature refers to heating or cooling the battery cells 20. To cool or lower the temperature of the battery cells 20, the thermal management element 12 can accommodate a cooling fluid or a solid-liquid phase change material to lower the temperature of the battery cells 20. In this case, the thermal management element 12 can also be referred to as a cooling element, a cooling system, a cooling plate, or the like. The accommodated fluid can also be referred to as a cooling medium or a cooling fluid, more specifically, a cooling liquid or a cooling gas. The thermal management member 12 may also be used to heat the battery cells 20, although the present invention is not limited thereto. Preferably, the fluid may be circulating to achieve a better temperature control effect. Preferably, the fluid may be water, a mixture of water and ethylene glycol, or air.
[0088] The embodiments of the present application do not limit the method of connecting the thermal management member 12 and the battery cells 20. For example, the thermal management member 12 and the battery cells 20 may be fixedly connected to each other by an adhesive, or the thermal management member 12 may be fixed by being sandwiched between two adjacent battery cells 20.
[0089] In the embodiment of the present application, the thermal management member 12 is attached to the second wall 21b of the battery cell 20 where the first pressure reduction mechanism 213 is not installed, and the contact area between the thermal management member 12 and the battery cell 20 is large, so that the temperature regulation effect on the battery cell 20 is significant when the battery cell 20 is operating normally. Furthermore, the second wall 21b to which the thermal management member 12 is attached is not the first wall 21b where the first pressure reduction mechanism 213 of the battery cell 20 is installed. As a result, if thermal runaway occurs in the battery cell 20, the exhaust from the battery cell 20 discharged through the first pressure reduction mechanism 213 is discharged in a direction away from the thermal management member 12. Therefore, the exhaust is less likely to break through the thermal management member 12, and the thermal management member 12 can reduce the temperature of the battery cell 20 where thermal runaway occurs, avoiding heat diffusion and improving the safety of the battery 10.
[0090] Furthermore, the battery 10 further includes a discharge passage 13, and when the first pressure reducing mechanism 213 is activated, the discharge passage 13 can communicate with the inside of the battery cell 20 via the first pressure reducing mechanism 213. This allows the discharged matter inside the battery cell 20 to pass through the first pressure reducing mechanism 213 and be discharged to the discharge passage 13, preventing heat diffusion caused by the discharged matter accumulating inside the battery cell 20 and improving the safety of the battery 10.
[0091] In the present embodiment, the battery 10 further includes a housing 11 including an electrical cavity 11a, which is adapted to accommodate the battery cells 20 and the thermal management member 12. The electrical cavity 11a of the housing 11 in the present embodiment is adapted to accommodate at least one battery cell 20 and at least one thermal management member 12. That is, the electrical cavity 11a provides an installation space for the battery cells 20 and the thermal management member 12. The electrical cavity 11a may be sealed or unsealed.
[0092] Optionally, the shape of the electrical cavity 11a can be determined based on the battery cells 20 and / or thermal management members 12 to be housed therein. For example, as shown in FIGS. 2 and 3, the electrical cavity 11a may be a hollow rectangular parallelepiped. The cavity is surrounded by at least six walls, which facilitates processing. The electrical cavity 11a of the present embodiment can be formed in various ways. For example, as shown in FIGS. 2 and 3, the housing 11 may include multiple sections with the same or different shapes. The multiple sections are connected and engaged with each other to form a hollow rectangular parallelepiped, but the present embodiment is not limited thereto.
[0093] It should be noted that the electrical cavity 11a of the present embodiment does not limit the number of battery cells 20 or the number of thermal management members 12 that can be accommodated. Furthermore, other members may be installed within the electrical cavity 11a, and for example, structures for fixing the battery cells 20 and / or the thermal management members 12 to the electrical cavity 11a may be included.
[0094] Furthermore, the electrical cavity 11a in the embodiments of the present application may be used to accommodate bus members. That is, the electrical cavity 11a provides mounting space for the battery cells 20 and the bus members. The bus members are used to realize electrical connections between multiple battery cells 20, such as parallel connections, series connections, or series-parallel connections. The bus members can realize electrical connections between the battery cells 20 by connecting the electrode terminals 214 of the battery cells 20. In some embodiments, the bus members may be fixed to the electrode terminals 214 of the battery cells 20 by welding.
[0095] In the present embodiment, the exhaust passage 13 includes a first passage 131, which is used to exhaust the exhaust discharged from the first pressure reducing mechanism 213 from the electrical cavity 11a. The battery cell 20 is installed in the electrical cavity 11a. Therefore, the exhaust discharged from the battery cell 20 after passing through the first pressure reducing mechanism 213 passes through the first passage 131 and is directly discharged into the electrical cavity 11a where the battery cell 20 is located, and the exhaust can be discharged from the electrical cavity 11a without adding any additional structure. This makes the structure of the housing 11 simpler and easier to implement.
[0096] The electrical cavity 11a includes a third wall 1101 facing the first wall 21a, and at least a portion of the first passage 131 is located between the first wall 21a and the third wall 1101. A first pressure reducing mechanism 213 is installed on the first wall 21a of the battery cell 20, and a first passage 131 is installed between the first wall 21a and the third wall 1101, so that effluent discharged through the first pressure reducing mechanism 213 can be directly introduced into the first passage 131. Therefore, by installing the first passage 131, the purpose of directional discharge of the effluent can be achieved, and the effluent can be prevented from affecting other components within the electrical cavity 11a, thereby improving the safety of the battery 10.
[0097] Specifically, a first pressure reducing mechanism 213 is installed on the first wall 21a of the battery cell 20 in this embodiment. FIG. 4 is an exploded structural schematic diagram of the battery cell 20 in this embodiment. For example, the battery cell 20 shown in FIG. 4 may be any one of the battery cells 20 in the battery 10 shown in FIGS. 2 and 3. As shown in FIG. 4, the battery cell 20 includes an outer case 21, which may include multiple walls. That is, the multiple walls form a hollow outer case 21. The outer case 21 may include a housing 211 and a cover plate 212. The walls of the housing 211 and the cover plate 212 are both referred to as the walls of the battery cell 20. The shape of the housing 211 can be determined based on the shape of the housing 211 after assembling one or more electrode assemblies 22 therein. For example, the housing 211 may be a hollow rectangular parallelepiped, cube, or cylinder. At least one surface of the housing 211 has an opening, allowing one or more electrode assemblies 22 to be disposed within the housing 211. For example, if the housing 211 is a hollow rectangular parallelepiped or cube, at least one flat surface of the housing 211 is an open surface. That is, the open surface has no wall and communicates between the inside and outside of the housing 211. The housing 211 may also be a hollow cylinder. In this case, each of the two end surfaces of the housing 211 may be an open surface. That is, the end surface has no wall and communicates between the inside and outside of the housing 211. At least one cover plate 212 can be installed to cover at least one opening of the housing 211. Each cover plate 212 is connected to the housing 211 to form a sealed cavity in which the electrode assembly 22 is disposed. The housing 211 is filled with an electrolyte, for example, an electrolyte solution.
[0098] In the embodiment of the present application, a first pressure reducing mechanism 213 is installed on the first wall 21a of the battery cell 20. The first pressure reducing mechanism 213 is activated to release the internal pressure or temperature of the battery cell 20 when the internal pressure or temperature reaches a threshold. Alternatively, the first wall 21a may be any one of the walls of the battery cell 20. For example, the first wall 21a may be the wall with the largest area of the battery cell 20. Therefore, since the area of the second wall 21b is equal to or greater than the area of the first wall 21a, the first wall 21a and the second wall 21b may have the same area and be the wall with the largest area of the battery cell 20. Furthermore, as shown in FIG. 4 , the first wall 21a may be the wall with the smallest area of the battery cell 20. For example, the first wall 21a may be the bottom wall of the housing 211, which facilitates installation. For convenience of explanation, the embodiments of the present application mainly use the example that the first wall 21a is the bottom wall of the housing 211 of the battery cell 20, and for convenience of illustration, the first wall 21a is separated from the housing 211 in Fig. 4, but this does not limit whether or not there is an opening on the bottom side of the housing 211. That is, the bottom wall and the side wall of the housing 211 may be of an integral structure, or may be two independent parts connected together.
[0099] 4, the first pressure reduction mechanism 213 may be a part of the first wall 21a, or may be a separate structure from the first wall 21a and fixed to the first wall 21a by, for example, welding. When the first pressure reduction mechanism 213 is a part of the first wall 21a, the first pressure reduction mechanism 213 may be integrally formed with the first wall 21a, or the first pressure reduction mechanism 213 may be formed by providing a shallow groove or recessed groove in the first wall 21a. The shallow groove makes the thickness of the region of the first wall 21a where the first pressure reduction mechanism 213 is located thinner than the thickness of other regions of the first wall 21a other than the first pressure reduction mechanism 213. If the battery cells 20 generate too much gas and the internal pressure of the housing 211 rises to a threshold value, or if the internal reaction of the battery cells 20 generates heat and the internal temperature of the battery cells 20 rises to a threshold value, the battery cells 20 will burst at the shallow grooves, connecting the inside and outside of the outer case 21. Therefore, the gas pressure and temperature are released to the outside by the rupture of the first pressure reducing mechanism 213, preventing the battery cells 20 from exploding.
[0100] Alternatively, the first pressure reducing mechanism 213 of the embodiment of the present application may have various possible pressure reducing structures, and the embodiment of the present application is not limited thereto. For example, the first pressure reducing mechanism 213 may be a temperature-sensitive pressure reducing mechanism configured to melt when the internal temperature of the battery cell 20 in which the first pressure reducing mechanism 213 is installed reaches a threshold. And / or the first pressure reducing mechanism 213 may be a pressure-sensitive pressure reducing mechanism configured to burst when the internal air pressure of the battery cell 20 in which the first pressure reducing mechanism 213 is installed reaches a threshold.
[0101] Optionally, in one embodiment of the present application, when the first pressure reducing mechanism 213 is installed on the first wall 21a of the battery cell 20, an electrode terminal 214 may be further installed on the outer case 21 of the battery cell 20, and the wall on which the electrode terminal 214 is located may be the same as or different from the first wall 21a. For example, as shown in FIG. 4 , this embodiment of the present application will be described as an example in which the wall on which the electrode terminal 214 is located is different from the first wall 21a. For example, the wall on which the electrode terminal 214 is located may be installed opposite the first wall 21a, and the first wall 21a may be the bottom wall of the battery cell 20. In this case, the wall on which the electrode terminal 214 is located may be the cover plate 212 of the battery cell 20. This prevents waste discharged through the first pressure reducing mechanism 213 from affecting the electrode terminal 214 of the battery cell 20, thereby avoiding short circuits and improving the safety of the battery cell 20.
[0102] Specifically, as shown in Fig. 4, the battery cell 20 may include at least two electrode terminals 214. The at least two electrode terminals 214 may be installed on the same wall or on different walls. Fig. 4 illustrates an example in which the battery cell 20 includes two electrode terminals 214, and the two electrode terminals 214 are installed on a flat cover plate 212. The at least two electrode terminals 214 may include at least one positive electrode terminal 214a and at least one negative electrode terminal 214b.
[0103] The electrode terminals 214 in the present embodiment are electrically connected to the electrode assemblies 22 and used to output electrical energy. For example, each electrode terminal 214 may be provided with a corresponding connecting member 23, which may also be referred to as a current collecting member 23. The current collecting member 23 is located between the cover plate 212 and the electrode assemblies 22 and is used to electrically connect the electrode assemblies 22 and the electrode terminals 214.
[0104] As shown in FIG. 4 , each electrode assembly 22 has a first tab 221a and a second tab 221b. The polarities of the first tab 221a and the second tab 221b are opposite. For example, if the first tab 221a is a positive electrode tab, the second tab 221b is a negative electrode tab. The first tab 221a of one or more electrode assemblies 22 is connected to one electrode terminal via one connecting member 23, and the second tab 221b of one or more electrode assemblies 22 is connected to another electrode terminal via another connecting member 23. For example, the positive electrode terminal 214a is connected to the positive electrode tab via one connecting member 23, and the negative electrode terminal 214b is connected to the negative electrode tab via another connecting member 23.
[0105] According to actual usage needs, one or more electrode assemblies 22 may be installed in the battery cell 20. Although Fig. 4 shows that four independent electrode assemblies 22 are installed in the battery cell 20, the embodiment of the present application is not limited thereto.
[0106] Optionally, as shown in FIG. 4 , the battery cell 20 may further include a pad 24. The pad 24 is positioned between the electrode assembly 22 and the bottom wall of the housing 211 and serves to support the electrode assembly 22. It also effectively prevents interference between the electrode assembly 22 and the fillet around the bottom wall of the housing 211. Furthermore, the pad 24 may have one or more through-holes. For example, a plurality of uniformly arranged through-holes may be provided. Alternatively, if a first pressure reducing mechanism 213 is provided on the bottom wall of the housing 211, a through-hole may be provided at a position corresponding to the first pressure reducing mechanism 213. This facilitates the passage of liquids and gases. Specifically, this allows the spaces on the upper and lower surfaces of the pad 24 to communicate with each other, allowing both gases and electrolyte generated inside the battery cell 20 to freely pass through the pad 24.
[0107] For ease of explanation, the embodiments of the present application will be mainly described using an example in which the first wall 21a is the bottom wall of the housing 211 of the battery cell 20. As shown in Figures 2 to 4, the wall of the electrical cavity 11a facing the first wall 21a may be the third wall 1101, and the first passage 131 may be located between the first wall 21a and the third wall 1101. Specifically, the first passage 131 can be formed by various methods.
[0108] Optionally, in one embodiment, the battery 10 further includes a first support member 14 disposed between the first wall 21a and the third wall 1101, the first support member 14 being used to form at least a portion of the first passage 131. On the one hand, the first support member 14 is located between the first wall 21a and the third wall 1101 and can provide support, thereby improving the third wall 1101's compressive strength. When external pressure acts on the battery 10, the disposed first support member 14 can block most or even all of the external pressure, thereby reducing or eliminating the influence of the external pressure on components such as the battery cells 20 and the thermal management member 12 within the electrical cavity 11a, and improving the pressure resistance and safety performance of the battery 10. On the other hand, the first support member 14 may be used to form at least a portion of the first passage 131 for exhaust passing through the battery cells 20, thereby allowing the exhaust to pass through the first passage 131 and achieving directional exhaust.
[0109] Optionally, the shape and number of the first support members 14 in the embodiments of the present application can be flexibly determined according to the actual application. For example, as shown in FIGS. 2 and 3, the first support members 14 may have a strip-like structure, such as a rectangular strip or a diamond-shaped strip. The strip-like structure is easy to process and can be flexibly installed in a cavity of regular or irregular shape. For example, if a rectangular parallelepiped space is formed between the first wall 21a and the third wall 1101, one or more strip-like first support members 14 can be installed parallel to the long or short sides of the rectangular parallelepiped.
[0110] Furthermore, the first support member 14 in the embodiment of the present application may have an annular structure, such as a circular or rectangular annular structure. The annular first support member 14 can be applied to a cavity of a regular shape and provide full support for the cavity. For example, if a rectangular parallelepiped space is formed between the first wall 21a and the third wall 1101, the center of the annular first support member 14 can be located at the center of the rectangular parallelepiped.
[0111] Optionally, the first support member 14 in the embodiments of the present application may have a hollow structure or a solid structure. For example, as shown in Figures 2 and 3, the first support member 14 may have a hollow structure. Compared to a first support member 14 with a solid structure, a first support member 14 with a hollow structure is lighter in weight and does not add significant weight to the battery 10, improving the energy density of the battery 10. The embodiments of the present application will be described taking as an example the first support member 14 with a hollow structure.
[0112] Alternatively, the first support member 14 may have a tubular structure. Specifically, as shown in Figures 2 and 3, the first support member 14 of the present embodiment may have a hollow tubular structure. This provides good support because it has high axial rigidity and its radial dimension can be adapted to the distance between the first wall 21a and the third wall 1101.
[0113] In some embodiments, the cross section of the tubular structure may be any polygon, for example, the number of sides of the polygon is typically four or more, thereby improving the stability of the tubular structure. In other embodiments, the cross section of the tubular structure may be circular, track-like, or other shapes, and the examples herein are not specifically limited in this regard.
[0114] Alternatively, the thickness of the tube wall of the first support member 14 of the tubular structure provided in the embodiment of the present application may be between 0.5 mm and 3 mm, thereby ensuring the rigidity and compressive strength of the first support member 14 of the tubular structure.
[0115] Furthermore, the material of the first support member 14 provided in the embodiment of the present application may be a material with good ductility and high strength, capable of buffering and resisting external pressure, and having high compressive strength. For example, the material of the first support member 14 may be a metal material such as copper or aluminum. Alternatively, the material of the first support member 14 may be a non-metal material with a certain strength, such as mica or ceramic.
[0116] In the embodiment of the present application, the first support member 14 can form at least a portion of the first passage 131 by various methods. For example, the structure of the first support member 14 may be configured so that the first support member 14 itself forms at least a portion of the first passage 131. Alternatively, the first support member 14 may form the first passage 131, through which the effluent passes, between itself and the cavity wall of the electrical cavity 11a. Alternatively, if there are multiple first support members 14, the first passage 131, through which the effluent passes, may be formed between the multiple first support members 14.
[0117] 5 and 6 are schematic cross-sectional views of several possible battery cells 20 according to an embodiment of the present application. For example, FIGS. 5 and 6 are schematic cross-sectional views of several possible battery cells 20 shown in FIG. 2. Specifically, in FIG. 2, the battery 10 includes a plurality of battery cells 20 arranged along the second direction Y. For example, FIG. 2 illustrates an example in which the battery 10 includes four battery cells 20, while FIGS. 5 and 6 illustrate an example in which the battery 10 includes only two battery cells 20 arranged along the second direction Y. Furthermore, the cross section shown in FIG. 3 is perpendicular to the second direction Y. The cross sections shown in FIGS. 5 and 6 are perpendicular to the first direction X, and the first direction X is perpendicular to the second direction Y. For example, the first direction X may be the direction in which each first support member 14 extends or the axial direction of each first support member 14, although the present embodiment is not limited thereto.
[0118] 5, the first support member 14 is disposed in a region of the first wall 21a other than the first pressure reducing mechanism 213, thereby forming at least a portion of a first passage 131 outside the first support member 14. The first support member 14 is disposed in a region of the first wall 21a other than the first pressure reducing mechanism 213, and the waste material that passes through the first pressure reducing mechanism 213 and is discharged is outside the first support member 14, thereby forming at least a portion of the first passage 131 outside the first support member 14. For example, at least a portion of the first passage 131 may be formed between multiple first support members 14 or between the first support member 14 and the wall of the electrical cavity 11a, thereby discharging the waste material in a directional manner.
[0119] According to the technical solution of the embodiment of the present application, the first support member 14 is installed in an area of the first wall 21a other than the first pressure reducing mechanism 213, thereby preventing the first support member 14 from affecting the first pressure reducing mechanism 213. For example, the first support member 14 is prevented from blocking the discharged matter from inside the battery cell 20 that is discharged through the first pressure reducing mechanism 213, and the discharged matter is immediately discharged. Therefore, the first support member 14 installed according to the embodiment of the present application improves the compressive strength of the first wall 21a and the third wall 1101, without affecting the safety performance of the battery cell 20.
[0120] 5, the first support member 14 may abut against a region of the first wall 21a other than the first pressure reducing mechanism 213. Specifically, the first support member 14 may be in direct or indirect contact with the region of the first wall 21a other than the first pressure reducing mechanism 213, thereby ensuring that the first support member 14 provides good support to the first wall 21a. For example, in the height direction Z of the housing 11, the first support member 14 may be disposed below the first wall 21a, thereby supporting the first wall 21a and the battery cells 20.
[0121] Optionally, the battery 10 includes a plurality of first support members 14 spaced apart, with at least a portion of the first passage 131 being formed between the plurality of first support members 14. Since the battery 10 generally includes a plurality of battery cells 20, a plurality of first support members 14 can be installed spaced apart between the first walls 21a and the third walls 1101 of the plurality of battery cells 20. This allows at least a portion of the first passage 131 to be formed between the plurality of first support members 14, and after being discharged through the first pressure reducing mechanism 213, the discharged matter can be discharged between the plurality of first support members 14, thereby achieving directional discharge.
[0122] Alternatively, as shown in FIG. 5 , one or more first support members 14 may be installed corresponding to each battery cell 20 based on the size and position of the battery cell 20. For a plurality of battery cells 20 arranged along the second direction Y, the same first support member 14 may be installed between two adjacent battery cells 20. The extension direction of the first support member 14 is the first direction X, and two rows of battery cells 20 extending along the first direction X can share the same first support member 14. Installing the first support members 14 corresponding to two rows of adjacent battery cells 20 in this way allows for the use of a smaller number of first support members 14. Therefore, the weight of the battery 10 can be reduced while providing easy installation and good support.
[0123] Optionally, as one embodiment, as shown in Fig. 6, first openings 141 are provided on the first support member 14, and the first openings 141 are provided corresponding to the first pressure reducing mechanism 213. As a result, the waste that has passed through the first pressure reducing mechanism 213 is discharged through the first openings 141. In this way, the waste from the battery cells 20 is discharged after passing through the first pressure reducing mechanism 213 and enters the first openings 141. In this way, by rationally setting the position of the first openings 141, directional discharge of the waste can be achieved.
[0124] For example, if the first support member 14 is a solid structure, the first aperture 141 may be a through-hole that penetrates the first support member 14. As a result, the first support member 14 itself forms at least a portion of the first passage 131.
[0125] Alternatively, the first support member 14 may have a hollow structure, and the first pressure reducing mechanism 213 may communicate with the interior of the first support member 14 via the first opening 141, thereby forming at least a portion of the first passage 131 within the first support member 14. Specifically, the first support member 14 may have a hollow structure. For example, the first support member 14 may have a tubular structure, and the first opening 141 may be a through-hole penetrating the tubular wall of the first support member 14. The first opening 141 is disposed opposite the first pressure reducing mechanism 213 and does not interfere with the operation of the first pressure reducing mechanism 213. This allows the first support member 14 to perform its support function and also easily receive waste from the battery cells 20 that has passed through the first opening 141 of the first support member 14, so that the waste can pass through the first opening 141 and be collected within the first support member 14. This allows for directional discharge of the effluent and prevents the effluent from affecting components within the electrical cavity 11a.
[0126] Furthermore, the cross-sectional area of the first opening 141 is equal to or greater than the area of the first pressure reduction mechanism 213, thereby further improving the good conduction effect of the first opening 141 on the exhaust material and preventing the first opening 141 from preventing the exhaust material discharged from the first pressure reduction mechanism 213 from entering the first passage 131.
[0127] 6, identical strip-shaped first support members 14 may be installed corresponding to a plurality of battery cells 20 arranged along the first direction X. Each strip-shaped first support member 14 is installed below the first pressure reducing mechanism 213 of each row of battery cells 20, and effective support can be achieved using a small number of first support members 14 that are easy to install.
[0128] 2 to 6, in each of the above-described embodiments of the present application, the first support member 14 abuts against the first wall 21a and / or the third wall 1101. This allows the first support member 14 to provide support to the first wall 21a and / or the third wall 1101. This improves the overall compressive strength of the first wall 21a and / or the third wall 1101. In particular, when the first support member 14 abuts against the first wall 21a and the third wall 1101 simultaneously, the overall compressive strength of the first wall 21a and the third wall 1101 is improved simultaneously, and the impact of external pressure on components such as the battery cell 20 in the electrical cavity 11a can be prevented.
[0129] Optionally, the connecting surface 143 of the first support member 14 abuts against the first wall 21 a and / or the third wall 1101, and the second opening 142 is provided in the non-connecting surface 144 of the first support member 14, thereby forming at least a portion of the first passage 131 outside the first support member 14. Specifically, the connecting surface 143 of the first support member 14 is the surface that contacts the first wall 21 a and / or the third wall 1101, and conversely, the non-connecting surface 144 of the first support member 14 is the surface of the first support member 14 that does not contact the first wall 21 a and does not contact the third wall 1101. The second opening 142 may be provided in the non-connecting surface 144 of the first support member 14, thereby forming at least a portion of the first passage 131 within the first support member 14 and increasing the discharge path for waste passing through the battery cell 20.
[0130] Specifically, whether at least a portion of the first passage 131 is formed outside the first support member 14 or at least a portion of the first passage 131 is formed inside the first support member 14, the non-connecting surface 144 of the first support member 14 can be used to form at least a portion of the wall of the first passage 131. By providing the second openings 142 in the non-connecting surface 144, gas in the discharged material within the first passage 131 can be discharged, and the area of the non-connecting surface 144 where the second openings 142 are not provided can be used to block solids in the discharged material.
[0131] For example, the second openings 142 of the first support member 14 can be used to allow gas and / or liquid in the effluent to pass through. Other areas of the first support member 14 can be used to block solids in the effluent. As described above, effluent from the battery cell 20 includes, but is not limited to, electrolyte, dissolved or split positive and negative electrode sheets, separator fragments, high-temperature and high-pressure gas generated by reactions, sparks, etc., all of which are high-temperature substances. If solid substances such as high-temperature positive and negative electrode sheets, high-temperature separator fragments, and sparks are directly discharged outside the housing 11 through the discharge valve, this poses a serious safety risk. According to the technical solution of the embodiment of the present application, the second openings 142 can allow high-temperature gas and / or high-temperature liquid in the effluent to pass through, and other areas of the first support member 14 can block high-temperature solids in the effluent. The second openings 142 of the first support member 14 can also filter high-temperature solids in the effluent. The high-temperature solids are blocked inside the first passage 131, preventing the high-temperature solids in the discharged material from being discharged and causing a safety risk, thereby improving the safety of the battery 10 and the power consumption device in which it is located.
[0132] Optionally, the size of the first opening 141 and / or the size of the second opening 142 in the embodiments of the present application can be flexibly set according to actual applications. For example, the sizes of the first opening 141 and the second opening 142 may be different or the same. For example, the size of the first opening 141 is larger than the size of the second opening 142, so that the larger first opening 141 can smoothly pass the effluent discharged from the first pressure reducing mechanism 213 without obstructing the discharge of the effluent. The smaller second opening 142 can perform a filtering function, i.e., the second opening 142 can pass high-temperature gas and / or high-temperature liquid in the effluent. The first support member 14 blocks high-temperature solids in the effluent, preventing safety risks caused by the high-temperature solids in the effluent being discharged outside the housing 11, thereby improving the safety of the battery and the power consuming device in which it is located.
[0133] Optionally, the shape of the first aperture 141 and / or the shape of the second aperture 142 in the embodiments of the present application can be flexibly set according to actual applications. For example, the shapes of the first aperture 141 and the second aperture 142 can be the same or different. For example, the shape of the first aperture 141 can be maintained to match the shape of the first pressure reducing mechanism 213, thereby allowing the effluent to pass smoothly and immediately, and the shape of the second aperture 142 can be generally set to be rectangular or circular for ease of processing.
[0134] Optionally, the number of first apertures 141 and / or the number of second apertures 142 in the embodiments of the present application can be flexibly set according to actual applications. For example, the numbers of first apertures 141 and second apertures 142 can be the same or different. For example, the number of first apertures 141 can be maintained to match the corresponding first pressure reducing mechanisms 213, thereby ensuring a one-to-one correspondence between the first apertures 141 and the first pressure reducing mechanisms 213, and the number of second apertures 142 can be flexibly set according to actual applications.
[0135] The above description explains that at least a portion of the first passage 131 is formed via the first support member 14. However, at least a portion of the first passage 131 may be formed in other ways, and different ways may be applied independently or in combination with each other, and the embodiments of the present application are not limited thereto.
[0136] For example, a gap may be provided between the first wall 21a and the third wall 1101, and the gap may be used to form at least a portion of the first passage 131, thereby reducing the requirement for sealing of the electrical cavity 11a, particularly between the first wall 21a and the third wall 1101. This reduces the difficulty of processing the battery 10 and improves the processing efficiency of the battery 10.
[0137] 2 to 6, the first passage 131 in the embodiment of the present application can discharge the effluent that has passed through the first pressure reducing mechanism 213 into the electrical cavity 11a. Furthermore, a second pressure reducing mechanism 1103 may be installed on the wall of the electrical cavity 11a of the battery 10. The second pressure reducing mechanism 1103 is used to discharge the effluent that has passed through the first passage 131 from the electrical cavity 11a, and may be discharged from, for example, the housing 11. This prevents the effluent from accumulating in the electrical cavity 11a and causing thermal diffusion, thereby improving the safety of the battery 10.
[0138] For example, as shown in FIGS. 2 to 6 , the second pressure reducing mechanism 1103 is installed in the third wall 1101 and / or the fourth wall 1102. The second pressure reducing mechanism 1103 is used to discharge the effluent that has passed through the first passage 131 from the electrical cavity 11a. The fourth wall 1102 is a wall that intersects with the third wall 1101 of the electrical cavity 11a. The first passage 131 is located between the first wall 21a and the third wall 1101. When the second pressure reducing mechanism 1103 is installed in the third wall 1101, the effluent in the first passage 131 can be immediately discharged from the electrical cavity 11a, which prevents thermal diffusion due to the effluent accumulating in the electrical cavity 11a and improves the safety of the battery 10.
[0139] 5, for the first support members 14 disposed between the first wall 21a and the third wall 1101, the central axis of each first support member 14 may extend along any direction, for example, along the first direction X. This forms at least a portion of a first passage 131 between the plurality of first support members 14 or inside the first support members 14. The first passage 131 corresponding to the first pressure reducing mechanism 213 is similar to the first support member 14 and may also extend along a certain direction, for example, along the first direction X. In this case, the end of the first passage 131 faces the fourth wall 1102 of the electrical cavity 11a, and the fourth wall 1102 intersects with the third wall. Therefore, when the second pressure reducing mechanism 1103 is installed on the fourth wall 1102, the second pressure reducing mechanism 1103 is close to the end of the first passage 131, which also achieves the purpose of quickly discharging the effluent, avoiding thermal diffusion caused by the effluent accumulating in the electrical cavity 11a, and improving the safety of the battery 10.
[0140] Alternatively, the second pressure reducing mechanism 1103 in the embodiments of the present application can be realized in various ways. For example, when the second pressure reducing mechanism 1103 is installed on the fourth wall 1102, the second pressure reducing mechanism 1103 can be a part of the fourth wall 1102, or can be a separate structure from the fourth wall 1102 and fixed to the fourth wall 1102 by, for example, welding. When the second pressure reducing mechanism 1103 is a part of the fourth wall 1102, i.e., the second pressure reducing mechanism 1103 can be integrally formed with the fourth wall 1102, the second pressure reducing mechanism 1103 can be formed by providing a shallow groove or recess in the fourth wall 1102. The shallow groove makes the thickness of the region of the fourth wall 1102 where the second pressure reducing mechanism 1103 is located thinner than the thickness of the other regions of the fourth wall 1102 other than the second pressure reducing mechanism 1103. If too much effluent collects in the first passage 131, causing the internal pressure of the electrical cavity 11a to rise and reach a threshold, or if the temperature of the effluent inside the first passage 131 rises and reaches a threshold, the fourth wall 1102 ruptures at the shallow groove, connecting the electrical cavity 11a to the outside. The gas pressure and temperature are released to the outside by the rupture of the second pressure reducing mechanism 1103, preventing the battery 10 from exploding.
[0141] Alternatively, the second pressure reducing mechanism 1103 of the embodiment of the present application may have various possible pressure reducing structures, and the embodiment of the present application is not limited thereto. For example, the second pressure reducing mechanism 1103 may be a temperature-sensitive pressure reducing mechanism configured to melt when the internal temperature of the electrical cavity 11a in which the second pressure reducing mechanism 1103 is installed reaches a threshold. And / or, the second pressure reducing mechanism 1103 may be a pressure-sensitive pressure reducing mechanism configured to burst when the internal air pressure of the electrical cavity 11a in which the second pressure reducing mechanism 1103 is installed reaches a threshold.
[0142] In some embodiments, the battery 10 may further include a second passage 132. Specifically, the exhaust passage 13 includes the second passage 132, which is used to exhaust the exhaust from the first pressure reducing mechanism 213 out of the electrical cavity 11a. The exhaust from the battery cells 20 that has passed through the first pressure reducing mechanism 213 passes through the second passage 132 and is exhausted from the electrical cavity 11a. This exhaust does not affect the battery cells 20 in the electrical cavity 11a, effectively preventing heat diffusion and short-circuiting of the battery cells 20 due to the exhaust, thereby improving the safety of the battery 10. Furthermore, the second passage 132 allows the exhaust from the battery cells 20 to be collected in a concentrated manner, preventing the exhaust from affecting other components.
[0143] In some embodiments, the battery 10 may include not only the first passage 131 but also the second passage 132. When thermal runaway or other abnormal conditions occur in the battery cell 20, high-temperature and high-pressure effluent generated inside the battery cell 20 is discharged toward the first pressure reducing mechanism 213 installed in the battery cell 20. Because the force and destructive power of such effluent is great, the effluent that passes through the first pressure reducing mechanism 213 and is discharged jointly can be divided into two passages. This not only accelerates the discharge speed and reduces the risk of explosion of the battery 10, but also achieves directional and dispersed discharge, prevents the effluent from affecting other components, and improves the safety and stability of the battery 10.
[0144] The installation method of the second passage 132 in the embodiment of the present application will be described below.
[0145] Fig. 7 is a schematic exploded view of a battery 10 according to another embodiment of the present application, and Fig. 8 is a schematic cross-sectional view of the battery 10 according to another embodiment of the present application. For example, the battery 10 shown in Fig. 8 may be the battery 10 shown in Fig. 7. The cross section shown in Fig. 8 may be a cross section perpendicular to the second direction Y of the battery 10 shown in Fig. 7. Fig. 9 is a schematic partial cross-sectional view of the battery 10 according to another embodiment of the present application. For example, Fig. 9 may be an enlarged view of area A shown in Fig. 8.
[0146] Optionally, as shown in Figures 7 to 9, the housing 11 further includes a collection cavity 11b. The collection cavity 11b is used to collect exhaust from the battery cells 20 through the second passage 132 when the first pressure reducing mechanism 213 is activated. The collection cavity 11b collects and / or processes the exhaust that is discharged through the first pressure reducing mechanism 213 when the first pressure reducing mechanism 213 is activated. For example, the collection cavity 11b can collect the exhaust that is discharged through the second passage 132 when the first pressure reducing mechanism 213 is activated, reduce the temperature of the exhaust, and then discharge the exhaust to the outside of the battery 10.
[0147] The collection cavity 11b in the embodiment of the present application is used to collect the waste from the battery cells 20, and may be sealed or unsealed. Specifically, the collection cavity 11b may contain air or other gas. Alternatively, the collection cavity 11b may contain a liquid such as a cooling medium, or a member for containing the liquid may be installed to further reduce the temperature of the waste entering the collection cavity 11b. Optionally, the gas or liquid in the collection cavity 11b may be circulating and flowing.
[0148] It should be noted that the electrical cavity 11a in the present embodiment may be sealed or unsealed, and similarly, the collection cavity 11b in the present embodiment may be sealed or unsealed, and the present embodiment is not limited in this respect.
[0149] The housing 11 of the embodiments of the present application can be realized in various ways, and the embodiments of the present application are not limited thereto. Alternatively, referring to FIGS. 7 to 9 as examples, the housing 11 may include a first cover having an opening for the electrical cavity 11a, and the first cover is covered by a third wall 1101 to form the electrical cavity 11a. Therefore, the walls forming the electrical cavity 11a include the first cover and the third wall 1101. Specifically, the walls forming the electrical cavity 11a include the first cover and a first sub-wall 1101a of the third wall 1101 facing the battery cell 20. The first cover can also be realized in various ways. For example, the first cover may be a hollow, one-piece structure with an open end. Alternatively, the first cover may include a first portion 111 and a second portion having openings on opposite sides, and the second portion includes a plurality of fourth walls 1102. That is, the second portion may be formed surrounded by a plurality of fourth walls 1102. The first portion 111 covers an opening on one side of the second portion 112, thereby forming a first cover that is open at one end.
[0150] The corresponding collection cavity 11b may be realized by a third wall 1101. Specifically, as shown in FIGS. 7 to 9, the electrical cavity 11a includes a third wall 1101 facing the first wall 21a, and the third wall 1101 has a hollow structure. As a result, at least a portion of the collection cavity 11b is formed inside the third wall 1101. At least a portion of the collection cavity 11b is formed inside the third wall 1101. Because the third wall 1101 has an integrated structure, the structure of the housing 11 can be simplified, installation is easy, and processing efficiency of the battery 10 can be improved.
[0151] In this embodiment, a first pressure reduction region 1101b is provided in a first sub-wall 1101a of the third wall 1101 facing the first wall 21a. The first pressure reduction region 1101b is provided opposite the first pressure reduction mechanism 213, and is used to form at least a portion of the second passage 132. The third wall 1101 has a hollow structure, and may be formed, for example, by being surrounded by a plurality of sub-walls. The wall of the third wall 1101 facing the first wall 21a is the first sub-wall 1101a, and the first pressure reduction mechanism 213 is provided in the first wall 21a. The first pressure reduction region 1101b is provided in the first sub-wall 1101a so as not to interfere with the operation of the first pressure reduction mechanism 213. The first pressure reduction region 1101b is used to allow the effluent that has passed through the first pressure reduction mechanism 213 to be discharged into the third wall 1101, i.e., into the collection cavity 11b, during operation of the first pressure reduction mechanism 213. This prevents the effluent from damaging other battery cells 20 in the electrical cavity 11a, avoids heat diffusion, and improves the safety of the battery 10.
[0152] In the embodiments of the present application, the first pressure reduction region 1101b can be realized in various ways. For example, as shown in FIGS. 7 to 9, the first pressure reduction region 1101b is a first through-hole penetrating the first sub-wall 1101a in the thickness direction, and the second passage 132 includes the first through-hole. Forming the first pressure reduction region 1101b as the first through-hole facilitates processing. Furthermore, the first through-hole can provide a deformation space for the operation of the first pressure reduction mechanism 213. During operation of the first pressure reduction mechanism 213, the effluent can be quickly discharged to the collection cavity 11b inside the third wall 1101, improving the discharge efficiency of the effluent and the safety of the battery 10.
[0153] Furthermore, for example, the first pressure reduction region 1101b is a first weakened region on the first sub-wall 1101a, which is broken when the first pressure reduction mechanism 213 is activated to form at least a portion of the second passage 132. When the first pressure reduction region 1101b is configured as the first weakened region, the first weakened region can be broken when the first pressure reduction mechanism 213 is activated, allowing the discharged liquid to pass through the first weakened region and enter the collection cavity 11b inside the third wall 1101. In this way, when the first pressure reduction mechanism 213 is not activated, for example, during normal use of the battery 10, the first weakened region can keep the third wall 1101 relatively sealed, effectively protecting the first pressure reduction mechanism 213 from being broken and ineffective by external forces. Furthermore, when the first pressure reducing mechanism 213 is activated, the strength of the first weakened area is lower than the strength of other areas of the first sub-wall 1101a other than the first pressure reducing area 1101b, so the first weakened area is easily broken, and the discharged matter from the battery cell 20 equipped with the first pressure reducing mechanism 213 passes through the first weakened area and is discharged from the electrical cavity 11a. For example, the discharged matter can pass through the first weakened area and enter the collection cavity 11b inside the third wall 1101.
[0154] Alternatively, the first weakened area of the first sub-wall 1101a can be realized in various ways. For example, the first sub-wall 1101a can have a groove formed therein facing the first pressure reducing mechanism 213. The groove is recessed away from the first pressure reducing mechanism 213, thereby providing a deformation space for the first pressure reducing mechanism 213, and the bottom wall of the groove can form the first weakened area.
[0155] Alternatively, the first weakened region 1101b may be formed in the first sub-wall 1101a by other methods, such as by providing a shallow groove in the first sub-wall 1101a, and the present application is not limited thereto.
[0156] In this embodiment, a third pressure reducing mechanism 1104 is installed in the second sub-wall 1101c of the third wall 1101. The third pressure reducing mechanism 1104 is used to discharge the discharged matter that has passed through the second passage 132 into the collection cavity 11b, and the second sub-wall 1101c is different from the first sub-wall 1101a. As shown in FIGS. 7 to 9, the third wall 1101 may include a second sub-wall 1101c that is different from the first sub-wall 1101a. For example, the second sub-wall 1101c may be a wall that intersects with or faces the first sub-wall 1101a. The third pressure reducing mechanism 1104 is installed in the second sub-wall 1101c. When the internal pressure or temperature of the collection cavity 11b inside the third wall 1101 reaches a threshold, the third pressure reducing mechanism 1104 is activated to release the internal pressure or temperature of the collection cavity 11b and immediately discharge the waste material in the collection cavity 11b from the housing 11. Furthermore, because the second sub-wall 1101c is different from the first sub-wall 1101a, the waste material will not pass through the third pressure reducing mechanism 1104 and re-enter the electrical cavity 11a. This avoids any impact on the components in the electrical cavity 11a and improves the safety of the battery 10.
[0157] Alternatively, the third pressure reducing mechanism 1104 of the present embodiment can be realized in various ways. For example, the third pressure reducing mechanism 1104 can be a part of the second sub-wall 1101c, or a separate structure fixed to the second sub-wall 1101c by, for example, welding. When the third pressure reducing mechanism 1104 is a part of the second sub-wall 1101c, i.e., the third pressure reducing mechanism 1104 can be integrally formed with the second sub-wall 1101c, the third pressure reducing mechanism 1104 can be formed by providing a shallow groove or recess in the second sub-wall 1101c. The shallow groove makes the thickness of the region of the second sub-wall 1101c where the third pressure reducing mechanism 1104 is located smaller than the thickness of the other regions of the second sub-wall 1101c other than the third pressure reducing mechanism 1104. When too much effluent is collected in the collection cavity 11b and the internal pressure rises to a threshold, or when the temperature of the effluent inside the collection cavity 11b rises to a threshold, the second minor wall 1101c bursts at the shallow groove, connecting the collection cavity 11b to the outside, allowing the gas pressure and temperature to escape by rupturing the third pressure reducing mechanism 1104, preventing the battery 10 from exploding.
[0158] Alternatively, the third pressure reducing mechanism 1104 of the embodiment of the present application may have various possible pressure reducing structures, and the embodiment of the present application is not limited thereto. For example, the third pressure reducing mechanism 1104 may be a temperature-sensitive pressure reducing mechanism configured to melt when the internal temperature of the collection cavity 11b in which the third pressure reducing mechanism 1104 is installed reaches a threshold. And / or the third pressure reducing mechanism 1104 may be a pressure-sensitive pressure reducing mechanism configured to burst when the internal air pressure of the collection cavity 11b in which the third pressure reducing mechanism 1104 is installed reaches a threshold.
[0159] In addition, the collection cavity 11b may be configured in other ways to further improve the discharge efficiency of the waste. For example, the collection cavity 11b may be enlarged to improve the discharge efficiency. Specifically, FIG. 10 is another cross-sectional schematic view of a battery 10 according to an embodiment of the present application, and the cross section shown in FIG. 10 is perpendicular to the second direction Y. For example, the cross section shown in FIG. 10 may coincide with the cross sections shown in FIGS. 8 and 9.
[0160] As shown in FIG. 10 , the electrical cavity 11a includes a fourth wall 1102 intersecting with a third wall 1101. The fourth wall 1102 is hollow and communicates with the interior of the third wall 1101, thereby forming at least a portion of the collection cavity 11b within the third wall 1101 and the fourth wall 1102. Comparing FIG. 10 with FIGS. 7 to 9 , the interior of the third wall 1101 in FIGS. 7 to 9 is used to form the collection cavity 11b, and the third wall 1101 intersects with the fourth wall 1102 but does not communicate with the interior. In contrast, the interior of the fourth wall 1102 in FIG. 10 is hollow and communicates with the interior of the third wall 1101, thereby expanding the area of the collection cavity 11b compared to the embodiment in FIGS. 7 to 9 . The area of the second passage 132 is also extended, allowing the collection cavity 11b to accommodate more discharged material. Therefore, it is also advantageous to lower the temperature of the internal exhaust, improve the exhaust efficiency, and improve the safety of the battery 10.
[0161] 10 , a fourth pressure reducing mechanism 1105 is installed on the third sub-wall 1102a of the fourth wall 1102, which is away from the electrical cavity 11a. The fourth pressure reducing mechanism 1105 is used to discharge the effluent that has passed through the second passage 132 from the collection cavity 11b. A third pressure reducing mechanism 1104 may be installed on the second sub-wall 1101c to immediately discharge the effluent in the collection cavity 11b. Alternatively, a fourth pressure reducing mechanism 1105 may be installed on the third sub-wall 1102a, which is the wall of the fourth wall 1102 away from the electrical cavity 11a. In this way, when the internal pressure or temperature of the collection cavity 11b reaches a threshold, the fourth pressure reducing mechanism 1105 is activated to release the internal pressure or temperature of the collection cavity 11b and immediately discharge the effluent in the collection cavity 11b from the housing 11. Furthermore, since the third sub-wall 1102a is separated from the electrical cavity 11a, the discharged matter will not pass through the fourth pressure reducing mechanism 1105 and re-enter the electrical cavity 11a, thereby avoiding any impact on the components within the electrical cavity 11a and improving the safety of the battery 10.
[0162] Optionally, the fourth pressure reducing mechanism 1105 of the present embodiment can be realized in various ways. For example, similar to the installation method of the third pressure reducing mechanism 1104 of the second sub-wall 1101c, the fourth pressure reducing mechanism 1105 can be a part of the third sub-wall 1102a, or can be a separate structure from the third sub-wall 1102a and fixed to the third sub-wall 1102a by, for example, welding. For the sake of brevity, the description will be omitted here.
[0163] Alternatively, the fourth pressure reducing mechanism 1105 of the embodiment of the present application may have various possible pressure reducing structures, and the embodiment of the present application is not limited thereto. For example, the fourth pressure reducing mechanism 1105 may be a temperature-sensitive pressure reducing mechanism configured to melt when the internal temperature of the collection cavity 11b in which the fourth pressure reducing mechanism 1105 is installed reaches a threshold. And / or the fourth pressure reducing mechanism 1105 may be a pressure-sensitive pressure reducing mechanism configured to burst when the internal air pressure of the collection cavity 11b in which the fourth pressure reducing mechanism 1105 is installed reaches a threshold.
[0164] Optionally, the collection cavity 11b in the embodiment of the present application may be formed in other ways. Fig. 11 is an exploded structural schematic view of a battery 10 according to yet another embodiment of the present application, and Fig. 12 is a cross-sectional schematic view of the battery 10 according to yet another embodiment of the present application. For example, the battery 10 shown in Fig. 12 may be the battery 10 shown in Fig. 11, and the cross section shown in Fig. 12 is perpendicular to the second direction Y. Fig. 13 is a partial cross-sectional schematic view of the battery 10 according to yet another embodiment of the present application. For example, Fig. 13 is an enlarged view of region B in Fig. 12.
[0165] As shown in FIGS. 11 to 13, the battery 10 according to the present embodiment further includes an isolation member 15 attached to the first wall 21a. The isolation member 15 is used to isolate the electrical cavity 11a and the collection cavity 11b. The term "isolation" used here refers to separation, and does not necessarily mean sealing. Specifically, the electrical cavity 11a and the collection cavity 11b are isolated by the isolation member 15. That is, the electrical cavity 11a for accommodating the battery cells 20 and the thermal management member 12 and the collection cavity 11b for collecting waste are spatially separated from each other to prevent mutual influence between them.
[0166] In the embodiment of the present application, the isolation member 15 includes a common wall for the electrical cavity 11a and the collecting cavity 11b. As shown in Figures 11 to 13, at least a part of the isolation member 15 can be used as a common wall for the electrical cavity 11a and the collecting cavity 11b, thereby minimizing the distance between the electrical cavity 11a and the collecting cavity 11b, saving space and improving the space utilization rate of the housing 11.
[0167] Optionally, the isolating member 15 of the embodiment of the present application may also be a thermal management member used to adjust the temperature of the battery cells 20. Specifically, the isolating member 15 may be used to accommodate a fluid or a solid-liquid phase change material for adjusting the temperature of the battery cells 20. When lowering the temperature of the battery cells 20, the isolating member 15 may accommodate a cooling medium for adjusting the temperature of the battery cells 20, in which case the isolating member 15 may be referred to as a cooling member, a cooling system, a cooling plate, or the like.
[0168] Note that isolating the electrical cavity 11a and the collecting cavity 11b via the isolation member 15 in the embodiments of the present application can be achieved in various ways. For example, as shown in FIGS. 11 to 13, the housing 11 may include a first cover having an opening for the electrical cavity 11a, and the isolation member 15 covers the opening of the first cover to form the electrical cavity 11a. Thus, the wall forming the electrical cavity 11a includes the first cover and the isolation member 15. The first cover can be realized in various ways. For example, the first cover may be a hollow, one-piece structure with an open end, or the first cover may include a first portion 111 and a second portion 112 with openings on opposite sides. The first portion 111 covers the opening on one side of the second portion 112, thereby forming the first cover with an open end, and the isolation member 15 covers the opening on the other side of the second portion 112, thereby forming the electrical cavity 11a.
[0169] 11 to 13, for the corresponding collecting cavity 11b, the housing 11 further includes a protective member 113, which is used to form the collecting cavity 11b together with the isolation member 15. Furthermore, the protective member 113 is further used to protect the isolation member 15. That is, the wall of the collecting cavity 11b includes the protective member 113 and the isolation member 15.
[0170] 11 to 13, the housing 11 may include a sealed second cover. The second cover can be used to form the electrical cavity 11a. Alternatively, an isolating member 15 can be installed inside the second cover to isolate the interior of the second cover to become the electrical cavity 11a and also to isolate the interior of the second cover to become the collection cavity 11b. The second cover can also be realized in various ways. For example, the second cover may include a third portion and a fourth portion. One side of the fourth portion has an opening to form a semi-sealed structure, and the isolating member 15 is installed inside the fourth portion, and the third portion covers the opening of the fourth portion to form the sealed second cover.
[0171] In this embodiment, the isolation member 15 is provided with a second decompression region 151, which is used to form at least a portion of the second passage 132. When the first decompression mechanism 213 of the battery cell 20 is activated, the effluent discharged through the first decompression mechanism 213 can pass through the second decompression region 151 and enter the collection cavity 11b, thereby preventing the effluent from damaging other battery cells 20 in the electrical cavity 11a and avoiding heat diffusion, thereby improving the safety of the battery 10.
[0172] Alternatively, in the embodiments of the present application, the second pressure reduction region 151 can be realized in various ways. For example, as shown in Figures 11 to 13, the second pressure reduction region 151 is a second through-hole that penetrates the isolation member 15 in the thickness direction, and the second passage 132 includes the second through-hole. By configuring the second pressure reduction region 151 as a second through-hole, processing is simplified, and the second through-hole can provide a deformation space for the operation of the first pressure reduction mechanism 213. Furthermore, when the first pressure reduction mechanism 213 is operated, the effluent is quickly discharged to the collection cavity 11b through the second through-hole, improving the discharge efficiency of the effluent and the safety of the battery 10.
[0173] Furthermore, for example, the second pressure reduction region 151 may be a second weakened region that is broken when the first pressure reduction mechanism 213 is activated to form at least a portion of the second passage 132. When the second pressure reduction region 151 is configured as a second weakened region, the second weakened region can be broken when the first pressure reduction mechanism 213 is activated, allowing discharged matter to pass through the second weakened region and enter the collection cavity 11b. Therefore, when the first pressure reduction mechanism 213 is not activated, for example, during normal use of the battery 10, the second weakened region can relatively seal the collection cavity 11b, effectively protecting the first pressure reduction mechanism 213 from being broken and ineffective by external forces. Furthermore, when the first pressure reduction mechanism 213 is activated, the strength of the second weakened region is lower than the strength of other regions of the separator 15 other than the second pressure reduction region 151, making the second weakened region more susceptible to breakage. Therefore, the discharge from the battery cell 20 having the first pressure reducing mechanism 213 can pass through the second weakened area and be discharged from the electrical cavity 11a, for example, pass through the second weakened area and enter the collection cavity 11b.
[0174] Alternatively, the second weakened area of the isolation member 15 can be realized in various ways. For example, the isolation member 15 may have a groove facing the first pressure reducing mechanism 213, the groove being recessed in a direction away from the first pressure reducing mechanism 213. This provides a deformation space for the first pressure reducing mechanism 213, and the bottom wall of the groove can form the second weakened area.
[0175] Alternatively, the second weakened region 151 may be formed in the isolation member 15 by another method, such as by providing a shallow groove in the isolation member 15, and the present application is not limited thereto.
[0176] Optionally, a second support member 16 may be installed in the collection cavity 11b of the embodiment of the present application, referring to the above-described method for installing the first support member 14. Specifically, the battery 10 further includes a second support member 16 installed in the collection cavity 11b, and the second support member 16 is used to improve the compressive strength of the collection cavity 11b. The second support member 16 is installed in the collection cavity 11b. The collection cavity 11b may refer to the collection cavity 11b in the embodiment shown in FIGS. 7 to 10, for example, the collection cavity 11b formed by the hollow third wall 1101. Alternatively, the collection cavity 11b may refer to the collection cavity 11b in the embodiment shown in FIGS. 11 to 13, i.e., the collection cavity 11b isolated by the isolation member 15, but the embodiment of the present application is not limited thereto. For convenience of explanation, the following mainly takes the collecting cavity 11b in the embodiment shown in Figures 11 to 13 as an example, but the related explanations also apply to the collecting cavity 11b in the embodiment shown in Figures 7 to 10. For example, the first sub-wall 1101a of the third wall 1101 can correspond to the isolation member 15, and the explanation here will be omitted for simplicity.
[0177] A second support member 16 is installed in the collection cavity 11b. Compared to a collection cavity 11b with a hollow cavity structure, the second support member 16 provides support within the collection cavity 11b. Therefore, the collection cavity 11b with the second support member 16 installed has better compressive strength. In other words, when external pressure acts on the battery 10, the collection cavity 11b with the second support member 16 installed can block most or even all of the external pressure. This reduces or eliminates the effects of the external pressure on components such as the battery cells 20 and thermal management member 12 within the electrical cavity 11a, improving the pressure resistance and safety of the battery 10.
[0178] In some applications, the battery 10 can be mounted on the chassis of an electric vehicle and provide power for the vehicle. Specifically, the collection cavity 11b of the battery 10 faces the electric cavity 11a and faces the chassis of the electric vehicle. Therefore, problems such as shaking or being hit by stones may occur during the operation of the electric vehicle. The chassis of the electric vehicle, and even the battery 10 mounted on the chassis, may be subject to impacts or localized bottom collisions. The technical solution of the present embodiment allows the second support member 16 in the collection cavity 11b to provide excellent impact resistance and localized bottom collision resistance. This reduces or eliminates the impact of problems encountered during the operation of the electric vehicle on the battery 10, improves the pressure resistance and safety performance of the battery 10, and further improves the safety performance of the electric vehicle.
[0179] Furthermore, compared to the hollow collection cavity 11b, the second support member 16 can further be used to form at least a portion of the second passage 132, thereby extending the discharge path of the effluent within the collection cavity 11b, reducing the temperature of the effluent after it is discharged into the housing 11, and further improving the safety performance of the battery 10 and the power consuming device in which it is located.
[0180] Optionally, parameters such as the shape, number, dimensions, and material of the second support members 16 in the embodiments of the present application, as well as the installation method of the first support members 14, can all be flexibly set according to actual applications. For example, all descriptions related to the above parameters of the first support members 14 also apply to the second support members 16. For simplicity, individual descriptions will be omitted. For example, the embodiments of the present application will be mainly described using the strip-shaped second support members 16 shown in Figures 11 to 13 as examples.
[0181] In the embodiment of the present application, the second support member 16 can form at least a portion of the second passage 132 by various methods. For example, the second support member 16 may be configured so that it itself forms at least a portion of the second passage 132 by configuring the structure of the second support member 16. Alternatively, the second support member 16 may form the second passage 132, through which the waste material passes, between itself and the cavity wall of the collection cavity 11b. Alternatively, if there are multiple second support members 16, the second passage 132, through which the waste material passes, may be formed between the multiple second support members 16.
[0182] 14 and 15 are schematic cross-sectional views of several possible battery cells 10 according to an embodiment of the present application. For example, FIGS. 14 and 15 may be schematic cross-sectional views of several possible parts of the battery 10 shown in FIG. 11. Specifically, in FIG. 11, the battery 10 includes a plurality of battery cells arranged along the second direction Y. For example, FIG. 11 illustrates an example in which the battery 10 includes four battery cells 20, while FIGS. 14 and 15 illustrate an example in which the battery 10 includes only two battery cells 20 arranged along the second direction Y. Furthermore, the cross section shown in FIG. 12 is perpendicular to the second direction Y, while the cross sections shown in FIGS. 14 and 15 are perpendicular to the first direction X, and the first direction X is perpendicular to the second direction Y. For example, the first direction X may be the direction in which each second support member 16 extends. In other words, it may be the axial direction of each second support member 16, but the embodiment of the present application is not limited thereto.
[0183] 14, the second support members 16 are installed corresponding to regions other than the second reduced pressure region 151 of the isolation member 15, thereby forming at least some of the second passages 132 outside the second support members 16. The second support members 16 are installed corresponding to regions other than the second reduced pressure region 151 of the isolation member 15, and the effluent that passes through the first reduced pressure mechanism 213 and the second reduced pressure region 151 in sequence is discharged to the outside of the second support members 16. At least some of the second passages 132 are formed outside the second support members 16; for example, at least some of the second passages 132 may be formed between the multiple second support members 16 or between the second support members 16 and the walls of the collection cavity 11b, thereby discharging the effluent in a directional manner.
[0184] According to the technical solution of the embodiment of the present application, the second support member 16 is installed in a region of the isolation member 15 other than the second decompression region 151, thereby avoiding any impact of the second support member 16 on the first decompression mechanism 213 and the second decompression region 151. For example, the second support member 16 can be prevented from blocking the exhaust from the inside of the battery cell 20 that is discharged through the first decompression mechanism 213 and the second decompression region 151, so that the exhaust can be immediately discharged from the electrical cavity 11a and collected by the collection cavity 11b. Therefore, the second support member 16 installed according to the embodiment of the present application improves the compressive strength of the collection cavity 11b without affecting the safety performance of the battery cell 20.
[0185] 14, the second support member 16 may contact an area of the isolation member 15 other than the second decompression area 151. Specifically, the second support member 16 may directly or indirectly contact an area of the isolation member 15 other than the second decompression area 151, thereby ensuring that the second support member 16 provides good support to the collection cavity 11b. For example, in the height direction Z of the housing 11, the second support member 16 may be disposed below the isolation member 15, thereby supporting the isolation member 15 and the battery cells 20 located on the other side of the isolation member 15.
[0186] 14, the battery 10 may optionally include a plurality of second support members 16 spaced apart, with at least a portion of the second passage 132 being formed between the plurality of second support members 16. Since the battery 10 generally includes a plurality of battery cells 20, a plurality of second support members 16 may be spaced apart from one another in a region of the collection cavity 11b corresponding to the plurality of battery cells 20. This allows at least a portion of the second passage 132 to be formed between the plurality of second support members 16, and the discharged matter can be discharged between the plurality of second support members 16 after passing through the first pressure reducing mechanism 213 and the second pressure reducing region 151, thereby achieving directional discharge.
[0187] Alternatively, as shown in FIG. 14 , one or more second support members 16 may be installed corresponding to each battery cell 20 based on the size and position of the battery cell 20. For a plurality of battery cells 20 arranged along the second direction Y, the same second support member 16 may be installed between two adjacent battery cells 20. The extension direction of the second support member 16 is the first direction X. That is, two rows of battery cells 20 extending along the first direction X can share the same second support member 16. In this way, by installing the second support members 16 corresponding to two rows of adjacent battery cells 20, a smaller number of second support members 16 can be used. This allows for easy installation and a reduced weight of the battery 10 while providing good support.
[0188] 15 , in another embodiment, third openings 161 are provided in the second support member 16, and the third openings 161 are provided corresponding to the second decompression region 151. Thus, waste that has passed through the second decompression region 151 is discharged through the third openings 161. In this way, waste from the battery cells 20 passes through the first decompression mechanism 213 and the second decompression region 151 and is discharged, and then enters the third openings 161. By rationally setting the position of the third openings 161, directional discharge of the waste can be achieved.
[0189] For example, if the second support member 16 is a solid structure, the third aperture 161 may be a through-hole that penetrates the second support member 16. As a result, the second support member 16 itself forms at least a portion of the second passage 132.
[0190] 15 , the second support member 16 has a hollow structure, and the second reduced pressure region 151 communicates with the interior of the second support member 16 through the third opening 161, thereby forming at least a portion of the second passage 132 inside the second support member 16. Specifically, the second support member 16 has a hollow structure. For example, the second support member 16 may have a tubular structure, and the third opening 161 may be a through-hole that penetrates the tubular wall of the second support member 16. For example, the third opening 161 may penetrate the tubular wall of the second support member 16 close to the isolation member 15. The third opening 161 is disposed opposite the first reduced pressure mechanism 213 and also opposite the second reduced pressure region 151, and does not interfere with the operation of the first reduced pressure mechanism 213 or prevent discharge from passing through the second reduced pressure region 151. This allows the second support member 16 to perform its supporting function, and the third opening 161 of the second support member 16 also easily receives waste from the battery cells 20, which is discharged sequentially through the first pressure reduction mechanism 213 and the second pressure reduction region 151. Therefore, the waste can pass through the third opening 161 and then be collected inside the second support member 16, and the third opening 161 and the second support member 16 can be used as at least a part of the second passage 132, allowing the waste to be discharged in a directional manner and preventing the waste from affecting the components in the electrical cavity 11a.
[0191] The cross-sectional area of the third opening 161 is equal to or greater than the area of the second decompression region 151. This further improves the good conduction effect of the third opening 161 on the exhaust material, and prevents the third opening 161 from blocking the exhaust material discharged from the second decompression region 151 from entering the second passage 132.
[0192] 15, identical strip-shaped second support members 16 may be installed corresponding to the plurality of battery cells 20 arranged along the first direction X. Each strip-shaped second support member 16 is installed below the first pressure reduction mechanism 213 of each row of battery cells 20, and also below the plurality of second pressure reduction regions 151 arranged along the first direction X of the isolation member 15. Therefore, an effective support function can be achieved using a small number of second support members 16 that are easy to install.
[0193] 11 to 15, in each of the above-described embodiments of the present application, the second support member 16 abuts against the isolation member 15 and / or the protection member 113. As a result, the second support member 16 can provide support to the isolation member 15 and / or the protection member 113, improving the overall compressive strength of the isolation member 15 and / or the protection member 113. In particular, when the second support member 16 abuts against the isolation member 15 and / or the protection member 113 at the same time, the overall compressive strength of the isolation member 15 and / or the protection member 113 is improved at the same time, preventing the external pressure from affecting the collection cavity 11b and components such as the battery cell 20 in the electrical cavity 11a.
[0194] Optionally, the connecting surface 163 of the second support member 16 abuts against the isolation member 15 and / or the protective member 113, and a fourth opening 162 is provided in the non-connecting surface 164 of the second support member 16. This forms at least a portion of the second passage 132 outside the second support member 16. Specifically, the connecting surface 163 of the second support member 16 is the surface that contacts the isolation member 15 and / or the protective member 113, and conversely, the non-connecting surface 164 of the second support member 16 is the surface of the second support member 16 that does not contact the isolation member 15 or the protective member 113. The fourth opening 162 may be provided in the non-connecting surface 164 of the second support member 16. This forms at least a portion of the second passage 132 within the second support member 16, increasing the number of discharge paths for waste passing through the battery cells 20.
[0195] Specifically, whether at least a portion of the second passage 132 is formed outside the second support member 16 or at least a portion of the second passage 132 is formed inside the second support member 16, the non-connecting surface 164 of the second support member 16 can be used to form at least a portion of the wall of the second passage 132. By providing a fourth opening 162 in the non-connecting surface 164 of the second support member 16, gas in the discharged material within the second passage 132 can be discharged. The area of the non-connecting surface 164 of the second support member 16 where the fourth opening 162 is not provided can be used to block solids in the discharged material.
[0196] For example, the fourth opening 162 of the second support member 16 can be used to allow gas and / or liquid in the effluent to pass through, while other areas of the second support member 16 can be used to block solids in the effluent. The effluent from the battery cell 20 includes, but is not limited to, electrolyte, dissolved or split positive and negative electrode sheets, separator fragments, high-temperature and high-pressure gas generated by reactions, sparks, etc., all of which are high-temperature substances. If solid substances such as high-temperature positive and negative electrode sheets, high-temperature separator fragments, and sparks are directly discharged outside the housing 11 through the discharge valve, there is a serious safety risk. The technical solution of the embodiment of the present application allows the fourth opening 162 to allow high-temperature gas and / or high-temperature liquid in the effluent to pass through, while other areas of the second support member 16 can block high-temperature solids in the effluent. The fourth opening 162 of the second support member 16 can also filter high-temperature solids in the effluent. This blocks the high-temperature solids from entering the second passage 132, preventing the high-temperature solids in the discharged material from being discharged and causing a safety risk, thereby improving the safety of the battery 10 and the power consumption device in which it is located.
[0197] Optionally, the dimensions of the third opening 161 and / or the fourth opening 162 in the embodiments of the present application can be flexibly set according to actual applications. For example, the dimensions of the third opening 161 and the fourth opening 162 may be different or the same. For example, the third opening 161 may be larger than the fourth opening 162, so that the larger third opening 161 can smoothly pass the effluent discharged from the first pressure reducing mechanism 213 without impeding the discharge of the effluent, while the smaller fourth opening 162 can perform a filtering function. That is, the fourth opening 162 allows the passage of high-temperature gas and / or high-temperature liquid in the effluent, and the second support member 16 blocks high-temperature solids in the effluent. This prevents safety risks caused by high-temperature solids in the effluent being discharged outside the housing 11, improving the safety of the battery and the power consuming device in which it is located.
[0198] Optionally, the shape of the third aperture 161 and / or the fourth aperture 162 in the embodiments of the present application can be flexibly set according to actual applications. For example, the shapes of the third aperture 161 and the fourth aperture 162 can be the same or different. For example, the shape of the third aperture 161 can be maintained to match the shape of the second decompression region 151, thereby allowing the discharged material to pass through smoothly and immediately. The shape of the fourth aperture 162 is generally set to be rectangular or circular for ease of processing.
[0199] Alternatively, the number of the third apertures 161 and / or the number of the fourth apertures 162 in the embodiments of the present application may be flexibly set according to actual applications. For example, the number of the third apertures 161 and the number of the fourth apertures 162 may be the same or different. For example, the number of the third apertures 161 may be maintained to match the number of the corresponding first pressure-reducing mechanisms 213 or second pressure-reducing regions 151. Thus, the third apertures 161 and the first pressure-reducing mechanisms 213 correspond one-to-one, or the second pressure-reducing regions 151 correspond one-to-one, and the number of the second apertures 142 may be flexibly set according to actual applications.
[0200] In addition, the efficiency of discharging effluent may be further improved by enlarging the collection cavity 11b of the collection cavity 11b isolated by the isolation member 15. Specifically, as shown in FIGS. 12 and 13 , the electrical cavity 11a includes a fourth wall 1102 intersecting with the isolation member 15. The fourth wall 1102 has a hollow structure, thereby forming at least a portion of the collection cavity 11b within the fourth wall 1102. That is, the space between the isolation member 15 and the protective member 113 can be used to form at least a portion of the collection cavity 11b. At the same time, the fourth wall 1102 intersecting with at least a portion of the isolation member 15 may be hollow, thereby communicating with the collection cavity 11b between the isolation member 15 and the protective member 113. This expands the area of the collection cavity 11b and also extends the area of the second passage 132, allowing the collection cavity 11b to accommodate more effluent, which is also advantageous in reducing the temperature of the internal effluent, improving the effluent discharge efficiency, and improving the safety of the battery 10.
[0201] A fourth pressure reducing mechanism 1105 is installed on a third sub-wall 1102a of the fourth wall 1102, which is away from the electrical cavity 11a. The fourth pressure reducing mechanism 1105 is used to discharge the effluent that has passed through the second passage 132 from the collection cavity 11b. When the internal pressure or temperature of the collection cavity 11b reaches a threshold, the fourth pressure reducing mechanism 1105 installed on the third sub-wall 1102a is activated to release the internal pressure or temperature of the collection cavity 11b and immediately discharge the effluent in the collection cavity 11b from the housing 11. The third sub-wall 1102a is the wall of the fourth wall 1102 away from the electrical cavity 11a. Furthermore, since the third sub-wall 1102a is separated from the electrical cavity 11a, the discharged matter will not pass through the fourth pressure reducing mechanism 1105 and re-enter the electrical cavity 11a, thereby avoiding any impact on the components within the electrical cavity 11a and improving the safety of the battery 10.
[0202] The exhaust passage 13 of the embodiment of the present invention has been described above with reference to the drawings, and the heat management member 12 of the embodiment of the present invention will be described below with reference to the embodiment.
[0203] It should be noted that the thermal management member 12 of the embodiment of the present application may be attached to the second wall 21 b of the battery cell 20 , and the second wall 21 b may be any one of the walls of the battery cell 20 .
[0204] For example, referring to the above-described embodiments, FIG. 16 is a partial schematic diagram of a battery 10 according to an embodiment of the present application. For example, FIG. 16 may be a partial enlarged view of a partial region C of the battery 10 shown in FIG. 2. Alternatively, FIG. 16 may be a partial enlarged view of a partial region D of the battery 10 shown in FIG. 7. Alternatively, FIG. 16 may be a partial enlarged view of a partial region E of the battery 10 shown in FIG. 11. As shown in FIG. 16, the second wall 21b is the wall with the largest area in the battery cell 20, thereby increasing the contact area between the thermal management member 12 and the battery cell 20, effectively regulating the temperature of the battery cell 20, and improving the efficiency of increasing or decreasing the temperature. Specifically, the battery cell 20 may include multiple walls with equal areas. For example, if the outer case 21 of the battery cell 20 is a rectangular parallelepiped, the battery cell 20 may include two oppositely disposed walls with equal and largest areas, and the second wall 21b may be one of these walls. For convenience of explanation, the following embodiments of the present application will be mainly described taking as an example that the second wall 21b is one of the walls of the battery cell 20 with the largest area.
[0205] In the present embodiment, the battery 10 includes multiple rows of battery cells 20 arranged along a first direction. Each row of the battery cells 20 includes at least one battery cell 20 arranged along a second direction, and the first direction is perpendicular to the second direction and the second wall 21b. By arranging the multiple battery cells 20 in the battery 10 in an array format in this manner, the assembly of the battery 10 is facilitated and the space utilization rate of the multiple battery cells 20 within the battery 10 can be improved. Because the first direction X is perpendicular to the second wall 21b, when the thermal management member 12 is attached to the second wall 21b, the first direction X is also perpendicular to the thermal management member 12.
[0206] Optionally, as shown in the drawings of each of the above embodiments, the thermal management member 12 is attached to the second wall 21b of at least one battery cell 20 in at least one row of the battery cells 20. For the plurality of rows of battery cells 20, there is a thermal management member 12 installed corresponding to at least one battery cell 20 in at least one row of the battery cells 20, and the thermal management member 12 can regulate the temperature of the at least one battery cell 20 to which it is attached. Thus, there is at least one thermal management member 12 in the battery 10, and each thermal management member 12 can regulate the temperature of at least one battery cell 20.
[0207] In the embodiment of the present application, the battery cells 20 include two second walls 21b arranged opposite each other along the first direction. A thermal management element 12 is attached to the two second walls 21b of at least one battery cell 20 on both sides of the battery cells 20 in at least one of the multiple rows of battery cells 20 along the first direction. At least one row of battery cells 20 in the multiple rows of battery cells 20 satisfies the following: For any one of the battery cells 20 in the at least one row of battery cells 20, the battery cells 20 in that row include two second walls 21b arranged opposite each other along the first direction X, and a thermal management element 12 is arranged corresponding to each of the two second walls 21b. That is, the battery cells 20 in that row are sandwiched between the two thermal management elements 12. Therefore, the two thermal management elements 12 can simultaneously regulate the temperature of the battery cells 20 in that row, improving the efficiency of temperature regulation and the safety of the battery 10. For example, if two thermal management members 12 are installed corresponding to each row of battery cells 20 in a battery 10, the efficiency of temperature regulation can be significantly improved. For example, if thermal runaway occurs in a battery cell 20, the temperature can be reduced more effectively, heat diffusion can be avoided, and the safety of the battery 10 can be improved.
[0208] In the embodiments of the present application, identical thermal management members 12 are installed between at least two adjacent rows of battery cells 20 among the plurality of battery cell rows 20. Thus, the two adjacent rows of battery cells 20 in the plurality of battery cell rows satisfy the following: Identical thermal management members 12 are installed between the two rows of battery cells 20, thereby facilitating processing and assembly of the battery 10. For example, along the first direction X, some battery cells 20 satisfy the following: Identical thermal management members 12 are installed between two adjacent rows of battery cells 20; and some battery cells 20 satisfy the following: No thermal management members 12 are installed between two adjacent rows of battery cells 20, thereby improving space utilization within the battery 10. Furthermore, for example, as shown in the drawings of the above embodiments, thermal management members 12 may be installed between each of the two adjacent rows of battery cells 20 among the plurality of rows of battery cells 20, thereby corresponding to at least two thermal management members 12 for each battery cell 20 and improving temperature regulation effect.
[0209] The number of thermal management elements 12 in the battery 10 of the present embodiment can be set according to the actual application. For example, the number of thermal management elements 12 in the battery 10 can be selected according to the size and number of the battery cells 20.
[0210] For example, the battery 10 may include a plurality of thermal management elements 12 arranged along the first direction X, increasing the number of thermal management elements 12 and improving the efficiency of temperature regulation.
[0211] Furthermore, for example, the multiple thermal management members 12 are spaced apart along the first direction X, and at least one battery cell 20 is disposed between two adjacent thermal management members 12, thereby avoiding mutual attachment between the multiple thermal management members 12. This not only improves the space utilization rate of the battery 10, but also improves the efficiency of temperature regulation.
[0212] In the present embodiment, the thermal management element 12 is provided with a heat exchange passage containing a heat exchange medium, and the heat exchange passages of the multiple thermal management elements 12 are interconnected. This interconnection between the multiple thermal management elements 12 facilitates management and control, improving the integration and safety of the battery 10. On the other hand, when the temperature change of some of the thermal management elements 12 in the battery 10 is large, heat exchange is realized through the heat exchange passage, reducing the temperature difference between the multiple thermal management elements 12 and improving the efficiency of temperature regulation. Furthermore, each thermal management element 12 may be provided with multiple heat exchange passages, which are spaced apart along the height direction Z. This increases the heat exchange area between the thermal management element 12 and the battery cells 20 and improves the efficiency of temperature regulation.
[0213] In the embodiments of the present application, the contact area between each thermal management member 12 and the second wall 21b of the battery cell 20 may be set according to the actual application. The contact area refers to the area of the region where heat exchange occurs between the thermal management member 12 and the second wall 21b of the battery cell 20. Here, contact may refer to direct contact between the thermal management member 12 and the second wall 21b, or indirect contact between the thermal management member 12 and the second wall 21b via a thermally conductive adhesive, a thermally conductive pad, or the like. For example, the range of the ratio of the thickness D of the thermal management member 12 along the first direction X to the area occupation ratio S is [0.5 mm to 200 mm], and the area occupation ratio S is the ratio of the area of the second wall 21b that is in contact with the thermal management member 12 to the area of the second wall 21b.
[0214] FIG. 17 is a schematic diagram of one row of battery cells 20 and a correspondingly installed thermal management element 12 in a battery 10 according to an embodiment of the present application. For example, the row of battery cells 20 in FIG. 17 may be any one row of battery cells 20 included in the battery 10 shown in FIG. 2, the battery 10 shown in FIG. 7, or the battery 10 shown in FIG. 11. FIG. 18 is a partial cross-sectional schematic diagram of a battery 10 according to an embodiment of the present application. For example, FIG. 18 may be a cross-sectional schematic diagram of the battery 10 taken along the F-F' direction in FIG. 17. Because each thermal management element 12 can correspond to multiple battery cells 20, for convenience of explanation, the embodiment of the present application will be described using any one thermal management element 12 and any one battery cell 20 in contact with the thermal management element 12 as an example, as shown in FIGS. 17 and 18.
[0215] 17 and 18 , the thermal management member 12 of the embodiment of the present application may include at least a partial region that is in contact with the second wall 21b. That is, the thermal management member 12 may include a partial region that is not in contact with the second wall 21b. Specifically, taking the height direction Z of the battery cell 20 as an example, the height H1 of the second wall 21b may be greater than or less than the height H2 of the thermal management member 12. The height H3 of the region where the thermal management member 12 and the second wall 21b contact each other may be less than the height H1 of the second wall 21b, and the height H3 of the region where the thermal management member 12 and the second wall 21b contact each other may be less than the height H2 of the thermal management member 12. Correspondingly, the area of the second wall 21b may be greater than or less than the area of the thermal management member 12. The area of the contact region between the thermal management member 12 and the second wall 21b may be equal to or smaller than the area of the second wall 21b, and the area of the contact region between the thermal management member 12 and the second wall 21b may be equal to or smaller than the area of the thermal management member 12. As a result, at least a portion of the area of the thermal management member 12 contacts at least a portion of the area of the second wall 21b.
[0216] Note that the thermal management member 12 can be adapted to accommodate multiple battery cells 20, and therefore the above-mentioned area of the thermal management member 12 refers to the area of the thermal management member 12 that corresponds to one battery cell 20. For example, as shown in Figures 17 and 18, the thermal management member 12 can be adapted to six battery cells 20. In this case, the above-mentioned area of the thermal management member 12 refers to the total area of the surfaces of the thermal management member 12 that face the second walls 21b of the battery cells 20 divided by 6, i.e., the area of the thermal management member 12 that corresponds to one battery cell 20.
[0217] Because a portion of the heat management member 12 may be in contact with the second wall 21b, the value of the area occupancy ratio S in the embodiment of the present application may be set to a range of [0.1 to 1]. This causes at least a portion of the region of the heat management member 12 to be in contact with the second wall 21b. Furthermore, the larger the area occupancy ratio S, the higher the temperature regulation effect.
[0218] Alternatively, the thickness D of the thermal management member 12 in the embodiments of the present application may refer to the average thickness of the thermal management member 12, or may refer to the average thickness of the region of the thermal management member 12 that corresponds to, or is in contact with, the second wall 21b of the battery cell 20, and the embodiments of the present application are not limited thereto. For example, for ease of processing, the thermal management member 12 in the embodiments of the present application generally has a plate-like structure with a uniform thickness.
[0219] The thickness D of the thermal management member 12 in the embodiments of the present application may generally be set in the range of 0.5 mm to 20 mm. If the thickness D is set too small, the thermal management member 12 becomes more difficult to process and has too little strength, making it more likely to break during assembly and reducing the processing efficiency of the battery 10. Conversely, if the thickness D is set too large, the thermal management member 12 occupies a larger space, reducing the space utilization rate of the battery 10 and the energy density of the battery 10. Therefore, it is not preferable to set the thickness D of the thermal management member 12 too large or too small.
[0220] In the examples of the present application, too large or too small a D / S ratio is also undesirable. If the D / S ratio is set too small, the thickness D of the thermal management member 12 will be too small for a given area occupancy ratio S. This increases the difficulty of processing the thermal management member 12 and reduces its strength, making it prone to fracture during assembly and reducing the processing efficiency of the battery 10. Conversely, if the D / S ratio is set too large, the thickness D of the thermal management member 12 will be too large, increasing the space occupied by the thermal management member 12. This may reduce the space utilization rate of the battery 10, i.e., reduce the energy density of the battery 10, and further affect the electrical capacity requirements of the battery 10. On the other hand, if the area occupancy ratio S is too small, i.e., the contact area between the thermal management member 12 and the second wall 21b of the battery cell 20 is too small, the temperature regulation efficiency will be reduced.
[0221] Therefore, the ratio of the thickness D to the area occupied fraction S of the thermal management member 12 in the embodiments of the present application may generally be set in a range of 0.5 mm to 200 mm. For example, the ratio of the thickness D to the area occupied fraction S of the thermal management member 12 may be set to 0.5 mm, 1 mm, 2 mm, 3 mm, 4 mm, 5 mm, 10 mm, 20 mm, 30 mm, 40 mm, 50 mm, 60 mm, 70 mm, 80 mm, 90 mm, 100 mm, 120 mm, 140 mm, 160 mm, 180 mm, or 200 mm. Furthermore, the ratio of the thickness D to the area occupied fraction S of the thermal management member 12 may be set to other values, for example, the range of the ratio may be set to 0.5 mm to 4 mm or 1 mm to 4 mm.
[0222] Although the present application has been described with reference to preferred embodiments, various modifications may be made and equivalents may be substituted for the elements thereof without departing from the scope of the present application. In particular, the technical features recited in each embodiment may be combined in any manner as long as there is no structural contradiction. The present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions encompassed by the claims.
Claims
1. A battery (10), a battery cell (20), a thermal management member (12), and a vent passage (13); a first pressure reducing mechanism (213) is installed on a first wall (21a) of the battery cell (20); The thermal management member (12) is used to regulate the temperature of the battery cell (20), and the thermal management member (12) is attached to a second wall (21b) of the battery cell (20), the second wall (21b) is different from the first wall (21a), and the area of the second wall (21b) is equal to or greater than the area of the first wall (21a); The discharge passage (13) is arranged so as to be able to communicate with the interior of the battery cell (20) via the first pressure reduction mechanism (213) when the first pressure reduction mechanism (213) is activated, thereby allowing discharged matter from the battery cell (20) to be discharged into the discharge passage (13).
2. It further comprises a housing (11) containing an electrical cavity (11a), 2. The battery (10) of claim 1, wherein the electrical cavity (11a) is adapted to accommodate the battery cells (20) and the thermal management member (12).
3. The battery (10) according to claim 2, wherein the exhaust passage (13) includes a second passage (132), and the second passage (132) is used to exhaust the exhaust discharged from the first pressure reducing mechanism (213) from the electrical cavity (11a).
4. The housing (11) further comprises a collection cavity (11b), The battery (10) according to claim 3, wherein the collection cavity (11b) is used to collect discharged matter from the battery cell (20) through the second passage (132) when the first pressure reducing mechanism (213) is activated.
5. The battery (10) of claim 4, characterized in that the electrical cavity (11a) includes a hollow third wall (1101) facing the first wall (21a), thereby forming at least a portion of the collection cavity (11b) inside the third wall (1101).
6. The battery (10) according to claim 5, characterized in that a first pressure reduction region (1101b) is provided in a first sub-wall (1101a) of the third wall (1101) facing the first wall (21a), the first pressure reduction region (1101b) is provided opposite the first pressure reduction mechanism (213), and the first pressure reduction region (1101b) is used to form at least a portion of the second passage (132).
7. The battery (10) of claim 6, wherein the first pressure reduction region (1101b) is a first through hole penetrating the thickness direction of the first minor wall (1101a), and the second passage (132) includes the first through hole.
8. The battery (10) of claim 6, wherein the first pressure reduction area (1101b) is a first weakened area of the first minor wall (1101a), and the first weakened area is broken when the first pressure reduction mechanism (213) is activated, thereby forming at least a portion of the second passage (132).
9. The battery (10) according to any one of claims 6 to 8, characterized in that a third pressure reducing mechanism (1104) is installed in a second sub-wall (1101c) of the third wall (1101), the third pressure reducing mechanism (1104) is used to discharge the discharged matter that has passed through the second passage (132) from the collecting cavity (11b), and the second sub-wall (1101c) is different from the first sub-wall (1101a).
10. The battery (10) according to any one of claims 5 to 8, characterized in that the electrical cavity (11a) includes a fourth wall (1102) intersecting the third wall (1101), the fourth wall (1102) having a hollow structure and communicating with the interior of the third wall (1101), thereby forming at least a portion of the collection cavity (11b) inside the third wall (1101) and inside the fourth wall (1102).
11. 5. The battery (10) according to claim 4, further comprising an isolation member (15) attached to the first wall (21a), the isolation member (15) being used to isolate the electrical cavity (11a) and the collecting cavity (11b).
12. The battery (10) according to claim 11, characterized in that a second pressure reduction region (151) is provided in the isolation member (15), and the second pressure reduction region (151) is used to form at least a portion of the second passage (132).
13. The battery (10) according to claim 12, characterized in that the second pressure reduction region (151) is a second through hole penetrating the thickness direction of the isolation member (15), and the second passage (132) includes the second through hole.
14. The battery (10) of claim 12, wherein the second pressure reduction region (151) is a second weakened region that is broken upon activation of the first pressure reduction mechanism (213), thereby forming at least a portion of the second passage (132).
15. 13. The battery (10) of claim 12, further comprising a second support member (16) installed in the collection cavity (11b), the second support member (16) being used to improve the compressive strength of the collection cavity (11b).
16. The battery (10) according to claim 15, characterized in that the second support member (16) is installed in a region of the isolation member (15) other than the second pressure reduction region (151), thereby forming at least a portion of the second passage (132) outside the second support member (16).
17. 17. The battery (10) according to claim 16, wherein the second support member (16) abuts against an area of the isolation member (15) other than the second reduced pressure area (151).
18. 16. The battery (10) of claim 15, wherein a third opening (161) is provided in the second support member (16), and the third opening (161) is provided corresponding to the second reduced pressure region (151), so that discharged matter that has passed through the second reduced pressure region (151) is discharged through the third opening (161).
19. 19. The battery (10) of claim 18, wherein the second support member (16) has a hollow structure, and the second reduced pressure region (151) communicates with the interior of the second support member (16) through the third opening (161), thereby forming at least a portion of the second passage (132) inside the second support member (16).
20. 20. The battery (10) according to claim 18 or 19, wherein the cross-sectional area of the third opening (161) is equal to or greater than the area of the second reduced pressure region (151).
21. The battery (10) according to any one of claims 15 to 19, characterized in that the housing (11) further includes a protective member (113) used to form the collecting cavity (11b) together with the isolation member (15).
22. 22. The battery (10) according to claim 21, characterized in that the second support member (16) abuts the separator member (15) and / or the protective member (113).
23. 23. The battery (10) of claim 22, wherein the connection surface (163) of the second support member (16) abuts against the isolation member (15) and / or the protective member (113), and a fourth opening (162) is provided in the non-connection surface (164) of the second support member (16), thereby forming at least a portion of the second passage (132) outside the second support member (16).
24. The battery (10) according to any one of claims 11 to 19, characterized in that the electrical cavity (11a) includes a fourth wall (1102) that intersects with the isolation member (15), and the fourth wall (1102) has a hollow structure, thereby forming at least a portion of the collection cavity (11b) inside the fourth wall (1102).
25. 25. The battery (10) according to claim 24, wherein a fourth pressure reducing mechanism (1105) is installed in a third sub-wall (1102a) of the fourth wall (1102) away from the electrical cavity (11a), and the fourth pressure reducing mechanism (1105) is used to discharge the discharged matter that has passed through the second passage (132) from the collecting cavity (11b).
26. The battery (10) according to any one of claims 1 to 8, wherein the second wall (21b) is the wall with the largest area of the battery cell (20).
27. The battery (10) according to any one of claims 1 to 8, characterized in that the battery (10) includes a plurality of rows of battery cells (20) arranged along a first direction, the battery cells (20) in each row of the plurality of rows of battery cells (20) including at least one battery cell (20) arranged along a second direction, and the first direction is perpendicular to the second direction and the second wall (21b).
28. 28. The battery (10) of claim 27, wherein the thermal management member (12) is attached to the second wall (21b) of at least one battery cell (20) in at least one row of battery cells (20) among the plurality of battery cell rows (20).
29. The battery (10) of claim 28, characterized in that the battery cell (20) includes two second walls (21b) arranged opposite each other along the first direction, and the thermal management member (12) attached to the two second walls (21b) of at least one of the battery cells (20) is respectively arranged on both sides along the first direction of at least one row of battery cells (20) among the plurality of rows of battery cells (20).
30. 28. The battery (10) of claim 27, wherein the same thermal management member (12) is installed between at least two adjacent rows of battery cells (20) among the plurality of rows of battery cells (20).
31. 28. The battery (10) of claim 27, comprising a plurality of said thermal management members (12) arranged along said first direction.
32. 32. The battery (10) of claim 31, wherein a plurality of said thermal management members (12) are spaced apart along said first direction.
33. 32. The battery (10) of claim 31, wherein the thermal management member (12) is provided with heat exchange passages containing a heat exchange medium, and the heat exchange passages of a plurality of the thermal management members (12) are in communication with one another.
34. 9. The battery (10) according to claim 1, wherein a value of a ratio D / S of a thickness D of the thermal management member (12) along a first direction to an area occupation ratio S is in a range of [0.5 mm to 200 mm], the first direction is perpendicular to the second wall (21 b), and the area occupation ratio S is a ratio of an area of the second wall (21 b) in contact with the thermal management member (12) to an area of the second wall (21 b).
35. The battery (10) according to claim 34, characterized in that the value of D / S is in the range of [1 mm to 100 mm].
36. A power consuming device comprising a battery (10) according to any one of claims 3 to 8 used to supply electrical energy.
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