Batteries and power consumption devices

Optimizing the protective member's size and flow rate ratio in batteries addresses the challenge of balancing thermal protection and energy density, enhancing safety by reducing redundancy and maintaining energy density.

JP7843358B2Active Publication Date: 2026-04-09CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-07-15
Publication Date
2026-04-09

AI Technical Summary

Technical Problem

Existing battery technologies face challenges in balancing thermal protection and energy density, as increasing the size of protective members to prevent damage from high-temperature, high-speed gas emissions during thermal runaway leads to wasted energy density and potential housing damage.

Method used

The protective member's size and flow rate are optimized to meet the ratio of 2 × 10⁻³ mm·s/L to 3.3 × 10⁻¹ mm·s/L, ensuring thermal protection while minimizing redundancy and energy density loss, with a design that includes a reinforcing region and base region to withstand thermal shocks.

Benefits of technology

This optimization reduces the risk of protective member breach and housing damage, maintaining energy density and improving battery safety by effectively managing thermal shocks and gas emissions.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

An embodiment of the present application provides a battery and a power consumption device. The battery includes a housing, a battery unit, and a protective member. The housing includes a first wall. The battery unit is accommodated in the housing, and a pressure relief mechanism is provided in the battery unit, and the pressure relief mechanism is used to form a pressure relief hole and release a substance inside the battery unit. The protective member is accommodated in the housing, and at least a part of the protective member is located between the first wall and the pressure relief mechanism and is used to cover the pressure relief hole in an axial direction of the pressure relief hole. The minimum size along the axial direction of the part of the protective member that covers the pressure relief hole in the axial direction is D, and the flow rate of gas released by the battery unit through the pressure relief hole is G, and D and G are less than or equal to 2×10 -3 mm s / L≦D / G≦3.3×10 -1 mm s / L. The embodiment of the present application can reduce the redundancy in the size design of the protective member while still meeting the thermal protection requirements, thereby reducing the loss of energy density of the battery and improving the safety of the battery.
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Description

[Technical Field]

[0001] This application relates to the battery technology field, and more specifically to batteries and power consumption devices. [Background technology]

[0002] Batteries are widely used in electronic devices such as mobile phones, laptops, battery-powered cars, electric vehicles, electric airplanes, electric steamships, electric toy cars, electric toy steamships, electric toy airplanes, and power tools.

[0003] Improving battery safety is a key area of ​​research in battery technology. [Overview of the project]

[0004] This application provides a battery and a power consumption device that can improve safety.

[0005] According to a first aspect, an embodiment of the present application provides a battery including a housing, a battery unit, and a protective member. The housing includes a first wall. The battery unit is housed within the housing and is provided with a pressure relief mechanism, which is used to form pressure relief holes and release material inside the battery unit. The protective member is housed within the housing and at least a portion of the protective member is located between the first wall and the pressure relief mechanism and is used to cover the pressure relief holes in the axial direction of the pressure relief holes. The minimum axial size of the portion of the protective member that covers the pressure relief holes in the axial direction is D, and the flow rate of gas released by the battery unit through the pressure relief holes is G, where D and G are 2 × 10⁻⁶ -3 mm·s / L≦D / G≦3.3×10 -1 Meets the mm·s / L requirement.

[0006] The higher the flow rate G of the gas generated when the battery unit undergoes thermal runaway, the greater the thermal shock of the gas received by the protective member, the higher the demand for D of the protective member. Conversely, the lower the flow rate G of the gas generated when the battery unit undergoes thermal runaway, the smaller the thermal shock of the gas received by the protective member, and the lower the demand for D of the protective member. When the flow rate G is determined, in order to reduce the risk of the protective member being breached and reduce the amount of heat transferred to the first wall, it is necessary to ensure the minimum value of D. Of course, the larger the value of D, the larger the volume and weight of the protective member. When the flow rate G is determined, the redundancy of the size design of the protective member may be reduced by limiting the maximum value of D. The above technical solution limits the value of D / G to 2×10 -3 mm·s / L - 3.3×10 -1 mm·s / L, thereby reducing the redundancy of the size design of the protective member on the premise of meeting the thermal protection requirements, reducing the loss of the energy density of the battery, and improving the safety of the battery.

[0007] In some embodiments, D and G satisfy 2×10 -3 mm·s / L ≤ D / G ≤​​​​​​​​​​​​​​​​-2 Satisfies mm·L / Wh.

[0011] The volumetric energy density E of the battery unit generally has a positive correlation with the flow rate G. Compared with the flow rate G, the volumetric energy density E of the battery unit is more easily determined. The above technical solution indirectly characterizes the flow rate G by the volumetric energy density E, and limits the value of D by the volumetric energy density E, thereby reducing the redundancy of the size design of the protection member on the premise of being compatible with the thermal protection requirements, reducing the loss of the energy density of the battery, and reducing the difficulty of the protection member design.

[0012] In some embodiments, D and E satisfy 1×10 -3 mm·L / Wh ≤ D / E ≤ 6×10 -3 mm·L / Wh.

[0013] In some embodiments, in the maximum size direction perpendicular to the axial direction of the pressure relief hole, the size of the pressure relief hole is k, the size along the maximum size direction of the protection member is K, and k, K, and G satisfy K>k, (K / k) / G ≥ 3×10 -3 s / L.

[0014] The higher the flow rate G of the gas generated when the battery unit undergoes thermal runaway, the more intense the thermal shock of the gas released by the battery unit to the protection member, and the higher the risk that the gas and other transported substances are scattered to the part not shielded by the protection member of the first wall, which also means that the temperature of the part not shielded by the protection member of the first wall will increase. The above technical solution limits the size relationship in the maximum size direction between the protection member and the pressure relief hole based on the flow rate G of the gas generated when the battery unit undergoes thermal runaway, so as to keep the temperature of the part not shielded by the protection member of the first wall within a certain range, thereby reducing the risk of the first wall being damaged.

[0015] In some embodiments, k, K, and G satisfy (K / k) / G ≥ 8×10 -3 s / L.

[0016] In some embodiments, k, K, and G satisfy (K / k) / G ≤ 20s / L. This technology can reduce redundancy in the size design of the protective member and reduce the loss of energy density in the battery.

[0017] In some embodiments, the minimum axial distance between the protective member and the pressure relief hole is h, where h and D satisfy 0.2 ≤ h / D ≤ 250. Limiting the value of h / D to 0.2–250 reduces redundancy in the size design of the protective member while maintaining compatibility with thermal protection requirements, thereby reducing energy density loss in the battery and improving battery safety.

[0018] In some embodiments, the protective member is a flat plate structure, and the thickness direction of the protective member is parallel to the axial direction. The flat plate structure is easy to mold.

[0019] In some embodiments, in the direction of maximum size perpendicular to the axial direction of the pressure relief hole, the thickness of the protective member gradually decreases from the middle to both sides, and the thickness direction of the protective member is parallel to the axial direction.

[0020] The thickest portion of the protective member covers at least a portion of the pressure relief hole in the axial direction. The thickest portion of the protective member faces the pressure relief hole, allowing it to withstand relatively large thermal shocks and reducing the risk of the protective member being breached. The thermal shocks received by both ends of the protective member are relatively small, allowing it to have a relatively small thickness, reducing the weight and volume of the protective member and improving the energy density of the battery.

[0021] In some embodiments, the protective member includes a base region and a reinforcing region connected to the base region, wherein the axial size of the reinforcing region is greater than the axial size of the base region. In the axial direction, the reinforcing region covers at least a portion of the pressure relief hole. The reinforcing region faces the pressure relief hole and can withstand relatively large thermal shocks, reducing the risk of the protective member being breached.

[0022] In some embodiments, the reinforcing region completely covers the pressure relief hole in the axial direction. The reinforcing region can withstand relatively large thermal shocks, thus reducing the risk of the protective member being breached. The base region does not face the pressure relief hole in the axial direction, and it may have a relatively small thickness to reduce the weight and volume of the protective member and improve the energy density of the battery.

[0023] In some embodiments, the size of the protective member in the maximum size direction perpendicular to the axial direction of the pressure relief hole is K, and the size of the reinforced area is K1. K, K1, and G are such that K > K1, (K / K1) / G ≤ 2 × 10 -1 Satisfy s / L.

[0024] The higher the gas flow rate G generated when the battery unit experiences thermal runaway, the more severe the thermal shock to the protective material caused by the gas released by the battery unit, and the higher the size requirements for the reinforced area of ​​the protective material. The inventor calculated the value of (K / K1) / G to be 2 × 10⁻⁶. -1 By limiting the ratio to s / L or less, the reinforcing region and the substrate region block the high-temperature, high-speed material, reducing the amount of heat transferred to the first wall and thus lowering the temperature of the first wall.

[0025] In some embodiments, both the reinforcement region and the base region are flat plate structures, and the thickness direction of both the reinforcement region and the base region are parallel to the axial direction.

[0026] In some embodiments, the size of the reinforcement region along the axial direction is D, and the size of the base region along the axial direction is d. In the maximum size direction perpendicular to the axial direction of the pressure relief hole, the size of the pressure relief hole is k, and the size of the reinforcement region is K1. D, d, k, and K1 satisfy 0.04 ≤ (K1 / k) / (D / d) ≤ 300.

[0027] As the K1 / k value increases, the proportion of the reinforced region that is subjected to thermal shock when the battery unit experiences thermal runaway increases, and the thermal runaway protection requirements that the substrate region must fulfill decrease. Accordingly, the D / d ratio may increase, i.e., the thickness requirement of the substrate region may decrease. As the K1 / k value decreases, the thermal runaway protection requirements that the substrate region must fulfill increase, and accordingly, the D / d ratio may decrease, i.e., the thickness requirement of the substrate region increases. When K1 / k is sufficiently small, the thermal runaway protection requirements that the substrate region must fulfill are relatively large, there is a minimum value in D / d, i.e., there is a maximum value in d, thereby satisfying the thermal runaway protection requirements of the substrate region. When K1 / k is sufficiently large, the thermal runaway protection requirements that the substrate region must fulfill are relatively small, there is a maximum value in D / d, i.e., there is a minimum value in d. By limiting the value of (K1 / k) / (D / d) to 0.04-300, the redundancy in the size design of protective components is reduced while maintaining compatibility with thermal protection requirements, thereby minimizing the loss of energy density in the battery and improving battery safety.

[0028] In some embodiments, the protective member includes a first protective plate and a second protective plate that are stacked along the axial direction, wherein the portion where the first and second protective plates overlap in the axial direction and the second protective plate constitute a reinforced region, and the portion where the first and second protective plates do not overlap in the axial direction constitutes a base region. By stacking the first and second protective plates, a protective member with a difference in thickness is formed, thereby simplifying the molding process of the protective member.

[0029] In some embodiments, a second protective plate is installed on one side of the first protective plate facing the pressure relief mechanism. This technique can improve the flatness of the side of the protective member that is away from the pressure relief mechanism and facilitates the fixing of the protective member to other members.

[0030] In some embodiments, there are multiple second protective panels, and these multiple second protective panels are installed at intervals.

[0031] In some embodiments, multiple second protective plates are installed at intervals in the direction of maximum size perpendicular to the axial direction of the pressure relief hole.

[0032] In some embodiments, both the first protective plate and the second protective plate are flat plates, and the thickness direction of both the first protective plate and the second protective plate are parallel to the axial direction.

[0033] In some embodiments, the first protective plate is a flat plate structure, and the thickness direction of the first protective plate is parallel to the axial direction. In the maximum size direction perpendicular to the axial direction of the pressure relief hole, the size of the second protective plate along the axial direction gradually decreases from the middle to both ends.

[0034] The largest portion of the second protective plate along its axial direction may face the pressure relief hole, thereby reducing the risk of the protective member being punctured by a relatively large thermal shock. The thermal shock experienced at both ends of the second protective plate is relatively small, and in order to reduce the weight and volume of the second protective plate and improve the energy density of the battery, it may have a relatively small thickness.

[0035] In some embodiments, the material of the second protective plate differs from that of the first protective plate. By using different materials for the first and second protective plates, and combining the properties of these different materials, it is possible to create a protective member with higher thermal shock resistance. Compared to first and second protective plates made of the same material, first and second protective plates made of different materials can have a more varied structure.

[0036] In some embodiments, the first wall is located above or below the battery unit.

[0037] In some embodiments, the melting point of the protective member is higher than 1000°C. The protective member has a relatively high melting point, which makes it less likely to melt when subjected to thermal shock, thereby giving the protective member relatively good thermal shock resistance and reducing the risk of the protective member being punctured.

[0038] In some embodiments, the melting point of the protective member is higher than that of the first wall. The protective member has better thermal shock resistance to the first wall, thereby providing thermal protection and reducing the risk of the first wall being damaged.

[0039] In some embodiments, the protective member is fixed to a first wall. The first wall can fix the protective member in place, thereby reducing the risk of the protective member moving around due to the impact of high-temperature, high-speed gas, reducing the probability of the protective member colliding and being damaged, and reducing the risk of the protective member losing its protective effect.

[0040] In some embodiments, the protective member is fixed to the first wall by adhesive, welding, fastening, or locking.

[0041] According to a second aspect, an embodiment of the present application provides a power consumption device which includes a battery of any embodiment of the first aspect for providing electrical energy. [Brief explanation of the drawing]

[0042] To more clearly illustrate the technical concept of the embodiments of this application, the following is a brief introduction to the drawings that may be used in the embodiments of this application. It is obvious that the drawings in the following description are only a few of the embodiments of this application, and those skilled in the art can obtain other drawings based on these drawings without expending any creative effort. [Figure 1] This is a schematic diagram of the structure of a vehicle according to several embodiments of this application. [Figure 2] This is a schematic diagram of a battery exploded according to some embodiments of this application. [Figure 3] This is a schematic diagram of one structure of a battery according to several embodiments of this application. [Figure 4] Figure 3 shows another schematic diagram of the battery structure, where the pressure release mechanism of the battery unit is in the operating state. [Figure 5]This is an enlarged schematic diagram of the circular frame A of the battery shown in Figure 4. [Figure 6] This is a schematic diagram of the structure of a battery unit of a battery according to several embodiments of this application. [Figure 7] This is a schematic diagram of one structure of a battery according to several embodiments of this application. [Figure 8] This is a schematic diagram of one structure of a battery according to several other embodiments of this application. [Figure 9] This is a schematic diagram of one structure of a battery according to several other embodiments of this application. [Figure 10] This is an enlarged schematic diagram of block B in Figure 9. [Figure 11] This is a schematic diagram of one structure of a battery according to several other embodiments of this application. [Figure 12] This is a schematic diagram of one structure of a battery according to several other embodiments of this application. [Figure 13] This is a schematic diagram of one structure of a battery according to several other embodiments of this application. [Figure 14] This is a schematic diagram of one structure of a battery according to several other embodiments of this application. [Figure 15] This is a schematic diagram of one structure of a battery according to several other embodiments of this application.

[0043] In drawings, the drawings are not drawn to the actual scale. [Modes for carrying out the invention]

[0044] To clarify the purpose, technical proposal, and advantages of the embodiments of this application, the following clearly describes the technical proposal in the embodiments of this application, linking it with the drawings of the embodiments. Clearly, the embodiments described are only some, not all, embodiments of this application. All other embodiments derived from the embodiments of this application without the creative effort of a person skilled in the art are all within the scope of protection of this application.

[0045] Unless otherwise defined, all technical and scientific terms used in this application have the same meaning as that commonly understood by those skilled in the art relating to this application. In this application, terms used in the specification are solely for the purpose of describing specific embodiments and are not intended to limit this application. The terms “includes” and “have,” and any variations thereof, in the description of the specification, claims, and drawings of this application are intended to intentionally cover the non-exclusive “includes.” Terms such as “first,” “second,” etc., in the specification, claims, or drawings of this application are not intended to describe a particular order or hierarchical relationship, but to distinguish different subjects.

[0046] The “Examples” as used in this application mean that certain features, structures, or characteristics described in conjunction with the Examples may be included in at least one Example of this application. The occurrence of this phrase in each location in the specification does not necessarily refer to the same Example, nor does it mean that each Example is mutually exclusive or alternative to the others.

[0047] In the description of this application, unless otherwise specifically defined or limited, the terms “attachment,” “connection,” “connection,” and “installation” should be understood in a broad sense. For example, a fixed connection may be a detachable connection, an integral connection, a direct connection, an indirect connection via an intermediate medium, or internal communication between two elements. A person skilled in the art will be able to understand the specific meaning of these terms in this application depending on the specific circumstances.

[0048] In this application, the terms "and / or" merely describe the relationship between related objects, indicating that three relationships are possible. For example, A and / or B may represent three cases: A alone, a combination of A and B, or B alone. In this application, the character " / " generally indicates that the preceding and succeeding related objects are in an "or" relationship.

[0049] In the embodiments of this application, the same reference numerals indicate the same component, and for the sake of brevity, detailed descriptions of the same component are omitted in different embodiments. It should be understood that the dimensions such as thickness, aspect ratio of various components in the embodiments of this application shown in the drawings, and the dimensions such as thickness, aspect ratio of the overall assembly device, are illustrative only and do not constitute any limitation of this application.

[0050] As used in this application, "multiple" refers to two or more (including two).

[0051] In this application, the term "parallel" includes not only absolutely parallel lines but also nearly parallel lines as is generally recognized in engineering, and the term "perpendicular" includes not only absolutely perpendicular lines but also nearly perpendicular lines as is generally recognized in engineering.

[0052] In this application, the battery unit may include a lithium-ion battery unit, a lithium-sulfur battery unit, a sodium-lithium-ion battery unit, a sodium-ion battery unit, or a magnesium-ion battery unit, and the embodiments of this application are not limited thereto. The battery unit may be cylindrical, flattened, rectangular, or have other shapes, and the embodiments of this application are not limited thereto.

[0053] The battery referred to in the embodiments of this application is a single physical module comprising one or more battery units to provide higher voltage and capacity. The battery generally includes a housing for packaging one or more battery units. The housing can prevent liquids or other foreign matter from affecting the charging or discharging of the battery units.

[0054] The development of battery technology requires the simultaneous consideration of a wide range of design elements, such as energy density, cycle life, discharge capacity, and charge / discharge ratio, as well as battery safety.

[0055] The pressure release mechanism of a battery unit has a significant impact on its safety. For example, when phenomena such as short circuits or overcharging occur, there is a risk of a rapid increase in pressure due to thermal runaway inside the battery unit. In such cases, the pressure release mechanism activates to release the internal pressure to the outside, preventing the battery unit from exploding or catching fire.

[0056] The pressure release mechanism may be an element or component that activates when the battery unit reaches certain conditions. For example, the pressure release mechanism may be an element or component that activates to release internal pressure and / or internal material when the internal pressure or internal temperature of the battery unit reaches a predetermined threshold. This threshold design will vary depending on the design requirements. This threshold may depend on one or more materials among the positive electrode plate, negative electrode plate, electrolyte, and separator components in the battery unit.

[0057] The pressure relief mechanism can take the form of an explosion-proof valve, air valve, pressure relief valve, or safety valve, and can specifically use a pressure-sensitive element or structure, i.e., when the internal pressure of the battery unit reaches a predetermined threshold, the pressure relief mechanism operates, or a vulnerable region provided in the pressure relief mechanism ruptures, thereby forming a pressure relief hole that can release the internal pressure. Alternatively, the pressure relief mechanism may use a temperature-sensitive element or structure, i.e., when the internal temperature of the battery unit reaches a predetermined threshold, the pressure relief mechanism operates to form a pressure relief hole for releasing the internal pressure. Alternatively, the pressure relief mechanism may be an actively operable component, and exemplary, the pressure relief mechanism may operate when it receives a control signal from the battery.

[0058] The pressure relief mechanism may take other forms. For example, the pressure relief mechanism may be a relatively low-strength structure on the battery unit housing, and when the battery unit experiences thermal runaway, the relatively low-strength structure cracks or deforms to form a pressure relief hole for releasing internal pressure. For example, the pressure relief mechanism may be a solder joint on the battery unit housing.

[0059] As used in this application, "operation" refers to the release of internal pressure and / or internal materials from the battery unit through the operation or activation of a pressure release mechanism. Operation by the pressure release mechanism may include, but is not limited to, the rupture, shattering, tearing, or opening of at least a portion of the pressure release mechanism. When the pressure release mechanism is activated, high-temperature, high-speed materials inside the battery unit are discharged as waste from the operating parts. By releasing pressure in the battery unit, where pressure can be controlled in this manner, the occurrence of potentially more serious accidents can be avoided.

[0060] The emissions from the battery unit referred to in this application include, but are not limited to, electrolyte, dissolved or fragmented positive and negative electrode plates, fragments of separator components, high-temperature, high-speed gases generated by the reaction, and flames.

[0061] When the battery unit overheats, it releases waste into the casing. The casing also has a pressure relief mechanism, and when this mechanism is activated, the waste is expelled outside the casing at a set position.

[0062] The inventors realized that the waste emitted by the battery unit is at a high temperature and high speed, and if the waste collides with the housing, it could cause damage to the housing. This could prevent the waste from being released by the housing's pressure release mechanism, causing it to release pressure from the point of damage to the housing, thereby creating a risk of fire outside the battery and posing a safety risk.

[0063] After discovering the above problem, the inventor attempted to install a protective member in a position opposite the pressure release mechanism of the battery unit. The protective member blocks the high-temperature, high-speed material released by the battery unit, thereby reducing the thermal shock to the housing, lowering the risk of housing damage, and improving safety.

[0064] Through their research, the inventors discovered that when a battery unit experiences thermal runaway, if the gas generation from the battery unit is too intense, the relatively thin protective material can collide with the high-temperature, high-velocity gas released from the battery unit, potentially creating perforations in the protective material. These perforations can then allow the high-temperature, high-velocity gas to collide with the housing, creating a risk of housing damage. To reduce the risk of the protective material being punctured by the gas, the inventors attempted to increase the size of the protective material. However, increasing the size of the protective material reduces the energy density of the battery, and if the protective material is oversized, it results in wasted energy density.

[0065] In light of this, the inventor has provided a technical solution that reduces the risk of the protective member melting and penetrating, and reduces the wasted energy density of the battery, by setting the size of the protective member according to the flow rate of gas emitted by the battery unit.

[0066] The invention described in the embodiments of this application is applicable to power consumption devices that use batteries.

[0067] Power-consuming devices may include vehicles, mobile phones, portable devices, laptop computers, steamships, spacecraft, electric toys, and power tools. Vehicles may be fuel-oil vehicles, gas vehicles, or new energy vehicles, and new energy vehicles may be pure electric vehicles, hybrid vehicles, or range-extender vehicles. Spacecraft include airplanes, rockets, space shuttles, and spacecraft. Electric toys include stationary or mobile electric toys, such as game consoles, electric vehicle toys, electric steamship toys, and electric airplane toys. Power tools include metal cutting power tools, grinding power tools, assembly power tools, and railway power tools, such as electric drills, electric grinders, electric wrenches, electric screwdrivers, electric hammers, electric impact drills, concrete vibrators, and electric planers. The embodiments of this application do not particularly limit the power-consuming devices described above.

[0068] In the following embodiments, for the sake of explanation, we will use a vehicle as an example of the power consumption device.

[0069] Figure 1 is a schematic diagram of the structure of a vehicle according to some embodiments of this application.

[0070] As shown in Figure 1, a battery 2 is installed inside the vehicle 1, and the battery 2 may be installed at the bottom, front, or rear of the vehicle 1. The battery 2 may be used to supply power to the vehicle 1, for example, the battery 2 may be used as the operating power source for the vehicle 1.

[0071] Vehicle 1 may further include a controller 3 and a motor 4, the controller 3 being used to control the battery 2 to supply power to the motor 4, for example, to meet the power consumption requirements for starting, navigating, and driving Vehicle 1.

[0072] In some embodiments of this application, the battery 2 can be used not only as an operating power source for the vehicle 1, but also as a driving power source for the vehicle 1, providing driving power to the vehicle 1 in place of or in place of gasoline or natural gas.

[0073] Figure 2 is a schematic diagram of a battery exploded according to some embodiments of this application.

[0074] As shown in Figure 2, the battery 2 includes a housing 20 and a battery unit 10, the battery unit 10 being housed within the housing 20.

[0075] The housing 20 is used to house the battery unit 10, and the housing 20 may have various structures. In some embodiments, the housing 20 may include a first housing portion 21 and a second housing portion 22, the first housing portion 21 and the second housing portion 22 overlapping each other, and the first housing portion 21 and the second housing portion 22 together define a housing space for housing the battery unit 10.

[0076] In some embodiments, the second housing portion 22 may be a hollow structure with one end open, and the first housing portion 21 is a plate-like structure, and the first housing portion 21 is placed over the open side of the second housing portion 22, thereby forming a housing 20 having a storage space. In some other embodiments, both the first housing portion 21 and the second housing portion 22 may be hollow structures with one side open, and the open side of the first housing portion 21 is placed over the open side of the second housing portion 22, thereby forming a housing 20 having a storage space.

[0077] The first housing portion 21 and the second housing portion 22 may have various shapes, such as a cylinder or a rectangular parallelepiped.

[0078] To improve the sealing performance after connecting the first housing portion 21 and the second housing portion 22, a sealing material may be installed between the first housing portion 21 and the second housing portion 22, such as a sealant or a sealing ring.

[0079] Assuming that the first housing portion 21 is placed over the top of the second housing portion 22, the first housing portion 21 is also called the upper housing lid, and the second housing portion 22 is also called the lower housing 20.

[0080] In battery 2, there may be one battery unit 10 or multiple battery units 10. If there are multiple battery units 10, the multiple battery units 10 may be connected in series, in parallel, or in series-parallel, where series-parallel connection means that the multiple battery units 10 are connected in both series and parallel. The multiple battery units 10 may be connected in series, in parallel, or in series-parallel as a whole, and then the entire assembly composed of the multiple battery units 10 may be housed in the housing 20. Of course, the multiple battery units 10 may first be connected in series, in parallel, or in series-parallel to combine them into a battery module, and then the multiple battery modules may be further connected in series, in parallel, or in series-parallel to form a whole, and then housed in the housing 20.

[0081] Figure 3 is a schematic diagram of one structure of a battery according to some embodiments of this application, Figure 4 is a schematic diagram of another structure of the battery shown in Figure 3, where the pressure release mechanism of the battery unit is in the operating state, Figure 5 is an enlarged schematic diagram of the circular frame A of the battery shown in Figure 4, Figure 6 is a schematic diagram of the structure of the battery unit of a battery according to some embodiments of this application, and Figure 7 is a schematic diagram of one structure of a battery according to some embodiments of this application.

[0082] As shown in Figures 3 to 7, the battery 2 of the embodiment of this application includes a housing 20, a battery unit 10, and a protective member 30. The housing 20 includes a first wall 21a. The battery unit 10 is housed within the housing 20 and is provided with a pressure relief mechanism 11, which is used to form a pressure relief hole 111 and release material inside the battery unit 10. The protective member 30 is housed within the housing 20 and at least a portion of the protective member 30 is located between the first wall 21a and the pressure relief mechanism 11 and is used to cover the pressure relief hole 111 in the axial direction Z. The minimum size of the portion of the protective member 30 that covers the pressure relief hole 111 in the axial direction Z is D, and the flow rate of gas released by the battery unit 10 through the pressure relief hole 111 is G, where D and G are 2 × 10 -3 mm·s / L≦D / G≦3.3×10 -1 Meets the mm·s / L requirement.

[0083] The housing 20 may be the outer casing of the battery 2, and the battery unit 10 is located inside the casing. The housing 20 can prevent liquids or other foreign matter from affecting the charging or discharging of the battery unit 10.

[0084] The first wall 21a of the housing 20 is a wall facing the pressure release mechanism 11 in the axial direction Z of the housing 20. The first wall 21a may be the top wall of the housing 20 located above the battery unit 10, the bottom wall of the housing 20 located below the battery unit 10, or a side wall of the housing 20 located on one side of the battery unit 10. Of course, the first wall 21a may be a wall located at another position on the housing 20. Exemplarily, the first wall 21a may be part of the first housing portion, or part of the second housing portion.

[0085] This embodiment does not limit the shape of the first wall 21a. For example, the first wall 21a may be flat, curved, or have any other shape.

[0086] The battery unit 10 may be one or multiple. Illustratively, the battery unit 10 is multiple. Selectively, the pressure release mechanisms 11 of the multiple battery units 10 are all facing the first wall 21a.

[0087] The battery unit 10 includes one or more battery cells. A battery cell is the smallest unit that makes up a battery and can independently realize the functions of charging and discharging. The battery cell may be a cylindrical battery cell, a prismatic battery cell, a soft-package battery cell, or other battery cell.

[0088] The battery cell includes a battery cell housing, an electrode assembly 13, an electrolyte, and other functional components, the electrode assembly 13 and the electrolyte being housed within the battery cell housing.

[0089] Exemplary, an electrode assembly includes a positive electrode plate, a negative electrode plate, and a separator member. A battery cell operates primarily by the movement of metal ions between the positive and negative electrode plates. The positive electrode plate includes a positive electrode current collector and a positive electrode active material layer, the positive electrode active material layer being coated on the surface of the positive electrode current collector. The positive electrode current collector includes a positive electrode current collector section and a positive electrode tab, the positive electrode current collector section being coated with the positive electrode active material layer, and the positive electrode tab not being coated with the positive electrode active material layer. Taking a lithium-ion battery cell as an example, the material of the positive electrode current collector may be aluminum, and the positive electrode active material layer may include a positive electrode active material such as lithium cobalt oxide, lithium iron phosphate, ternary lithium, or lithium manganese oxide. The negative electrode plate includes a negative electrode current collector and a negative electrode active material layer, the negative electrode active material layer being coated on the surface of the negative electrode current collector, the negative electrode current collector including a negative electrode current collecting section and a negative electrode tab, the negative electrode current collecting section being coated with the negative electrode active material layer and the negative electrode tab not being coated with the negative electrode active material layer. The material of the negative electrode current collector may be copper, and the negative electrode active material layer includes a negative electrode active material, which may be carbon or silicon, etc. The material of the separator member may be PP (polypropylene) or PE (polyethylene), etc. The battery cell housing may be a rigid housing, for example, the battery cell housing may be made of an aluminum alloy, or the battery cell housing may be a flexible housing, for example, the battery cell housing may be made of an aluminum plastic film.

[0090] In some examples, the battery unit 10 may consist of a single battery cell, the housing 12 of the battery unit 10 may be a battery cell housing, and the pressure relief mechanism 11 may be installed in the housing 12. In other examples, the battery unit 10 may consist of a housing 12 and multiple battery cells housed within the housing 12, and the pressure relief mechanism 11 may be installed in the housing 12.

[0091] Exemplary, the housing 12 of the battery unit 10 includes a second wall 12a facing a first wall 21a, the pressure relief mechanism 11 is attached to the second wall 12a, and the second wall 12a is located on one side of the electrode assembly 13 facing the first wall 21a. The pressure relief mechanism 11 may be fixed to the second wall 12a by welding, bonding or other means, or alternatively, the pressure relief mechanism 11 and the second wall 12a may be formed integrally.

[0092] When the battery unit 10 is in a normal state, the pressure release mechanism 11 does not form a pressure release hole 111. The pressure release mechanism 11 reduces the risk of electrolyte leakage by sealing the electrode assembly 13 and electrolyte of the battery unit 10 inside the battery unit 10. If thermal runaway occurs inside the battery unit 10, the pressure release mechanism 11 activates to form a pressure release hole 111, allowing the material inside the battery unit 10 to be released to the outside of the battery unit 10 through the pressure release hole 111.

[0093] Exemplary, the material released through the pressure relief port 111 includes a high-temperature, high-speed gas. The pressure relief port 111 restricts the direction of gas flow, causing some of the gas to be ejected along the axial direction Z of the pressure relief port 111.

[0094] The protective member 30 may be entirely located between the first wall 21a and the pressure relief mechanism 11, or only a portion of it may be located between the first wall 21a and the pressure relief mechanism 11. Exemplarily, the first wall 21a and the pressure relief mechanism 11 are installed along the axial direction Z, and in the axial direction Z, at least a portion of the protective member 30 is located between the first wall 21a and the pressure relief mechanism 11.

[0095] When the pressure relief mechanism 11 is activated and the pressure relief hole 111 is formed, the protective member 30 can cover the pressure relief hole 111 in the axial direction Z. In this embodiment, "the protective member 30 covers the pressure relief hole 111 in the axial direction Z" means that the projection of the pressure relief hole 111 in the axial direction Z is located within the projection of the protective member 30 in the axial direction Z. The area of ​​the projection of the protective member 30 in the axial direction Z may be greater than or equal to the area of ​​the projection of the pressure relief hole 111 in the axial direction Z.

[0096] The protective member 30 may be a plate-like structure, a frame structure, or another structure. For example, the protective member 30 may be a flat plate of uniform thickness or a plate of uneven thickness.

[0097] The protective member 30 may have an integrated structure or it may have a structure assembled from multiple sub-members.

[0098] The protective member 30 may be fixed to the first wall 21a, to the battery unit 10, or to other members within the housing 20, and the embodiments of this application are not limited thereto.

[0099] The thermal shock resistance of the protective member 30 is superior to that of the first wall 21a. Thermal shock resistance refers to the ability of a material to withstand rapid temperature changes without fracture. In other words, when subjected to the same high-temperature, high-speed impact, the protective member 30 is less likely to break than the first wall 21a.

[0100] The portion of the protective member 30 that covers the pressure relief hole 111 in the axial direction Z may be abbreviated as the protective part, and the projection of the protective part in the axial direction Z completely overlaps with the projection of the pressure relief hole 111 in the axial direction Z. The protective part is more susceptible to impact from high-temperature, high-speed materials than other parts of the protective member 30.

[0101] The unit of flow rate G is liters per second (L / s). In the embodiments of this application, flow rate G may be the average flow rate of gas released by the battery unit 10 through the pressure relief port 111.

[0102] The flow rate G = V / t of gas released by the battery unit 10 through the pressure relief port 111 is such that V is the amount of gas (in liters) at room temperature and pressure (25°C, 1 atm) due to thermal runaway of the battery unit 10, and t is the duration of thermal runaway of the battery unit 10.

[0103] For example, the flow rate G of the battery unit 10 is obtained by measuring it according to the following method.

[0104] Test sample: A battery unit 10 in a fully charged state.

[0105] Test environment: A single sealed tank (where no significant volume change or gas leakage occurs during the thermal runaway process of the battery unit 10), the space inside the tank is V0, and the inside of the tank is at normal temperature and pressure (25°C, 1 atm).

[0106] Test flow: The battery unit 10 is placed in a sealed tank and thermal runaway of the battery unit 10 is triggered, the pressure release mechanism 11 of the battery unit 10 is activated and pressure release holes 111 are formed, and the substance released by the battery unit 10 may cause temperature and pressure changes in the tank, and after the battery unit 10 has thermally run away for 15 minutes, the temperature in the tank is in equilibrium, at which point the atmospheric pressure in the tank is detected to be P1 and the temperature at the center of the tank is detected to be T0, and based on the ideal equation of state, the amount of gas due to thermal runaway of the battery unit 10 at normal temperature and pressure (25℃, 1atm) is

number

[0107] In the above test flow, R is the gas constant, R = 8.314 J / (mol·K), and 24.5 is the molar volume of gas at room temperature and pressure. For a method of triggering thermal runaway of battery unit 10, refer to GB 38031-2020 C.5.3.4. The center point of the tank may be the geometric center of the internal cavity of the tank.

[0108] The time t for thermal runaway of the battery unit 10 is the time interval from the start of thermal runaway of the battery unit 10 until the air pressure inside the sealed tank reaches its maximum value.

[0109] The gas released when the battery unit 10 experiences thermal runaway acts on the protective member 30, which reduces the thermal shock experienced by the first wall 21a and decreases the amount of heat transferred to the first wall 21a, thereby reducing the risk of the first wall 21a melting and being penetrated, and improving the safety of the battery 2. The larger the value of D, the lower the risk of the protective member 30 being penetrated by the gas, and the less heat is transferred to the first wall 21a.

[0110] The higher the gas flow rate G generated when the battery unit 10 experiences thermal runaway, the greater the thermal shock the protective member 30 receives from the gas, and the higher the demand for D from the protective member 30. Conversely, the lower the gas flow rate G generated when the battery unit 10 experiences thermal runaway, the smaller the thermal shock the protective member 30 receives from the gas, and the lower the demand for D from the protective member 30. If the flow rate G is determined, it is necessary to guarantee a minimum value for D in order to reduce the risk of the protective member 30 being breached and to reduce the amount of heat transferred to the first wall 21a. Of course, the larger the value of D, the larger the volume and weight of the protective member 30 will be. If the flow rate G is determined, limiting the maximum value of D may reduce the redundancy in the size design of the protective member 30 while maintaining compatibility with thermal protection requirements, thereby reducing the loss of energy density of the battery 2.

[0111] The inventor determined through research that the D / G value is 2 × 10 -3 mm·s / L-3.3×10 -1 By limiting the range to mm·s / L, the redundancy in the size design of the protective member 30 is reduced while maintaining compatibility with thermal protection requirements, thereby minimizing the energy density loss of the battery 2 and improving the safety of the battery 2.

[0112] In some embodiments, the D / G value is 2 × 10 -3 mm·s / L, 5×10 -3 mm·s / L, 1×10 -2 mm·s / L, 5×10 -2 mm·s / L, 1×10 -1 mm·s / L, 2×10 -1 mm·s / L, 3×10 -1 mm·s / L or 3.3×10-1 It is mm·s / L.

[0113] In some embodiments, the protective member 30 can serve as an insulator to reduce the amount of heat transferred to the first wall 21a. When the battery unit 10 experiences thermal runaway, the presence of the protective member 30 reduces the amount of heat conducted to the first wall 21a, thus allowing embodiments of this application to reduce the requirements for the material of the housing 20.

[0114] For example, the housing 20 may be made of a material that cannot withstand high temperatures, such as polyester. Of course, the housing 20 may also be made of a material that is relatively resistant to high temperatures, such as aluminum, steel, or other metals. If the housing 20 is made of a relatively resistant material, the D / G value may be adaptively reduced, thereby reducing the space and weight occupied by the protective member 30 and improving the energy density of the battery 2.

[0115] In some embodiments, D and G are 2 × 10 -3 mm·s / L≦D / G≦2×10 -1 Meets the mm·s / L requirement.

[0116] In some embodiments, the value of D is between 0.5 mm and 5 mm. Selectively, the value of D is 0.5 mm, 1 mm, 2 mm, 3 mm, 4 mm, or 5 mm.

[0117] The smaller the value of D, the higher the risk of the protective member 30 being penetrated by gas. The larger the value of D, the lower the risk of the protective member 30 being penetrated by gas, and the larger the space and weight occupied by the protective member 30 within the battery 2. By limiting the value of D to 0.5 mm to 5 mm, the inventor reduces the redundancy in the size design of the protective member 30 while maintaining compatibility with thermal protection requirements, thereby reducing the energy density loss of the battery 2, lowering the difficulty of molding the protective member 30, and improving the safety of the battery 2.

[0118] In some embodiments, the protective member 30 has thermal insulation properties, and its thermal conductivity is lower than that of the first wall 21a. The protective member 30 can act as an insulator, reducing the amount of heat conducted to the first wall 21a when the battery unit 10 experiences thermal runaway. In other alternative embodiments, the protective member 30 may have relatively good thermal conductivity, allowing it to rapidly conduct heat to its surroundings, reduce heat concentration, and lower the temperature of the first wall 21a.

[0119] In some embodiments, the material of the protective member 30 includes at least one of inorganic salts, inorganic ceramics, elemental metals, elemental carbon, and organic colloids.

[0120] In some examples, inorganic salts include silicates.

[0121] In some examples, inorganic ceramics include at least one of alumina, silica, boron carbide, boron nitride, silicon carbide, silicon nitride, and zirconia.

[0122] In some examples, the elemental metal system includes at least one of copper, iron, aluminum, tungsten, and titanium.

[0123] In some examples, elemental carbon includes at least one of amorphous carbon and graphite.

[0124] In some examples, the organic colloid includes at least one of epoxy resin structural adhesives, acrylate structural adhesives, polyimide structural adhesives, maleimide structural adhesives, polyurethane structural adhesives, and acrylic structural adhesives.

[0125] In some embodiments, the material of the protective member 30 includes at least two of the following: inorganic salts, inorganic ceramics, elemental metals, elemental carbon, and organic colloids.

[0126] A composite structure formed from multiple materials can improve the thermal shock resistance and thermal insulation performance of the protective member 30.

[0127] In some embodiments, the protective member 30 includes a carbon fiber sheet formed from a carbon fiber cloth and an organic colloid.

[0128] In some embodiments, the protective member 30 includes a resin sheet formed from inorganic ceramic powder and organic colloid.

[0129] In some embodiments, the protective member 30 includes a graphite layer and a metal layer that are installed in a laminated manner.

[0130] In some embodiments, the protective member 30 includes a composite fiber sheet made of carbon fibers and ceramic fibers.

[0131] In some embodiments, the protective member 30 includes a ceramic layer and a metal mesh connected to the ceramic layer.

[0132] In some embodiments, the melting point of the protective member 30 is higher than 1000°C. The protective member 30 has a relatively high melting point, which makes it less likely to melt when subjected to thermal shock, thereby giving the protective member 30 relatively good thermal shock resistance and reducing the risk of the protective member 30 being punctured.

[0133] In some embodiments, the melting point of the protective member 30 is higher than 1500°C.

[0134] In some embodiments, the melting point of the protective member 30 is higher than that of the first wall 21a. The protective member 30 has better thermal shock resistance than the first wall 21a, thereby performing a thermal protection function and reducing the risk of damage to the first wall 21a.

[0135] In some embodiments, the protective member 30 is fixed to the first wall 21a. The first wall 21a can fix the protective member 30, thereby reducing the risk of the protective member 30 moving around due to the impact of high-temperature, high-speed gas, reducing the probability of the protective member 30 colliding and being damaged, and reducing the risk of the protective member 30 failing to provide protection.

[0136] In some embodiments, the protective member 30 is fixed to the first wall 21a by adhesive, welding, fastening, or locking. Of course, the protective member 30 may be fixed to the first wall 21a by other means.

[0137] In some embodiments, the protective member 30 is installed on the inner surface of the first wall 21a.

[0138] In some embodiments, the first wall 21a is located above or below the battery unit 10. Exemplarily, as shown in Figure 3, the first wall 21a is located above the battery unit 10.

[0139] In some embodiments, the volumetric energy density of the battery unit 10 is E, and D and E are equal to 1 × 10⁻⁶. -3 mm·L / Wh ≤ D / E ≤ 1 × 10 -2 Satisfying the mm·L / Wh requirement.

[0140] The unit of volumetric energy density E is Wh / L. E = C / V1, where C is the capacity of the battery unit 10 and V1 is the volume of the battery unit 10.

[0141] For illustrative purposes, the volume of the housing 12 of the battery unit 10 is taken as the volume of the battery unit 10, and the volume of the pole column 14 protruding from the housing 12 of the battery unit 10 is not considered. For example, the length, width, and height of the housing 12 of the rectangular battery unit 10 are l1, l2, and l3, respectively, and V1 = l1 × l2 × l3.

[0142] Generally, when thermal runaway occurs in the battery unit 10, the higher the value of E, the more intense the chain reaction that occurs inside the battery unit 10, the higher the temperature of the gas released by the battery unit 10, and the larger the flow rate G.

[0143] The higher the volumetric energy density E of the battery unit 10, the greater the thermal shock of the gas that the protective member 30 receives, and the higher the demand for D from the protective member 30. Conversely, the lower the volumetric energy density E of the battery unit 10, the smaller the thermal shock of the gas that the protective member 30 receives, and the lower the demand for D from the protective member 30. When the volumetric energy density E is determined, it is necessary to guarantee a minimum value for D in order to reduce the risk of the protective member 30 being penetrated and to reduce the amount of heat transferred to the first wall 21a. Of course, the larger the value of D, the larger the volume and weight of the protective member 30. When the volumetric energy density E is determined, the maximum value of D can be limited to reduce the redundancy in the size design of the protective member 30 while being compatible with the thermal protection requirements, thereby reducing the loss of energy density of the battery 2.

[0144] The volumetric energy density E of the battery unit 10 is positively correlated with the flow rate G, and the volumetric energy density E of the battery unit 10 is easier to determine than the flow rate G. Through experiments and calculations, the inventors attempted to reduce the difficulty of designing the protective member 30 by indirectly characterizing the flow rate G with respect to the volumetric energy density E and by limiting the value of D with respect to the volumetric energy density E.

[0145] Selectively, the value of D / E is 1 × 10 -3 mm·L / Wh, 2 × 10 -3 mm·L / Wh, 4×10 -3 mm·L / Wh, 6×10 -3 mm·L / Wh, 8×10 -3 mm·L / Wh or 1 × 10 -2 It is mm·L / Wh.

[0146] In some embodiments, D and E are 1 × 10 -3 mm·L / Wh ≤ D / E ≤ 6 × 10 -3 Satisfying the mm·L / Wh requirement.

[0147] In some embodiments, the size of the protective member 30 is greater than the size of the pressure relief hole 111 in any direction perpendicular to the axial direction Z.

[0148] The gas released through the pressure relief hole 111 flows mainly along the axial direction Z of the pressure relief hole 111, and of course, some of the gas and the particles and other substances carried by the gas may dissipate into the surroundings even after passing through the pressure relief hole 111. In this embodiment, the protective member 30 has a relatively large size compared to the pressure relief hole 111, which can effectively block the gas, reduce the risk of the gas directly impacting the first wall 21a, and improve safety.

[0149] In some embodiments, the size of the pressure relief hole 111 in the maximum size direction X perpendicular to the axial direction Z of the pressure relief hole 111 is k, and the size of the protective member 30 along the maximum size direction X is K. k, K, and G are such that K > k, (K / k) / G ≥ 3 × 10 -3 Satisfy s / L.

[0150] In multiple directions perpendicular to the axial direction Z, the size of the pressure relief hole 111 along one of these directions is greater than or equal to the size of the pressure relief hole 111 along the other directions, and this direction is called the maximum size direction X of the pressure relief hole 111. The size K of the protective member 30 is the size of the protective member 30 along the maximum size direction X of the pressure relief hole 111.

[0151] The higher the gas flow rate G generated when the battery unit 10 experiences thermal runaway, the more severe the thermal shock to the protective member 30 caused by the gas released by the battery unit 10. This increases the risk that the gas and other transported substances will scatter to the parts of the first wall 21a not shielded by the protective member 30, and consequently, the temperature of those parts of the first wall 21a not shielded by the protective member 30 will also increase.

[0152] The inventor reduces the risk of the first wall 21a being damaged by limiting the size relationship between the protective member 30 and the pressure relief hole 111 in the maximum size direction X, based on the gas flow rate G of the battery unit 10 when it experiences thermal runaway, thereby keeping the temperature of the portion of the first wall 21a not shielded by the protective member 30 within a certain range.

[0153] When the gas flow rate G generated when the battery unit 10 experiences thermal runaway is relatively small, the protective member 30 may have a relatively small size, thereby reducing the space and weight of the battery 2 occupied by the protective member 30 and improving the energy density. When the gas flow rate G generated when the battery unit 10 experiences thermal runaway is relatively large, the protective member 30 may have a relatively large size, thereby increasing the area of ​​the first wall 21a shielded by the protective member 30 and reducing the temperature of the first wall 21a.

[0154] In some embodiments, k, K, and G are (K / k) / G ≥ 8 × 10 -3 Satisfy s / L.

[0155] In some embodiments, k, K, and G satisfy (K / k) / G ≤ 20s / L. This embodiment can reduce the redundancy in the size design of the protective member 30 and reduce the loss of energy density of the battery 2.

[0156] In some examples, the value of (K / k) / G is 3 × 10 -3 s / L, 5×10 -3 s / L, 8×10 -3 s / L, 1×10 -2 s / L, 5×10 -2 s / L, 1×10 -1 s / L, 5×10 -1 The available sizes are s / L, 1s / L, 5s / L, 10s / L, 15s / L, and 20s / L.

[0157] In some embodiments, the minimum distance in the axial direction Z between the protective member 30 and the pressure relief hole 111 is h, and h and D satisfy 0.2 ≤ h / D ≤ 250.

[0158] When h is sufficiently low, the temperature and velocity of the gas acting on the protective member 30 do not decrease significantly, the thermal shock experienced by the protective member 30 is relatively large, and correspondingly, there is a minimum value for D that ensures a protective effect. When h is sufficiently high, the temperature and velocity of the gas acting on the protective member 30 decrease significantly, the thermal shock experienced by the protective member 30 is relatively small, and correspondingly, there is a maximum value for D, thereby achieving compatibility with thermal runaway protection requirements while also being economical and reducing design redundancy. Through experiments and calculations, the inventors have found that by limiting the value of h / D to 0.2-250, redundancy in the size design of the protective member 30 is reduced while maintaining compatibility with thermal protection requirements, the energy density loss of the battery 2 is reduced, and the safety of the battery 2 is improved.

[0159] In some embodiments, multiple battery units 10 are provided within the housing 20, and the protective member 30 is used to cover the pressure relief holes 111 of the multiple battery units 10 in the axial direction Z. Regardless of which battery unit 10 experiences thermal runaway, the protective member 30 acts as an insulator for high-temperature, high-speed material, reducing the risk of damage to the first wall 21a.

[0160] In some embodiments, the protective member 30 has a flat plate structure, and the thickness direction of the protective member 30 is parallel to the axial direction Z. Exemplarily, the thickness of the protective member 30 is D.

[0161] In some embodiments, the battery comprises a plurality of sequentially arranged battery units 10, wherein the arrangement direction Y of the plurality of battery units 10 is perpendicular to the axial direction Z and the maximum size direction X.

[0162] Figure 8 is a schematic diagram of the structure of a battery according to some other embodiments of this application.

[0163] As shown in Figure 8, in some embodiments, the thickness of the protective member 30 gradually decreases from the middle to both sides in the maximum size direction X perpendicular to the axial direction Z of the pressure relief hole 111, and the thickness direction of the protective member 30 is parallel to the axial direction Z. The portion of the protective member 30 with the greatest thickness covers at least a portion of the pressure relief hole 111 in the axial direction Z.

[0164] The thickest part of the protective member 30 faces the pressure relief hole 111, allowing it to withstand relatively large thermal shocks and reducing the risk of the protective member 30 being breached. The thermal shocks received by both ends of the protective member 30 are relatively small, allowing them to have a relatively small thickness, reducing the weight and volume of the protective member 30 and improving the energy density of the battery 2.

[0165] In some embodiments, the protective member 30 has a sloped surface on one side facing the pressure relief hole 111, which guides the gas flow and reduces the thermal shock experienced by the protective member 30. Figure 9 is a schematic diagram of the structure of a battery according to some other embodiments of this application, and Figure 10 is an enlarged schematic view of block B in Figure 9.

[0166] As shown in Figures 9 and 10, in some embodiments, the protective member 30 includes a base region 30a and a reinforcing region 30b connected to the base region 30a, wherein the size of the reinforcing region 30b along the axial direction Z is larger than the size of the base region 30a along the axial direction Z. In the axial direction Z, the reinforcing region 30b covers at least a portion of the pressure relief hole 111.

[0167] The reinforced area 30b faces the pressure relief hole 111 and can withstand relatively large thermal shocks, reducing the risk of the protective member 30 being punctured.

[0168] In some embodiments, the reinforcing region 30b completely covers the pressure relief hole 111 in the axial direction Z. The reinforcing region 30b can withstand relatively large thermal shocks, thus reducing the risk of the protective member 30 being breached. The base region 30a does not face the pressure relief hole 111 in the axial direction Z, and it may have a relatively small thickness in order to reduce the weight and volume of the protective member 30 and improve the energy density of the battery 2.

[0169] In some embodiments, the size of the protective member 30 is K and the size of the reinforced area 30b is K1 in the maximum size direction X perpendicular to the axial direction Z of the pressure relief hole 111. K, K1, and G are such that K > K1 and (K / K1) / G ≤ 2 × 10 -1 Satisfy s / L.

[0170] The higher the gas flow rate G generated when the battery unit 10 experiences thermal runaway, the more severe the thermal shock to the protective member 30 caused by the gas released by the battery unit 10, and the higher the size requirement for the reinforcement region 30b of the protective member 30. The inventor calculated the value of (K / K1) / G to be 2 × 10⁻⁶. -1 By limiting the ratio to s / L or less, the reinforcing region 30b and the substrate region 30a block the high-temperature fast material, reducing the amount of heat transferred to the first wall 21a and thus lowering the temperature of the first wall 21a.

[0171] In some embodiments, there are two base regions 30a, each located on either side of the reinforcement region 30b along the maximum size direction X.

[0172] In some embodiments, the two substrate regions 30a are symmetric with respect to a virtual plane perpendicular to the maximum size direction X.

[0173] In some embodiments, both the reinforcing region 30b and the base region 30a are flat plate structures, and the thickness direction of both the reinforcing region 30b and the base region 30a are parallel to the axial direction Z.

[0174] For example, the thickness of reinforced region 30b is D.

[0175] In some embodiments, the size of the reinforcement region 30b along the axial direction Z is D, and the size of the base region 30a along the axial direction Z is d. In the maximum size direction X perpendicular to the axial direction Z of the pressure relief hole 111, the size of the pressure relief hole 111 is k, and the size of the reinforcement region 30b is K1. D, d, k, and K1 satisfy 0.04 ≤ (K1 / k) / (D / d) ≤ 300.

[0176] As the K1 / k value increases, the proportion of the reinforcement region 30b that is subjected to thermal shock when the battery unit 10 experiences thermal runaway increases, and the thermal runaway protection requirements that the base region 30a must fulfill decrease. Accordingly, the D / d ratio may increase, that is, the thickness requirement of the base region 30a may decrease. As the K1 / k value decreases, the thermal runaway protection requirements that the base region 30a must fulfill increase, and accordingly, the D / d ratio may decrease, that is, the thickness requirement of the base region 30a increases. When K1 / k is sufficiently small, the thermal runaway protection requirement that the substrate region 30a must fulfill is relatively large, there is a minimum value in D / d, i.e., there is a maximum value in d, thereby satisfying the thermal runaway protection requirement of the substrate region 30a. When K1 / k is sufficiently large, the thermal runaway protection requirement that the substrate region 30a must fulfill is relatively small, there is a maximum value in D / d, i.e., there is a minimum value in d, thereby achieving compatibility with the thermal runaway protection requirement while also being economical and reducing design redundancy.

[0177] The inventors reduce the redundancy in the size design of the protective member 30 while maintaining compatibility with thermal protection requirements by limiting the value of (K1 / k) / (D / d) to 0.04-300, thereby reducing the energy density loss of the battery 2 and improving the safety of the battery 2.

[0178] Figure 11 is a schematic diagram of one battery structure according to some other embodiments of this application.

[0179] As shown in Figure 11, in some embodiments, the protective member 30 includes a first protective plate 31 and a second protective plate 32 that are stacked and installed along the axial direction Z, with the portion where the first protective plate 31 and the second protective plate 32 overlap in the axial direction Z and the portion of the second protective plate 32 constituting a reinforcement region 30b, and the portion where the first protective plate 31 and the second protective plate 32 do not overlap in the axial direction Z constituting a base region 30a.

[0180] The material of the first protective plate 31 and the material of the second protective plate 32 may be the same or different.

[0181] The second protective plate 32 may be installed on one side of the first protective plate 31 facing the pressure release mechanism 11, or on the other side of the first protective plate 31 facing away from the pressure release mechanism 11.

[0182] The number of second protective plates 32 may be one or multiple, and the embodiments of this application are not limited thereto.

[0183] The second protective plate 32 may be a flat plate with a uniform thickness, or it may be a plate with an uneven thickness.

[0184] The first protective plate 31 and the second protective plate 32 are laminated together to form a protective member 30 having different thicknesses. This embodiment simplifies the molding process of the protective member 30.

[0185] In some embodiments, the second protective plate 32 is installed on one side of the first protective plate 31 facing the pressure relief mechanism 11.

[0186] This embodiment can improve the flatness of one side of the protective member 30 that is away from the pressure release mechanism 11, and facilitates fixing the protective member 30 to other members.

[0187] In some embodiments, both the first protective plate 31 and the second protective plate 32 are flat plate structures, and the thickness direction of both the first protective plate 31 and the second protective plate 32 are parallel to the axial direction Z.

[0188] In some embodiments, the material of the second protective plate 32 is different from the material of the first protective plate 31. By using different materials for the first protective plate 31 and the second protective plate 32, and combining the properties of these different materials, a protective member 30 with higher thermal shock resistance can be constructed. Compared to the first protective plate 31 and the second protective plate 32 manufactured from the same material, the structure of the protective member 30 can be made more varied when the first protective plate 31 and the second protective plate 32 are manufactured from different materials.

[0189] In some embodiments, the thermal shock resistance of the second protective plate 32 is superior to that of the first protective plate 31.

[0190] In some embodiments, the melting point of the second protective plate 32 is higher than that of the first protective plate 31. For example, the melting point of the second protective plate 32 is higher than 1000°C. The embodiments of this application do not limit the melting point of the first protective plate 31, which may be 1000°C or higher, or 1000°C or lower.

[0191] In some embodiments, the second protective plate 32 is bonded to the first protective plate 31.

[0192] Figure 12 is a schematic diagram of one battery structure according to some other embodiments of this application.

[0193] As shown in Figure 12, in some embodiments, the first protective plate 31 has a flat plate structure, and the thickness direction of the first protective plate 31 is parallel to the axial direction Z. In the maximum size direction X perpendicular to the axial direction Z of the pressure relief hole 111, the size of the second protective plate 32 along the axial direction Z gradually decreases from the middle to both ends.

[0194] The largest portion of the second protective plate 32 along the axial direction Z may face the pressure relief hole 111, thereby reducing the risk of the protective member 30 being punctured by a relatively large thermal shock. The thermal shock received by both ends of the second protective plate 32 is relatively small, and it can have a relatively small thickness, reducing the weight and volume of the second protective plate 32 and improving the energy density of the battery 2.

[0195] In some embodiments, the second protective plate 32 has a slope on one side facing the pressure relief hole 111, which guides the gas flow and reduces the thermal shock experienced by the second protective plate 32.

[0196] Figure 13 is a schematic diagram of one battery structure according to some other embodiments of this application.

[0197] As shown in Figure 13, in some embodiments, there are multiple second protective plates 32, and the multiple second protective plates 32 are installed at intervals.

[0198] In some embodiments, the number of second protective plates 32 is the same as the number of reinforced areas 30b.

[0199] In some embodiments, the second protective plate 32 has a flat plate structure.

[0200] In some embodiments, multiple second protective plates 32 are installed at intervals in the maximum size direction X perpendicular to the axial direction Z of the pressure relief hole 111.

[0201] Figure 14 is a schematic diagram of one battery structure according to several other embodiments of this application.

[0202] As shown in Figure 14, in some embodiments, there are multiple second protective plates 32, and the multiple second protective plates 32 are installed at intervals or in a continuous manner.

[0203] In some embodiments, the first protective plate 31 has a flat plate structure, and the thickness direction of the first protective plate 31 is parallel to the axial direction Z. In the maximum size direction X perpendicular to the axial direction Z of the pressure relief hole 111, the size of each second protective plate 32 along the axial direction Z gradually decreases from the middle to both ends.

[0204] Figure 15 is a schematic diagram of one battery structure according to some other embodiments of this application.

[0205] As shown in Figure 15, in some embodiments, the first wall 21a may be located on the underside of the battery unit 10.

[0206] According to some embodiments of this application, the application further provides a power consumption device comprising a battery of any one of the above embodiments, the battery being used to provide electrical energy to the power consumption device. The power consumption device may be any one of the above-described devices or systems that utilizes the battery.

[0207] Referring to some embodiments of this application, specifically Figures 3 to 7, this application provides a battery 2 comprising a housing 20, a battery unit 10, and a protective member 30. The battery unit 10 is housed within the housing 20. The housing 20 includes a first wall 21a located above the battery unit 10. The battery unit 10 is provided with a pressure relief mechanism 11, which is used to release material inside the battery unit 10 by forming a pressure relief hole 111.

[0208] The protective member 30 is housed within the housing 20 and fixed to the first wall 21a. At least a portion of the protective member 30 is located between the first wall 21a and the pressure relief mechanism 11 and is used to cover the pressure relief hole 111 in the axial direction Z of the pressure relief hole 111. In any direction perpendicular to the axial direction Z, the size of the protective member 30 is always larger than the size of the pressure relief hole 111.

[0209] The minimum size of the portion of the protective member 30 that covers the pressure relief hole 111 in the axial direction Z is D, and the flow rate of the gas released by the battery unit 10 through the pressure relief hole 111 is G, and D and G are 2 × 10 -3 mm·s / L≦D / G≦3.3×10 -1 Meets the mm·s / L requirement.

[0210] The present application will be further described below, with reference to examples.

[0211] To further clarify the purpose of the invention, the technical proposal, and the beneficial technical effects of this application, the application will be described in more detail below, with reference to examples. However, it should be understood that the examples of this application are for interpretive purposes only and do not limit this application, and the examples of this application are not limited to those shown in the specification. Unless specific experimental or operating conditions are specified in the examples, the products are manufactured under normal conditions or under conditions recommended by the material supplier.

[0212] Example 1: (i) Manufacture two identical rectangular battery units, each with a length l1 of 220 mm, a width l2 of 44 mm, and a height l3 of 100 mm.

[0213] (ii) Test the gas flow rate G released by one battery unit through the pressure relief port, where G is 500 L / s.

[0214] (iii) Another battery unit is placed in a sealed enclosure, and a protective member is attached to the wall of the enclosure located above the battery unit (hereinafter referred to as the first wall). The protective member is used to face the pressure relief mechanism of the battery unit and to cover the pressure relief holes. The protective member is a flat plate with a thickness D of 1 mm, and its material is a composite plate made of boron nitride and carbon fiber. In the axial direction of the pressure relief hole, the distance h between the protective member and the pressure relief hole is 15 mm.

[0215] (iv) Trigger thermal runaway in the battery unit inside the housing, causing the battery unit to form pressure relief holes and release material to the outside. During the thermal runaway process of the battery unit, measure the temperature at multiple points on the surface of the protective member separating from the battery unit, and record the highest temperature T1 on the surface of the protective member separating from the battery unit.

[0216] (v) After the thermal runaway of the battery unit has stopped, open the casing and check whether the protective material has been punctured.

[0217] Example 2-9: The test method for Example 2-9 is the same as in Example 1, and the differences between Example 2-9 and Example 1 are shown in Table 1. For example, the flow rate G of the battery unit may be changed by changing the chemical system of the battery unit.

[0218] Comparative Example 1-4: The test method for Comparative Example 1-4 is the same as that for Example 1, and the differences between Comparative Example 1-4 and Example 1 are shown in Table 1.

[0219] [Table 1]

[0220] Referring to Examples 1-9 and Comparative Examples 1-2, the embodiments of this application have a D / G value of 2 × 10 -3 By limiting the temperature to mm·s / L or higher, the risk of the protective material being penetrated can be reduced, thus meeting the thermal protection requirements for the battery.

[0221] Referring to Examples 1-9 and Comparative Examples 3-4, the protective member can block the conduction of heat, reduce the amount of heat transferred to the housing, and lower the temperature of the housing. When the D / G ratio becomes large enough, the temperature of the housing can be brought to a level that meets the requirements. In this example, the D / G value is set to 3.3 × 10⁻⁶. -1 By limiting the value to mm·s / L or less, redundancy in the size design of protective components is reduced, the loss of battery energy density is minimized, and battery safety is improved.

[0222] Example 10: (i) A rectangular battery unit is manufactured, with a length l1 of 220 mm, a width l2 of 44 mm, and a height l3 of 100 mm. The volumetric energy density E of the battery unit is 500 Wh / L.

[0223] (ii) The battery unit is placed in a sealed enclosure, and a protective member is attached to the first wall of the enclosure located above the battery unit. The protective member is used to face the pressure relief mechanism of the battery unit and to cover the pressure relief holes. The protective member is a flat plate with a thickness D of 5 mm, and its material is a composite plate made of boron nitride and carbon fiber. In the axial direction of the pressure relief hole, the distance h between the protective member and the pressure relief hole is 15 mm.

[0224] (iii) Trigger thermal runaway in the battery unit inside the housing, causing the battery unit to form pressure relief holes and release material to the outside. During the thermal runaway process of the battery unit, the temperature is measured at multiple points on the surface of the protective member that separates from the battery unit, and the highest temperature T1 on the surface of the protective member that separates from the battery unit is recorded.

[0225] (iv) After the thermal runaway of the battery unit has stopped, open the casing and check whether the protective material has been punctured.

[0226] Examples 11-15: The test method for Examples 11-15 is the same as in Example 10. The differences between Examples 11-15 and Example 10 are shown in Table 2. For example, the volumetric energy density E of the battery unit may be changed by changing the chemical system of the battery unit.

[0227] Comparative Example 5-8: The test method for Comparative Example 5-8 is as shown in Table 2, referring to Example 10.

[0228] [Table 2]

[0229] Referring to Examples 10-15 and Comparative Examples 5-6, the embodiments of this application have a D / E value of 1 × 10 -3 By limiting the temperature to mm·L / Wh or higher, the risk of the protective material being penetrated can be reduced, thus meeting the thermal protection requirements for the battery.

[0230] Referring to Examples 10-15 and Comparative Examples 7-8, the protective member can block the conduction of heat, reduce the amount of heat transferred to the housing, and lower the temperature of the housing. When the D / E ratio becomes large enough, the temperature of the housing can be made to meet the requirements. In this example, the D / E value is set to 10 × 10 -3 By limiting the energy density to mm·L / Wh or less, the redundancy in the size design of protective components is reduced, the loss of energy density in the battery is minimized, and the safety of the battery is improved.

[0231] Example 16: (i) Manufacture two identical rectangular battery units, each with a length l1 of 220 mm, a width l2 of 44 mm, and a height l3 of 100 mm.

[0232] (ii) The gas flow rate G released by one battery unit through the pressure relief port is tested, and G is 200 L / s. The size k of the pressure relief port is 60 mm in the direction of maximum size perpendicular to the axial direction of the pressure relief port.

[0233] (iii) Another battery unit is placed in a sealed enclosure, and a protective member is attached to the first wall of the enclosure located above the battery unit. The protective member is used to face the pressure relief mechanism of the battery unit and to cover the pressure relief holes. The protective member is a flat plate with a thickness D of 2 mm, and its material is a composite plate made of boron nitride and carbon fiber. In the axial direction of the pressure relief hole, the distance h between the protective member and the pressure relief hole is 15 mm. In the direction of the maximum size of the pressure relief hole, the size K of the protective member is 180 mm.

[0234] (iv) Trigger thermal runaway in the battery unit inside the enclosure, causing the battery unit to form pressure relief holes and release material to the outside. During the thermal runaway process of the battery unit, measure the temperature of the first wall region that is close to the edge in the maximum size direction of the protective member and is not covered by the protective member, and record the maximum temperature T2.

[0235] (v) After the thermal runaway of the battery unit has stopped, open the casing and check whether the protective material has been punctured.

[0236] Examples 17-22: The test method for Examples 17-22 is the same as in Example 16. The differences between Examples 17-22 and Example 16 are shown in Table 3. For example, the flow rate G of the battery unit may be changed by changing the chemical system of the battery unit.

[0237] Comparative Example 9-11: The test method for Comparative Example 9-11 is as shown in Table 3, referring to Example 16. The differences between Comparative Example 9-11 and Example 16 are as shown in Table 3.

[0238] [Table 3]

[0239] Referring to Examples 16-22 and Comparative Example 9, when K=k, some of the gas released through the pressure relief holes may diverge and act on the area of ​​the first wall not covered by the protective member, potentially raising the temperature of the first wall to a relatively high level. The embodiments of this application preferably increase K to be greater than k, thereby increasing the protective area of ​​the protective member, reducing the risk of gas directly impacting the first wall, lowering the temperature of the first wall, and improving safety.

[0240] Referring to Examples 16-22 and Comparative Example 10-11, the examples of this application have a (K / k) / G value of 3 × 10 -3 By limiting the temperature to s / L or higher, the temperature of the portion of the first wall not shielded by the protective material is kept within a certain range, thereby reducing the risk of damage to the first wall.

[0241] Example 23: (i) Manufacture two identical rectangular battery units, each with a length l1 of 220 mm, a width l2 of 44 mm, and a height l3 of 100 mm.

[0242] (ii) The gas flow rate G released by one battery unit through the pressure relief port is tested, and G is 15 L / s. The size k of the pressure relief port is 50 mm in the direction of maximum size perpendicular to the axial direction of the pressure relief port.

[0243] (iii) Another battery unit is placed in a sealed enclosure, and a protective member is attached to the first wall of the enclosure located above the battery unit. The protective member is used to face the pressure release mechanism of the battery unit and to cover the pressure release holes. The protective member has a thicker structure in the middle, that is, it includes a reinforced area in the middle and base areas on both sides, with a thickness D of 2 mm for the reinforced area and a thickness of 1 mm for the base areas. The material of the protective member is a composite plate made of boron nitride and carbon fiber. In the axial direction of the pressure release hole, the reinforced area faces the pressure release hole, and the distance h between the reinforced area and the pressure release hole is 15 mm. In the direction of the maximum size of the pressure release hole, the size K of the protective member is 180 mm, the size K1 of the reinforced area is 60 mm, and the size of each base area is 60 mm.

[0244] (iv) Trigger thermal runaway in the battery unit inside the housing, causing the battery unit to form pressure relief holes and release material to the outside. During the thermal runaway process of the battery unit, measure the temperature at multiple points on the surface of the substrate region separating from the battery unit, and record the highest temperature T3 on the surface of the substrate region separating from the battery unit.

[0245] (v) After the thermal runaway of the battery unit has stopped, open the casing and check whether the protective material has been punctured.

[0246] Examples 24-25: The test method for Examples 24-25 is as described in Example 23. The differences between Examples 24-25 and Example 23 are shown in Table 4.

[0247] Comparative Examples 12-13: The test method for Comparative Examples 12-13 is as shown in Table 4, referring to Example 23.

[0248] [Table 4]

[0249] Referring to Examples 24-25 and Comparative Examples 12-13, the examples of this application have a value of (K / K1) / G of 2 × 10 -1 By limiting the ratio to s / L or less, the reinforcing region and the substrate region block the high-temperature, high-speed material, reducing the amount of heat transferred to the first wall and thus lowering the temperature of the first wall.

[0250] It should be noted that, as long as they do not conflict, the embodiments and features of the embodiments in this application may be combined with each other.

[0251] Finally, it should be noted that the above embodiments are merely for illustrative purposes and not limiting purposes, and although the present application has been described in detail with reference to the above embodiments, those skilled in the art should understand that it is still possible to modify the inventions described in each of the above embodiments or to substitute some of their technical features, but such modifications or substitutions will not cause the essence of the corresponding inventions to deviate from the spirit and scope of the inventions in each of the embodiments of this application.

Claims

1. It is a battery, The enclosure, including the first wall, A battery unit housed within the aforementioned housing, wherein the battery unit is provided with a pressure release mechanism, and the pressure release mechanism is used to form a pressure release hole and release material inside the battery unit, A protective member housed within the housing, wherein at least a portion of the protective member is located between the first wall and the pressure relief mechanism and is used to cover the pressure relief hole in the axial direction of the pressure relief hole. Here, the minimum size of the portion of the protective member that covers the pressure relief hole in the axial direction is D, and the flow rate of the gas released by the battery unit through the pressure relief hole is G, and D and G are 2 x 10 -3 mm・s / L≦D / G≦3.3×10 -1 Includes a protective member that satisfies mm·s / L, The volumetric energy density of the aforementioned battery unit is E, and D and E are, 1 x 10 -3 mm・L / Wh≦D / E≦1×10 -2 Satisfying mm·L / Wh, A battery in which the thermal conductivity of the protective member is less than that of the first wall.

2. D and G are, 2 x 10 -3 mm・s / L≦D / G≦2×10 -1 The battery according to claim 1, satisfying mm·s / L.

3. The battery according to claim 1, wherein the value of D is 0.5 mm to 5 mm.

4. The battery according to claim 1, wherein in any direction perpendicular to the axial direction, the size of the protective member is greater than the size of the pressure relief hole.

5. D and E are, 1 x 10 -3 mm・L / Wh≦D / E≦6×10 -3 A battery according to claim 1, satisfying mm·L / Wh.

6. In the direction of maximum size perpendicular to the axial direction of the pressure relief hole, the size of the pressure relief hole is k, and the size of the protective member along the direction of maximum size is K, and k, K and G are K > k, (K / k) / G ≥ 3 × 10 -3 The battery according to claim 1, satisfying s / L.

7. k, K and G are, (K / k) / G≧8×10 -3 The battery according to claim 6, satisfying s / L.

8. k, K and G are, The battery according to claim 6, satisfying (K / k) / G ≤ 20s / L.

9. The minimum distance in the axial direction between the protective member and the pressure relief hole is h, and h and D are The battery according to claim 1, satisfying 0.2 ≤ h / D ≤ 250.

10. The battery according to claim 1, wherein the protective member has a flat plate structure, and the thickness direction of the protective member is parallel to the axial direction.

11. In the direction of the maximum size of the pressure relief hole perpendicular to the axial direction, the thickness of the protective member gradually decreases from the middle to both sides, and the thickness direction of the protective member is parallel to the axial direction. The battery according to any one of claims 1 to 10, wherein the portion of the protective member with the greatest thickness covers at least a portion of the pressure relief hole in the axial direction.

12. The protective member includes a base region and a reinforcing region connected to the base region, wherein the size of the reinforcing region along the axial direction is larger than the size of the base region along the axial direction. The battery according to any one of claims 1 to 10, wherein in the axial direction, the reinforcing region covers at least a portion of the pressure relief hole.

13. The battery according to claim 12, wherein in the axial direction, the reinforcing region completely covers the pressure relief hole.

14. In the direction of maximum size perpendicular to the axial direction of the pressure relief hole, the size of the protective member is K, and the size of the reinforcement area is K 1 And, K_K 1 And G is, K > K 1 , (K / K 1 ) / G ≤ 2 × 10 -1 The battery according to claim 13, satisfying s / L.

15. The battery according to claim 13, wherein both the reinforcing region and the base region are flat plate structures, and the thickness direction of both the reinforcing region and the base region are parallel to the axial direction.

16. The size of the reinforcement region along the axial direction is D, and the size of the base region along the axial direction is d. In the direction of maximum size perpendicular to the axial direction of the pressure relief hole, the size of the pressure relief hole is k, and the size of the reinforcement region is K. 1 And, D, d, k, and K 1 0.04 ≤ (K 1 The battery according to claim 15, satisfying (k) / (D / d) ≤ 300.

17. The battery according to claim 12, wherein the protective member includes a first protective plate and a second protective plate installed in a stacked manner along the axial direction, the portion where the first protective plate and the second protective plate overlap in the axial direction and the second protective plate constitute the reinforcement region, and the portion where the first protective plate and the second protective plate do not overlap in the axial direction constitutes the base region.

18. The battery according to claim 17, wherein the second protective plate is installed on one side of the first protective plate facing the pressure release mechanism.

19. The battery according to claim 17, wherein the second protective plate is a plurality of plates, and the plurality of second protective plates are installed at intervals.

20. The battery according to claim 19, wherein a plurality of the second protective plates are installed at intervals in the direction of the maximum size perpendicular to the axial direction of the pressure relief hole.

21. The battery according to claim 17, wherein both the first protective plate and the second protective plate are flat plate structures, and the thickness direction of both the first protective plate and the second protective plate are parallel to the axial direction.

22. The first protective plate has a flat plate structure, and the thickness direction of the first protective plate is parallel to the axial direction. The battery according to claim 17, wherein, in the direction of the maximum size of the pressure relief hole perpendicular to the axial direction, the size of the second protective plate along the axial direction gradually decreases from the middle to both ends.

23. The battery according to claim 17, wherein the material of the second protective plate is different from the material of the first protective plate.

24. The battery according to any one of claims 1 to 10, wherein the first wall is located above or below the battery unit.

25. The battery according to any one of claims 1 to 10, wherein the melting point of the protective member is higher than 1000°C.

26. The battery according to any one of claims 1 to 10, wherein the melting point of the protective member is higher than the melting point of the first wall.

27. The protective member is fixed to the first wall, as described in any one of claims 1 to 10.

28. The battery according to claim 27, wherein the protective member is fixed to the first wall by adhesive, welding, fastening, or locking.

29. A power consumption device comprising a battery for providing electrical energy as described in any one of claims 1 to 10.

Citation Information

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