Explosion-proof valve, cover plate assembly, battery cell, battery pack, and power utilization system

By setting a temperature sensing membrane in the explosion-proof valve, it maintains a high opening pressure during normal operation of the battery cell and reduces the pressure when the battery cell is out of control, the problem of poor adaptability of the explosion-proof valve is solved, and fast response and safety protection are achieved.

WO2025175780A1PCT designated stage Publication Date: 2025-08-28BYD CO LTD
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Patent Information

Application Number
PCT/CN2024/123496
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-02-22
Filing Date
2024-10-08
Publication Date
2025-08-28

AI Technical Summary

Technical Problem

The existing explosion-proof valves have poor adaptability to different operating conditions of the battery cell, and cannot avoid error opening when the battery cell is running normally, and respond quickly when the battery cell is out of control.

Method used

A temperature sensing film is installed in the explosion-proof valve, and the material is inversely proportional to the temperature, so that the opening pressure is maintained during normal operation of the battery cell, and the opening pressure is reduced when the battery cell is out of control, so as to enable rapid opening.

Benefits of technology

It improves the response speed of the explosion-proof valve when the battery cell is out of control, ensures the battery cell safety, and reduces the possibility of mistaken opening.

✦ Generated by Eureka AI based on patent content.

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Abstract

An explosion-proof valve, a cover plate assembly, a battery cell, a battery pack, and a power utilization system, the explosion-proof valve comprising: a main body, a rupture disc, and a temperature-sensing film, wherein the main body is provided with a pressure relief hole which passes through the main body in the thickness direction thereof; the rupture disc and the temperature-sensing film are connected to the main body, and cover the pressure relief hole; and the temperature-sensing film is made of plastic.
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Description

Explosion-proof valves, cover assemblies, battery cells, battery packs, and power systems

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0002] This disclosure claims priority to Chinese patent application number 2024102010374, filed with the Patent Office of China on February 22, 2024, entitled “Explosion-proof valve, cover assembly, battery cell, battery pack and power system,” the entire contents of which are incorporated by reference into this disclosure. Technical Field

[0003] The present application relates to the field of battery safety technology, and in particular to an explosion-proof valve, a cover assembly, a battery cell, a battery pack, and a power system. Background Art

[0004] In the related art, regardless of whether the battery cell is out of control or not, the opening pressure of the explosion-proof valve can only be maintained at a constant value, and the explosion-proof valve has poor adaptability to different working conditions of the battery cell.

[0005] Summary of the Invention

[0006] The purpose of this application is to provide an explosion-proof valve, a cover plate assembly, a battery cell, a battery pack and an electrical system, aiming to solve the problem in related technologies that the explosion-proof valve has poor adaptability to various working conditions of the battery cell.

[0007] To achieve the objectives of the present application, in a first aspect, the present application provides an explosion-proof valve, comprising a main body, an explosion-proof disc, and a temperature-sensitive membrane. The main body is provided with a pressure relief hole extending through the thickness thereof; the explosion-proof disc and the temperature-sensitive membrane are connected to the main body and cover the pressure relief hole; the temperature-sensitive membrane is made of plastic so that the critical rupture pressure of the temperature-sensitive membrane is inversely proportional to the temperature of the explosion-proof valve;

[0008] When the temperature of the explosion-proof valve is lower than the preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA1, 0.4Mpa≤PA1≤1.2Mpa;

[0009] When the temperature of the explosion-proof valve is greater than a preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA2, and 0.2 MPa≤PA2≤1 MPa.

[0010] In a possible implementation, the temperature-sensitive membrane is in contact with the explosion-proof disk, and at least a portion of the temperature-sensitive membrane is located on a side of the explosion-proof disk facing away from the main body.

[0011] In a possible implementation, the explosion-proof disk and the temperature-sensitive membrane satisfy the relationship: PA2=X*PA3;

[0012] Wherein, PA2 is the critical pressure value of the rupture of the temperature-sensitive membrane when the temperature of the explosion-proof valve is lower than the preset temperature;

[0013] PA3 is the critical rupture pressure value of the explosion-proof disk;

[0014] X is a constant, and 0.1≤X≤0.5.

[0015] In a possible implementation, the main body includes a first surface and a second surface that are oppositely disposed, and the pressure relief hole passes through the first surface and the second surface;

[0016] The explosion-proof plate is arranged on the first surface, and the temperature-sensitive membrane is arranged on the second surface.

[0017] In a possible implementation, the explosion-proof disk and the temperature-sensitive membrane satisfy the relationship: PA2=Y*PA3;

[0018] Wherein, PA2 is the critical pressure value of the rupture of the temperature-sensitive membrane when the temperature of the explosion-proof valve is lower than the preset temperature;

[0019] PA3 is the critical rupture pressure value of the explosion-proof disk;

[0020] Y is a constant, and 0.2≤Y≤0.6.

[0021] In a possible implementation, the critical rupture pressure value of the explosion-proof disk is PA3, 0.2 MPa≤PA3≤0.8 MPa.

[0022] In a possible implementation, the critical rupture pressure value of the explosion-proof disk is PA3, 0.3 MPa≤PA3≤1 MPa.

[0023] In a possible implementation, the temperature-sensitive film satisfies the relationship: PA3=Z*PA2;

[0024] Wherein, PA2 is the critical pressure value of the temperature-sensitive membrane when the temperature of the explosion-proof valve is lower than the preset temperature;

[0025] PA3 is the critical pressure value of the temperature-sensitive membrane when the temperature of the explosion-proof valve is higher than the preset temperature;

[0026] Z is a constant, and 0≤Z≤0.25.

[0027] In a possible implementation, the preset temperature is T, 55°≤T≤65°.

[0028] In a possible implementation, the temperature-sensitive film includes at least two temperature-sensitive layers stacked sequentially along the axis of the pressure relief hole.

[0029] In a possible implementation, the plastic includes at least one of polypropylene, polyethylene, and polyethylene terephthalate.

[0030] In a possible implementation, the plastic used in each temperature-sensing layer is set to be the same.

[0031] In a possible implementation, the temperature sensing layer includes a first temperature sensing layer, a second temperature sensing layer, and a third temperature sensing layer, and the third temperature sensing layer is connected to the main body;

[0032] The first temperature-sensing layer and the third temperature-sensing layer are made of polypropylene, and the second temperature-sensing layer is made of polyethylene terephthalate.

[0033] In a second aspect, the present application further provides a cover plate assembly, the cover plate assembly including an explosion-proof valve, the explosion-proof valve including a main body, an explosion-proof disc, and a temperature-sensitive membrane, the main body being provided with a pressure relief hole extending through the thickness thereof; the explosion-proof disc and the temperature-sensitive membrane being connected to the main body and covering the pressure relief hole; the temperature-sensitive membrane being made of plastic so that the critical rupture pressure of the temperature-sensitive membrane is inversely proportional to the temperature of the explosion-proof valve;

[0034] When the temperature of the explosion-proof valve is lower than the preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA1, 0.4Mpa≤PA1≤1.2Mpa;

[0035] When the temperature of the explosion-proof valve is greater than a preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA2, and 0.2 MPa≤PA2≤1 MPa.

[0036] In a third aspect, the present application further proposes a battery cell, comprising a cover assembly, the cover assembly comprising an explosion-proof valve, the explosion-proof valve comprising a main body, an explosion-proof disc, and a temperature-sensitive membrane, the main body being provided with a pressure relief hole extending through the thickness thereof; the explosion-proof disc and the temperature-sensitive membrane being connected to the main body and covering the pressure relief hole; the temperature-sensitive membrane being made of plastic so that the critical rupture pressure value of the temperature-sensitive membrane is inversely proportional to the temperature of the explosion-proof valve;

[0037] When the temperature of the explosion-proof valve is lower than the preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA1, 0.4Mpa≤PA1≤1.2Mpa;

[0038] When the temperature of the explosion-proof valve is greater than a preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA2, and 0.2 MPa≤PA2≤1 MPa.

[0039] In a fourth aspect, the present application further provides a battery pack, comprising a battery cell, the battery cell comprising a cover assembly, the cover assembly comprising an explosion-proof valve, the explosion-proof valve comprising a main body, an explosion-proof disc, and a temperature-sensitive membrane, the main body being provided with a pressure relief hole extending through the main body along its thickness; the explosion-proof disc and the temperature-sensitive membrane being connected to the main body and covering the pressure relief hole; the temperature-sensitive membrane being made of plastic so that the critical rupture pressure of the temperature-sensitive membrane is inversely proportional to the temperature of the explosion-proof valve;

[0040] When the temperature of the explosion-proof valve is lower than the preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA1, 0.4Mpa≤PA1≤1.2Mpa;

[0041] When the temperature of the explosion-proof valve is greater than a preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA2, and 0.2 MPa≤PA2≤1 MPa.

[0042] In a fifth aspect, the present application further proposes an electricity system, comprising a battery pack, the battery pack comprising a cover assembly, the cover assembly comprising an explosion-proof valve, the explosion-proof valve comprising a main body, an explosion-proof disc, and a temperature-sensitive membrane, the main body being provided with a pressure relief hole extending through the main body along its thickness; the explosion-proof disc and the temperature-sensitive membrane being connected to the main body and covering the pressure relief hole; the temperature-sensitive membrane being made of plastic so that the critical rupture pressure of the temperature-sensitive membrane is inversely proportional to the temperature of the explosion-proof valve;

[0043] When the temperature of the explosion-proof valve is lower than the preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA1, 0.4Mpa≤PA1≤1.2Mpa;

[0044] When the temperature of the explosion-proof valve is greater than a preset temperature, the critical pressure value at which both the explosion-proof disc and the temperature-sensitive membrane rupture is PA2, and 0.2 MPa≤PA2≤1 MPa.

[0045] The technical solution of the present invention is to install a temperature-sensitive membrane in the explosion-proof valve. When the battery cell is operating normally, the temperature of the explosion-proof valve is lower than the preset temperature. The temperature-sensitive membrane and the explosion-proof disc jointly cover the pressure relief hole. At this time, the opening pressure PA1 of the explosion-proof valve is maintained between 0.4Mpa and 1.2Mpa, thereby preventing the explosion-proof valve from being accidentally opened. When the battery cell is out of control, the temperature of the explosion-proof valve is higher than the preset temperature, the temperature-sensitive membrane is softened, and the opening pressure PA2 of the explosion-proof valve is reduced to between 0.2Mpa and 1Mpa. In this way, the explosion-proof valve can be opened in advance under the action of the battery cell pressure, thereby improving the response speed of the explosion-proof valve. BRIEF DESCRIPTION OF THE DRAWINGS

[0046] In order to more clearly illustrate the implementation methods of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the implementation methods or the description of the prior art. Obviously, the drawings described below are only some implementation methods of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0047] FIG1 is a schematic structural diagram of an exemplary embodiment of an explosion-proof valve provided by the present invention;

[0048] FIG2 is a cross-sectional view of an exemplary embodiment of an assembly of the explosion-proof disk, the temperature-sensitive membrane, and the main body in FIG1 ;

[0049] FIG3 is a schematic structural diagram of the main body in FIG1 ;

[0050] FIG4 is a front view of an exemplary embodiment of a burst-proof disk and a temperature-sensitive membrane provided by the present invention;

[0051] FIG5 is a cross-sectional view of FIG4;

[0052] FIG6 is an enlarged view of FIG5 at position S;

[0053] FIG7 is a schematic structural diagram of the temperature-sensitive membrane in FIG1 ;

[0054] FIG8 is a cross-sectional view of another embodiment of the assembly of the explosion-proof disk, the temperature-sensitive membrane, and the main body in FIG1 ;

[0055] FIG9 is a simplified schematic diagram of an exemplary embodiment of the power system provided by the present invention. DETAILED DESCRIPTION

[0056] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0057] It should be noted that when a component is referred to as being "fixed to" another component, it may be directly on the other component or there may be an intermediate component. When a component is referred to as being "connected to" another component, it may be directly connected to the other component or there may be an intermediate component.

[0058] Unless otherwise defined, all technical and scientific terms used in this application have the same meanings as those commonly understood by those skilled in the art to which this application belongs. The terms used in this specification are for the purpose of describing specific embodiments only and are not intended to limit this application. The term "and / or" as used in this application includes any and all combinations of one or more of the relevant listed items.

[0059] The following describes some embodiments of the present application in detail with reference to the accompanying drawings. In the absence of conflict, the following embodiments and features therein may be combined with each other.

[0060] Referring to Figure 9 , the present invention proposes a power system 700 , which can be applied to vehicles, industrial production lines, and household appliances, without limitation in the present invention. Taking a vehicle as an example, when the power system 700 is applied to a vehicle, the vehicle can be an electric vehicle, a fuel vehicle, or a hybrid vehicle, without limitation in the present invention. The vehicle can be a sedan, an off-road vehicle, a truck, or a forklift, without limitation in the present invention.

[0061] The power system 700 includes a battery pack 600 and power-consuming devices. The power-consuming devices are mounted on the vehicle's body. These power-consuming devices can be the vehicle's engine, the vehicle's dashboard, or even the vehicle's doors or windows, though this is not a limitation of the present invention. The battery pack 600 is located within the vehicle's mounting cavity and connected to the power-consuming devices. The battery pack 600 stores electrical energy and releases it when the devices need it, maintaining normal operation.

[0062] The battery pack 600 includes a housing and battery cells 500. The housing serves as the main body of the battery pack 600, providing support and connection for the various components of the battery pack 600. The housing also houses a cell compartment, which houses the battery cells 500. The battery cells 500 serve as the energy source for the battery pack 600, storing and releasing electrical energy.

[0063] The battery cell 500 includes a housing, a cover assembly 400, and a pole core. The housing forms a chamber with an opening on one side, which contains an electrolyte. The pole core is housed in the chamber and reacts with the electrolyte in the chamber to store and release electrical energy. The cover assembly 400 is placed over the opening of the chamber and is used to seal the chamber to prevent dust and impurities from entering the chamber, maintaining stable operation of the battery cell 500 within the chamber.

[0064] The cover plate assembly 400 includes a cover plate and an explosion-proof valve, and the cover plate is arranged to cover the opening of the accommodating chamber. The explosion-proof valve 100 is arranged on the cover plate. The explosion-proof valve 100 is used to be opened when the pressure in the accommodating chamber exceeds the preset opening pressure, thereby releasing the air pressure in the accommodating chamber, thereby ensuring the safe operation of the battery cell 500 and the surrounding battery cells 500. During daily use of the explosion-proof valve 100, designers usually hope that the pressure of the explosion-proof valve 100 can change with the working conditions of the battery cell 500, that is, when the battery cell 500 is in normal working conditions, the explosion-proof valve 100 can have a higher opening pressure to ensure that the explosion-proof valve 100 will not be opened by mistake. When the battery cell 500 is out of control, the explosion-proof valve 100 can have a smaller opening pressure to increase the opening speed of the explosion-proof valve 100 and ensure the safety of the battery cell 500.

[0065] However, in the related art, regardless of whether the battery cell is out of control or not, the opening pressure of the explosion-proof valve can only be maintained at a constant value, and the explosion-proof valve has poor adaptability to different working conditions of the battery cell.

[0066] To solve the above problem, please refer to Figure 1. In the present invention, the explosion-proof valve 100 includes a main body 1, an explosion-proof disc 2, and a temperature-sensitive membrane 3. The main body 1 is provided with a pressure relief hole 11 extending through its thickness. The explosion-proof disc 2 is connected to the main body 1 and covers the pressure relief hole 11. The temperature-sensitive membrane 3 is connected to the main body 1 and covers the pressure relief hole 11. The temperature-sensitive membrane 3 is made of plastic so that the critical pressure value of the rupture of the temperature-sensitive membrane 3 is inversely proportional to the temperature of the explosion-proof valve 100. When the temperature of the explosion-proof valve 100 is lower than the preset temperature, the critical pressure value at which both the explosion-proof disc 2 and the temperature-sensitive membrane 3 rupture is PA1, 0.4Mpa≤PA1≤1.2Mpa; when the temperature of the explosion-proof valve 100 is higher than the preset temperature, the critical pressure value at which both the explosion-proof disc 2 and the temperature-sensitive membrane 3 rupture is PA2, 0.2Mpa≤PA2≤1Mpa.

[0067] The technical solution of the present invention is to install a temperature-sensitive membrane 3 in the explosion-proof valve 100. When the battery cell 500 is operating normally, the temperature of the explosion-proof valve 100 is lower than the preset temperature. The temperature-sensitive membrane 3 and the explosion-proof disc 2 are jointly covered with the pressure relief hole 11. At this time, the opening pressure PA1 of the explosion-proof valve 100 is maintained between 0.4Mpa and 1.2Mpa, thereby preventing the explosion-proof valve 100 from being accidentally opened. When the battery cell 500 is out of control, the temperature of the explosion-proof valve 100 is higher than the preset temperature, the temperature-sensitive membrane 3 is softened, and the opening pressure PA2 of the explosion-proof valve 100 is reduced to between 0.2Mpa and 1Mpa. The explosion-proof valve 100 can be opened prematurely under the pressure of the battery cell 500, protecting the safety of the battery cell 500.

[0068] Hereinafter, various components of the explosion-proof valve 100 provided by the present invention will be described in detail with reference to the accompanying drawings.

[0069] Please refer to Figures 2 and 3. The explosion-proof valve 100 provided by the present invention includes a main body 1. The main body 1 serves as the main body of the explosion-proof valve 100 and is used to support and connect the various components of the explosion-proof valve 100. The main body 1 is connected to the cover plate. The main body 1 and the cover plate can be formed as one piece, or they can be formed separately and then connected to each other. In an embodiment of the present invention, the main body 1 and the cover plate are formed as one piece. The main body 1 can serve as the main structure of the explosion-proof valve 100 and is used to support and connect the explosion-proof disc 2 and the temperature-sensitive membrane 3. It can also serve as the main structure of the cover plate assembly 400, which is covered at the opening of the accommodating cavity and supports and connects other components provided in the cover plate assembly 400, such as the pole and the spacer.

[0070] The main body 1 is provided with a pressure relief hole 11, which communicates with the accommodating chamber. The explosion-proof disk 2 is connected to the main body 1. The explosion-proof disk 2 and the main body 1 can be connected by adhesive bonding, heat fusion bonding, or welding, which is not limited in the present invention. The explosion-proof disk 2 is made of metal, which can be aluminum, iron, or steel, which is not limited in the present invention.

[0071] In one embodiment of the present invention, the explosion-proof disc 2 is welded to the main body 1. A fixed portion is formed on the outer edge of the explosion-proof disc 2 by welding, and the explosion-proof disc 2 is connected to the main body 1 via the fixed portion. During the welding process between the explosion-proof disc 2 and the main body 1, weld veins will form around the fixed portion. In this embodiment, the outer edge of the orthographic projection of the fixed portion is located within the orthographic projection of the temperature-sensitive membrane 3. In this way, the weld veins around the fixed portion are shielded by the temperature-sensitive membrane 3, thereby preventing welding foreign matter from falling into the accommodating cavity during the welding of the explosion-proof disc 2 and the main body 1, thereby affecting the normal use of the electrode core in the accommodating cavity.

[0072] Please refer to Figure 4. The explosion-proof disc 2 is covered on the pressure relief hole 11. The explosion-proof disc 2 is provided with a notched groove 21 for adjusting the critical pressure value of the explosion-proof disc 2. The notched groove 21 is provided on the side of the explosion-proof disc 2 facing the temperature-sensitive membrane 3. The outer edge of the notched groove 21 is surrounded to form a pressure relief area 211. When the pressure on the explosion-proof disc 2 is greater than the critical pressure value of the explosion-proof disc 2, the pressure will first break through the pressure relief area 211 and be released. By adjusting the depth of the notched groove 21, the critical pressure value of the explosion-proof disc 2 can be adjusted. It should be noted that the critical pressure value of the explosion-proof disc 2 refers to the minimum pressure value required to cause the explosion-proof disc 2 to rupture. When the pressure on the explosion-proof disc 2 is greater than the critical pressure value of the explosion-proof disc 2, the explosion-proof disc 2 ruptures, thereby allowing the pressure in the accommodating cavity to be released through the pressure relief hole 11.

[0073] To ensure that the critical rupture pressure of explosion-proof disc 2 meets the requirements of explosion-proof valve 100, the critical rupture pressure of explosion-proof disc 2 is PA3. PA3 must satisfy the relationship: 0.2Mpa ≤ PA3 ≤ 0.8Mpa or 0.3Mpa ≤ PA3 ≤ 1Mpa. 0.2Mpa ≤ PA3 ≤ 0.8Mpa is the critical rupture pressure of explosion-proof disc 2 when used in iron-lithium batteries, and 0.3Mpa ≤ PA3 ≤ 1Mpa is the critical rupture pressure of explosion-proof disc 2 when used in ternary lithium batteries. Testing has shown that within this critical rupture pressure limit, the opening pressure of explosion-proof valve 100 is guaranteed to exceed the safe opening pressure, reducing the possibility of accidental opening of explosion-proof valve 100. Furthermore, if the battery cell 500 loses control, the explosion-proof disc 2 can be quickly breached by the air pressure within the containment chamber, thereby improving the response speed of explosion-proof valve 100.

[0074] Please refer to Figures 5 and 6. To ensure that the explosion-proof disc 2 can meet the above-mentioned critical rupture pressure value requirements, in one embodiment of the present application, the explosion-proof disc 2 satisfies at least one of the following relationships: 0.02mm≤H≤0.1mm, 0.2mm≤J≤1mm. Here, H is the minimum distance from the bottom of the notched groove 21 to the side of the temperature-sensitive membrane 3 facing away from the explosion-proof disc 2, and J is the thickness of the temperature-sensitive membrane 3. Within this size limit, it can ensure that the opening pressure of the explosion-proof valve 100 is greater than the safe opening pressure, reducing the possibility of the explosion-proof valve 100 being accidentally opened. It can also ensure that when the battery cell 500 loses control, the explosion-proof disc 2 can be quickly broken by the air pressure in the containment chamber. This in turn improves the response speed of the explosion-proof valve 100.

[0075] In one embodiment of the present invention, the outer edge of the orthographic projection of the notched groove 21 is located within the orthographic projection of the temperature-sensitive membrane 3, so that the entire pressure relief area 211 is covered within the temperature-sensitive membrane 3, thereby increasing the contact area between the temperature-sensitive membrane 3 and the pressure relief area 211, thereby reducing the possibility of the pressure in the accommodating cavity passing through the temperature-sensitive membrane 3 and directly acting on the pressure relief area 211, thereby increasing the opening pressure of the explosion-proof valve 100 and reducing the possibility of the explosion-proof valve 100 being opened by mistake.

[0076] In one embodiment of the present invention, the pressure relief area 211 and the temperature-sensitive membrane 3 satisfy the relationship: 1mm≤FG≤1.5mm, where F is the length of the temperature-sensitive membrane 3 along the length of the explosion-proof valve 100, G is the length of the pressure relief area 211 along the length of the explosion-proof valve 100, and FG is the difference between the length of the temperature-sensitive membrane 3 along the length of the explosion-proof valve 100 and the length of the pressure relief area 211 along the length of the explosion-proof valve 100. Within this size limit, the temperature-sensitive membrane 3 can be fully covered with the pressure relief area 211, while also saving material for the temperature-sensitive membrane 3 and reducing the manufacturing cost of the temperature-sensitive membrane 3.

[0077] The temperature-sensitive membrane 3 is connected to the main body 1. The temperature-sensitive membrane 3 can be adhered to the main body 1 by glue or by hot melting. The temperature-sensitive membrane 3 is used to cover the pressure relief hole 11 together with the explosion-proof plate 2. The temperature-sensitive membrane 3 is made of plastic. The plastic can be polypropylene, polyethylene, or polyethylene glycol terephthalate. The plastic is used to make the critical rupture pressure value of the temperature-sensitive membrane 3 inversely proportional to the temperature of the explosion-proof valve 100. When the battery cell 500 is in normal working conditions, the temperature-sensitive membrane 3 and the explosion-proof plate 2 jointly cover the pressure relief hole 11 of the main body 1, thereby increasing the opening pressure of the pressure relief hole 11 and reducing the risk of the pressure relief hole 11 being opened by mistake. When the battery cell 500 is out of control, the high temperature after the battery cell 500 is out of control will cause the temperature-sensitive membrane 3 to be softened quickly, thereby reducing the critical rupture pressure value of the temperature-sensitive membrane 3 and reducing the opening pressure of the explosion-proof valve 100, thereby achieving the purpose of opening the valve in advance.

[0078] To facilitate the explanation of the beneficial effects of the early opening of the temperature-sensitive membrane 3, it is assumed that the safety opening pressure of the explosion-proof valve 100 is 1 MPa. The safety opening pressure refers to the minimum opening pressure that each qualified explosion-proof valve 100 must have. If the opening pressure of the explosion-proof valve 100 is less than the safety opening pressure, the explosion-proof valve 100 will be opened in advance, affecting the normal use of the battery cell 500. The opening pressure of the explosion-proof valve in the related art and the explosion-proof valve provided by the present invention are both the safety opening pressure. Since the opening pressure of the explosion-proof valve 100 is constant in the related art, the air pressure in the accommodating chamber needs to reach 1 MPa in the related art before the explosion-proof valve 100 can be opened. In the present invention, the critical rupture pressure value of the temperature-sensitive membrane 3 can be set to 0.4 MPa, and the critical rupture pressure value of the explosion-proof disc 2 can be set to 0.6 MPa. At this time, the opening pressure of the explosion-proof valve 100 is also 1 MPa, which meets the minimum opening pressure of the explosion-proof valve 100. When the battery cell 500 loses control, the temperature-sensitive membrane 3 softens, and the critical rupture pressure of the temperature-sensitive membrane 3 drops to 0. At this point, the opening pressure of the explosion-proof valve 100 is only 0.6 MPa, the critical rupture pressure of the explosion-proof disc 2. In other words, the air pressure in the storage chamber of the battery cell 500 only needs to reach 0.6 MPa to open the explosion-proof valve 100. Compared with related technologies, the explosion-proof valve 100 of the present invention requires less opening pressure, has a faster response speed, and has higher safety performance for the battery cell 500.

[0079] The default temperature of explosion-proof valve 100 is T, 55° ≤ T ≤ 65°. Within this dimensional limit, the temperature-sensitive membrane 3 is prevented from prematurely softening, which could cause premature opening of the explosion-proof valve 100. It also prevents delayed softening of the temperature-sensitive membrane 3, which could affect the response speed of the explosion-proof valve 100 and the safety performance of the battery cell 500. In particular, when T = 60°, the temperature-sensitive membrane 3 achieves a better balance between opening force and response speed.

[0080] The explosion-proof disc 2 determines the opening pressure of the explosion-proof valve 100 when the battery cell 500 is out of control, and the temperature-sensitive membrane 3 determines the opening pressure of the explosion-proof valve 100 when the battery cell 500 is in a normal working state. In order to meet the above-mentioned change relationship of the opening pressure of the explosion-proof valve, in one embodiment of the present application, the temperature-sensitive membrane 3 satisfies the relationship: PA3=Z*PA2; wherein PA2 is the critical rupture pressure value of the temperature-sensitive membrane 3 when the temperature of the explosion-proof valve 100 is lower than the preset temperature; PA3 is the critical rupture pressure value of the temperature-sensitive membrane 3 when the temperature of the explosion-proof valve 100 is higher than the preset temperature; Z is a constant, and 0≤Z≤0.25. Tests have shown that when the temperature of explosion-proof valve 100 reaches 60°C, the critical rupture pressure of temperature-sensitive membrane 3 can be reduced to 1 / 4 of the critical rupture pressure of temperature-sensitive membrane 3 before the battery cell 500 loses control. When the temperature of explosion-proof valve 100 reaches 80°C, the critical rupture pressure of temperature-sensitive membrane 3 can be reduced to 1 / 20 of the critical rupture pressure of temperature-sensitive membrane 3 before the battery cell 500 loses control. When the temperature of explosion-proof valve 100 reaches 120°C, the critical rupture pressure of temperature-sensitive membrane 3 can be reduced to 0. In this way, the influence of temperature-sensitive membrane on the opening force of explosion-proof valve 100 is minimized when battery cell 500 loses control, thereby improving the response speed of explosion-proof valve 100.

[0081] In order to satisfy the above relationship, the plastic used for the temperature-sensitive membrane 3 includes at least one of polypropylene, polyethylene and polyethylene glycol terephthalate. The thickness of the temperature-sensitive membrane 3 is A, 0.05mm≤A≤0.5mm. After experimental testing, under the restrictions of the above materials and dimensions, it can not only ensure that the temperature-sensitive membrane 3 maintains a high opening force when the battery cell 500 is in a normal state, thereby reducing the possibility of the explosion-proof valve 100 being opened by mistake, but also ensure that the temperature-sensitive membrane 3 can be quickly melted when the battery cell 500 is out of control, thereby improving the response speed of the explosion-proof valve 100.

[0082] Please refer to Figure 7. Due to the limitations of existing material molding technology, micropores will be formed on the surface of the temperature-sensitive membrane 3 during molding, and the thicker the molding thickness of the temperature-sensitive membrane 3, the more micropores there are on the surface of the temperature-sensitive membrane 3. When the temperature-sensitive membrane 3 contacts the electrolyte in the battery cell 500, the electrolyte will penetrate into the micropores, thereby accelerating the corrosion of the temperature-sensitive membrane 3. To solve the above problem, please refer to Figure 7. In one embodiment of the present invention, the temperature-sensitive membrane 3 includes a plurality of temperature-sensitive layers 31, and the two temperature-sensitive layers 31 are stacked and interconnected in sequence along the axial direction of the pressure relief hole 11 to form the final temperature-sensitive membrane 3. The number of layers of the temperature-sensitive layer 31 can be set to two layers, or three layers, or four layers, and the present invention does not limit this. The present invention reduces the number of micropores on the surface of the temperature-sensitive membrane 3 and extends the service life of the temperature-sensitive membrane 3 by disassembling the thicker temperature-sensitive membrane 3 into a plurality of thinner temperature-sensitive layers 31.

[0083] The material of each temperature-sensing layer 31 can be the same or different, and the present invention does not limit this. In one embodiment of the present invention, the material of each temperature-sensing layer 31 is set to be the same. In this way, the melting point of each temperature-sensing layer 31 is kept consistent, thereby reducing the difficulty of hot-melt connection of each temperature-sensing layer 31 and improving the production efficiency of the temperature-sensing film 3.

[0084] When the material of each temperature-sensing layer 31 is set to be the same, the material of the temperature-sensing layer 31 can be polypropylene, polyethylene, or polyethylene terephthalate. The present invention is not limited to this. In one embodiment of the present invention, the material of each temperature-sensing layer 31 includes polyethylene. Compared with other materials, polyethylene has higher adhesion to metal, which can improve the stability of the connection between the temperature-sensing film 3 and the main body 1.

[0085] To ensure that each temperature-sensitive layer 31 is made of the same material, the temperature-sensitive film 3 satisfies the equation: PA3 = Z * PA2. In one embodiment of the present application, the thickness of the temperature-sensitive film 3 is A, 0.12mm ≤ A ≤ 0.18mm, and the thickness of each temperature-sensitive layer 31 is B, 0.04mm ≤ B ≤ 0.06mm. Within this size constraint, the temperature-sensitive film 3, composed of multiple temperature-sensitive layers 31 of the same material, will neither soften too quickly, causing premature opening of the explosion-proof valve 100, nor soften too slowly, affecting the response speed of the explosion-proof valve 100.

[0086] The material of each temperature-sensing layer 31 can also be set to be different. Specifically, in this embodiment, the temperature-sensing layer 31 includes a first temperature-sensing layer 31a, a second temperature-sensing layer 31b, and a third temperature-sensing layer 31c. The third temperature-sensing layer 31c is connected to the main body 1. The first temperature-sensing layer 31a and the third temperature-sensing layer 31c are made of polypropylene, and the second temperature-sensing layer 31b is made of polyethylene terephthalate. The second temperature-sensing layer 31b serves as the main body of the temperature-sensing membrane 3. Polyethylene terephthalate can effectively improve the ductility of the second temperature-sensing layer 31b, thereby increasing the opening force of the explosion-proof valve 100 and reducing the possibility of the explosion-proof valve 100 being accidentally opened. The first temperature-sensing layer 31a and the third temperature-sensing layer 31c are provided on both sides of the second temperature-sensing layer 31b. The first temperature-sensing layer 31a and the third temperature-sensing layer 31c are made of polypropylene with relatively high hardness. In this way, the second temperature-sensing layer 31b is protected to prevent the second temperature-sensing layer 31b from being punctured by other objects during the assembly process of the explosion-proof valve 100, thereby improving the yield rate of the explosion-proof valve 100.

[0087] To ensure that the material of each temperature-sensitive layer 31 is different, the temperature-sensitive film 3 satisfies the relationship: PA3 = Z * PA2. In one embodiment of the present application, the temperature-sensitive film 3, the first temperature-sensitive layer 31a, the second temperature-sensitive layer 31b, and the third temperature-sensitive layer 31c satisfy at least one of the following relationships: 0.07mm≤A≤0.13mm, 0.02mm≤C≤0.04mm, 0.03mm≤D≤0.05mm, and 0.02mm≤E≤0.04mm, where A is the thickness of the temperature-sensitive film 3, C is the thickness of the first temperature-sensitive layer 31a, D is the thickness of the second temperature-sensitive layer 31b, and E is the thickness of the third temperature-sensitive layer 31c. Within this size limit, the temperature-sensitive film 3 composed of multiple temperature-sensitive layers 31 of the same material will neither cause the explosion-proof valve 100 to open prematurely due to excessive softening, nor will it affect the response speed of the explosion-proof valve 100 due to excessive softening.

[0088] Please refer to Figure 2. There are many ways to set up the explosion-proof disc 2 and the temperature-sensitive membrane 3. The explosion-proof disc 2 and the temperature-sensitive membrane 3 can be covered on the pressure relief hole 11 along the same side of the main body 1, or can be covered on both ends of the pressure relief hole 11 along both sides of the main body 1. The present invention does not limit this. In one embodiment of the present invention, the temperature-sensitive membrane 3 and the explosion-proof disc 2 are arranged on the side of the main body 1 facing the accommodating cavity, the temperature-sensitive membrane 3 is in contact with the explosion-proof disc 2, and the temperature-sensitive membrane 3 is at least partially located on the side of the explosion-proof disc 2 away from the main body 1. When the battery cell 500 is in normal working condition, the temperature-sensitive membrane 3 and the explosion-proof disc 2 are in contact with each other and support each other, thereby increasing the opening pressure of the explosion-proof valve 100. When the battery cell 500 is out of control, the temperature-sensitive membrane 3 is softened, and the critical rupture pressure value of the temperature-sensitive membrane 3 is reduced, so as to increase the opening speed of the explosion-proof valve 100 when the battery cell 500 is out of control. At the same time, since the temperature-sensitive membrane 3 and the explosion-proof disk 2 are arranged along the same side of the main body 1, the temperature-sensitive membrane 3, the explosion-proof disk 2 and the main body 1 can be connected to each other through only one hot melt, thereby improving the assembly efficiency of the explosion-proof valve 100.

[0089] To improve the stability of the explosion-proof disc 2, in one embodiment of the present invention, a mounting groove 12 is provided on one side of the main body 1. The mounting groove 12 is connected to the pressure relief hole 11. The mounting groove 12 has a notch on the side away from the pressure relief hole 11. The explosion-proof disc 2 is disposed within the mounting groove 12; the temperature-sensitive membrane 3 is covered in the notch. The provision of the mounting groove 12, on the one hand, can provide positioning for the installation of the explosion-proof disc 2, thereby improving the stability of the connection between the explosion-proof disc 2 and the main body 1. On the other hand, the mounting groove 12 can reduce the height of the explosion-proof disc 2 protruding from the main body 1, thereby leaving space for the temperature-sensitive membrane 3 to extend outward under the action of pressure, thereby increasing the opening pressure of the explosion-proof valve 100 and reducing the possibility of the explosion-proof valve 100 being accidentally opened.

[0090] When the temperature-sensitive membrane 3 and the explosion-proof disc 2 are attached to each other, in order to ensure that the explosion-proof valve 100 can be opened in time when the battery cell 500 is out of control. In one embodiment of the present invention, the explosion-proof disc 2 and the temperature-sensitive membrane 3 satisfy the relationship: PA2 = X * PA3; wherein PA2 is the critical rupture pressure value of the temperature-sensitive membrane 3 when the temperature of the explosion-proof valve 100 is lower than the preset temperature, PA3 is the critical rupture pressure value of the explosion-proof disc 2, X is a constant, and X satisfies 0.1≤X≤0.5. That is, when the temperature-sensitive membrane 3 and the explosion-proof disc 2 are attached to each other, the critical rupture pressure value of the temperature-sensitive membrane 3 when the temperature of the explosion-proof valve 100 is lower than the preset temperature is between one-tenth and one-half of the critical rupture pressure value of the explosion-proof disc 2. Under the constraints of this relationship, the opening pressure of the explosion-proof valve 100 will not be excessively concentrated on the explosion-proof disc 2, which will cause the explosion-proof disc 2 to be difficult to open after the temperature-sensitive membrane 3 softens. It will not cause the opening pressure of the explosion-proof valve 100 to be excessively concentrated on the temperature-sensitive membrane 3, thereby increasing the thickness of the temperature-sensitive membrane 3, prolonging the softening time of the temperature-sensitive membrane 3, and reducing the response speed of the explosion-proof valve 100.

[0091] Referring to Figure 8 , in other embodiments of the present invention, the explosion-proof disc 2 and the temperature-sensitive membrane 3 may be disposed on opposite sides of the main body 1. Specifically, in one embodiment of the present invention, the main body 1 includes a first surface 13 and a second surface 14 disposed opposite each other, with the second surface 14 facing the receiving cavity. A pressure relief hole 11 extends through both surfaces 13 and 14. The explosion-proof disc 2 is disposed on the first surface 13, and the temperature-sensitive membrane 3 is disposed on the second surface 14. When the temperature-sensitive membrane 3 is subjected to pressure from the receiving cavity, it can expand and deform into the pressure relief hole 11, eventually contacting the explosion-proof disc 2 on the other side of the pressure relief hole 11. Thereby, the membrane 3 and the explosion-proof disc 2 share the pressure from the receiving cavity, thereby increasing the opening pressure of the explosion-proof valve 100 and reducing the possibility of accidental opening of the explosion-proof valve 100. The pressure relief hole 11 also leaves space for the expansion of the temperature-sensitive membrane 3, thereby increasing the critical rupture pressure of the temperature-sensitive membrane 3, increasing the opening pressure of the explosion-proof valve 100, and reducing the possibility of accidental opening of the explosion-proof valve 100.

[0092] It can be understood that in the above embodiment, the depth of the pressure relief hole 11 affects the critical pressure value of the rupture of the temperature-sensitive membrane 3. If the depth of the pressure relief hole 11 is too deep, the temperature-sensitive membrane 3 will not be able to contact the explosion-proof disc 2, thereby affecting the normal use of the temperature-sensitive membrane 3. If the depth of the pressure relief hole 11 is too shallow, it will reduce the expansion space of the temperature-sensitive membrane 3, thereby reducing the critical pressure value of the rupture of the temperature-sensitive membrane 3. To solve the above problem, in one embodiment of the present invention, the depth of the pressure relief hole 11 is K, 0.5mm≤K≤2mm. Under this size limit, it can ensure that the temperature-sensitive membrane 3 can fit with the explosion-proof disc 2, and it can also ensure that the temperature-sensitive membrane 3 has a certain ductility, thereby increasing the critical pressure value of the rupture of the temperature-sensitive membrane 3, increasing the opening pressure of the explosion-proof valve 100, and reducing the possibility of the explosion-proof valve 100 being opened by mistake.

[0093] It can be understood that since the pressure relief hole 11 can increase the extension distance of the temperature-sensitive membrane 3 and thus increase the critical rupture pressure value of the temperature-sensitive membrane 3, when the opening pressure of the explosion-proof valve 100 and the thickness of the temperature-sensitive membrane 3 remain unchanged, the temperature-sensitive membrane 3 can be assigned a larger critical rupture pressure value. In one embodiment of the present invention, the explosion-proof disc 2 and the temperature-sensitive membrane 3 satisfy the relationship: PA2 = Y*PA3; wherein PA2 is the critical rupture pressure value of the temperature-sensitive membrane 3 when the temperature of the explosion-proof valve 100 is lower than the preset temperature, PA3 is the critical rupture pressure value of the explosion-proof disc 2, Y is a constant, and 0.2≤Y≤0.6. That is, at this time, the critical rupture pressure value assigned to the explosion-proof disc 2 is between 1 / 5 and 3 / 5 of the explosion-proof disc 2, thereby reducing the critical rupture pressure value of the explosion-proof disc 2, reducing the pressure required to open the explosion-proof disc 2, and improving the response speed of the explosion-proof valve 100.

[0094] In the description of the embodiments of the present application, it should be noted that the orientation or positional relationship of terms such as "center", "up", "down", "left", "right", "vertical", "horizontal", "inside", and "outside" are based on the orientation or positional relationship described in the accompanying drawings. They are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on the present application.

[0095] The above disclosure is only a preferred embodiment of the present application, and certainly cannot be used to limit the scope of rights of the present application. Ordinary technicians in this field can understand that all or part of the processes of the above embodiment and equivalent changes made in accordance with the claims of the present application are still within the scope covered by the present application.

Claims

1. An explosion-proof valve (100), characterized in that: It comprises a main body (1), an explosion-proof disc (2) and a temperature-sensitive membrane (3), wherein the main body (1) is provided with a pressure relief hole (11) penetrating along the thickness direction thereof; The explosion-proof disc (2) and the temperature-sensitive membrane (3) are connected to the main body (1) and cover the pressure relief hole (11); The temperature-sensitive membrane (3) is made of plastic, so that the critical rupture pressure value of the temperature-sensitive membrane (3) is inversely proportional to the temperature of the explosion-proof valve (100); When the temperature of the explosion-proof valve (100) is lower than a preset temperature, the critical pressure value at which both the explosion-proof disc (2) and the temperature-sensitive membrane (3) rupture is PA1, 0.4 MPa≤PA1≤1.2 MPa; When the temperature of the explosion-proof valve (100) is greater than a preset temperature, the critical pressure value at which both the explosion-proof disc (2) and the temperature-sensitive membrane (3) rupture is PA2, and 0.2 MPa≤PA2≤1 MPa.

2. The explosion-proof valve (100) according to claim 1, characterized in that: The temperature-sensitive membrane (3) is in contact with the explosion-proof plate (2), and at least a portion of the temperature-sensitive membrane (3) is located on a side of the explosion-proof plate (2) facing away from the main body (1).

3. The explosion-proof valve (100) according to claim 2, characterized in that: The explosion-proof plate (2) and the temperature-sensitive membrane (3) satisfy the relationship: PA2=X*PA3; Wherein, PA2 is the critical rupture pressure value of the temperature-sensitive membrane (3) when the temperature of the explosion-proof valve (100) is lower than a preset temperature; PA3 is the critical rupture pressure value of the explosion-proof disk (2); X is a constant, and 0.1≤X≤0.

5.

4. The explosion-proof valve (100) according to claim 1, characterized in that: The main body (1) comprises a first surface (13) and a second surface (14) arranged opposite to each other, and the pressure relief hole (11) passes through the first surface (13) and the second surface (14); The explosion-proof plate (2) is arranged on the first surface (13), and the temperature-sensitive membrane (3) is arranged on the second surface (14).

5. The explosion-proof valve (100) according to claim 4, characterized in that: The explosion-proof plate (2) and the temperature-sensitive membrane (3) satisfy the relationship: PA2=Y*PA3; Wherein, PA2 is the critical rupture pressure value of the temperature-sensitive membrane (3) when the temperature of the explosion-proof valve (100) is lower than a preset temperature; PA3 is the critical rupture pressure value of the explosion-proof disk (2); Y is a constant, and 0.2≤Y≤0.

6.

6. The explosion-proof valve (100) according to any one of claims 1 to 5, characterized in that: The critical rupture pressure value of the explosion-proof plate (2) is PA3, 0.2Mpa≤PA3≤0.8Mpa.

7. The explosion-proof valve (100) according to any one of claims 1 to 5, characterized in that: The critical rupture pressure value of the explosion-proof disk (2) is PA3, 0.3Mpa≤PA3≤1Mpa.

8. The explosion-proof valve (100) according to any one of claims 1 to 5, characterized in that: The temperature-sensitive film (3) satisfies the relationship: PA3=Z*PA2; Wherein, PA2 is the critical rupture pressure value of the temperature-sensitive membrane (3) when the temperature of the explosion-proof valve (100) is lower than a preset temperature; PA3 is the critical rupture pressure value of the temperature-sensitive membrane (3) when the temperature of the explosion-proof valve (100) is greater than a preset temperature; Z is a constant, and 0≤Z≤0.

25.

9. The explosion-proof valve (100) according to claim 8, characterized in that: The preset temperature is T, 55°≤T≤65°.

10. The explosion-proof valve (100) according to any one of claims 1 to 5, characterized in that: The temperature-sensitive film (3) comprises at least two temperature-sensitive layers (31) stacked in sequence along the axial direction of the pressure relief hole (11).

11. The explosion-proof valve (100) according to claim 10, characterized in that: The plastic includes at least one of polypropylene, polyethylene and polyethylene terephthalate.

12. The explosion-proof valve (100) according to claim 11, characterized in that: The plastic material used in each temperature-sensing layer (31) is set to be the same.

13. The explosion-proof valve (100) according to claim 11, characterized in that: The temperature-sensing layer (31) comprises a first temperature-sensing layer (31a), a second temperature-sensing layer (31b), and a third temperature-sensing layer (31c), and the third temperature-sensing layer (31c) is connected to the main body (1); The material of the first temperature-sensing layer (31a) and the third temperature-sensing layer (31c) includes polypropylene, and the material of the second temperature-sensing layer (31b) includes polyethylene terephthalate.

14. A cover plate assembly (400), characterized in that: It comprises the explosion-proof valve (100) according to any one of claims 1 to 13.

15. A battery cell (500), characterized in that: It comprises the cover plate assembly (400) as claimed in claim 14.

16. A battery pack (600), characterized in that: Comprising the battery cell (500) as claimed in claim 15.

17. An electricity system (700), characterized in that: Comprising the battery pack (600) as claimed in claim 16.

Citation Information

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