Two-way relief valve, battery and electrical device
The two-way relief valve addresses battery pressure instability by automatically balancing internal and external pressures, preventing structural damage and contaminant ingress, thereby improving battery reliability and safety.
Patent Information
- Application Number
- JP2022541652
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-08-31
- Filing Date
- 2021-05-12
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2041-05-12
AI Technical Summary
Conventional batteries face instability due to imbalanced internal and external pressures, leading to structural damage and potential failure from excessive internal or external air pressure, allowing water vapor or dust ingress.
A two-way relief valve with first and second valve elements and a separator that automatically adjusts to balance internal and external pressures, maintaining a predetermined pressure within the battery by opening and closing relief holes based on pressure differences.
The bidirectional relief valve maintains pressure equilibrium, reducing the risk of structural damage and preventing external contaminants from entering the battery, thus enhancing battery reliability and safety.
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Abstract
Description
[Technical Field]
[0001] This application claims priority to Chinese Patent Application No. 202010898974.1, entitled "TWO-WAY RELIEF VALVE, BATTERY AND ELECTRICAL DEVICE," filed on August 31, 2020, the entire contents of which are incorporated herein by reference.
[0002] The present application relates to the field of battery technology, and more particularly to bidirectional relief valves, batteries, and electrical devices. [Background technology]
[0003] With the development of science and technology, the application fields of rechargeable batteries are becoming increasingly widespread. For example, batteries can be used in automobiles or electric bicycles. Batteries generally adopt a sealed design to improve battery reliability and meet basic waterproof and dustproof requirements. During battery use, battery failure may occur due to battery heat generation or changes in altitude, which may affect the safety of the battery.
[0004] The pressure inside and outside the battery may be different, but if the pressure inside the battery is too high or too low, it will easily cause the sealing surface structure to break down, resulting in battery failure. Summary of the Invention
[0005] The present invention provides a two-way relief valve, a battery, and an electric device. The two-way relief valve can be applied to a battery to achieve a balance between the internal pressure and the external pressure of the battery.
[0006] Meanwhile, the present application provides a bidirectional relief valve comprising a valve seat, a first valve element, and a second valve element. The valve seat comprises opposing first and second ends, a passage, and a separator. The passage penetrates the first and second ends. A first relief hole is provided in the separator. The separator is provided on the inner wall of the passage. In the axial direction of the passage, the separator divides the passage into a first chamber and a second chamber. At least a portion of the first valve element is located within the first chamber and opens and closes the first relief hole to establish or block communication between the first chamber and the second chamber. At least a portion of the second valve element is located within the second chamber and opens and closes a second relief hole provided in the separator or the first valve element to establish or block communication between the first chamber and the second chamber. Here, the second relief hole is provided in the separator or the first valve element.
[0007] According to an embodiment of one aspect of the present application, the separator has a first region provided with a first relief hole and a second region provided with a second relief hole.
[0008] According to an embodiment of one aspect of the present application, the first region is provided around the second region or is located on one side of the second region in the radial direction of the passage.
[0009] According to an embodiment of the present invention, the first valve body is provided with a first through-hole configured to communicate between the first chamber and the second relief hole, and / or The second valve body is provided with a second through-hole configured to connect the second chamber with the first relief hole.
[0010] According to an embodiment of one aspect of the present application, a second relief hole is provided in the first valve body and corresponds to the position of the first relief hole, and a protrusion is provided on the second valve body, at least a portion of which is accommodated in the first relief hole and is configured to contact or separate from the first valve body to close or open the second relief hole.
[0011] According to an embodiment of one aspect of the present application, the second valve body is provided with a second through-hole configured to communicate between the second chamber and the first relief hole.
[0012] According to an embodiment of one aspect of the present application, along the axial direction of the passage, the orthogonal projection of the first valve body covers the first relief hole, and the orthogonal projection of the second valve body covers the second relief hole.
[0013] According to an embodiment of one aspect of the present application, the first valve body has a first elastic body and a first valve body, and the first elastic body is pressed against the first valve body so that the first valve body opens and closes the first relief hole.
[0014] According to an embodiment of one aspect of the present application, the first valve body has a first valve plate and a first gasket, at least a portion of the first valve plate is positioned between the first elastic body and the first gasket, and the first valve body opens and closes the first relief hole using the first gasket.
[0015] According to an embodiment of the present invention, the first valve plate has a first groove on a surface remote from the first elastic body, and at least a portion of the first gasket is received in the first groove.
[0016] According to an embodiment of one aspect of the present application, the second valve body has a second elastic body and a second valve body, and the second elastic body is pressed against the second valve body so that the second valve body opens and closes the second relief hole.
[0017] According to an embodiment of one aspect of the present application, the second valve body has a second valve plate and a second gasket, at least a portion of the second valve plate is positioned between the second elastomer and the second gasket, and the second valve body opens and closes the second relief hole with the second gasket.
[0018] According to an embodiment of the present invention, the second valve plate has a second groove on a surface remote from the second elastic body, and at least a portion of the second gasket is received in the second groove.
[0019] According to an embodiment of one aspect of the present application, the two-way relief valve further includes an end cover having a through hole, the end cover being provided at a first end, the through hole communicating with the first chamber, and regulating the first valve body within the first chamber, and / or the end cover being provided at a second end, the through hole communicating with the second chamber, and regulating the second valve body within the second chamber.
[0020] According to an embodiment of one aspect of the present application, the two-way relief valve further includes a semipermeable membrane located within and covering the through hole, and a protective cover connected to the end cover, covering the opening of the through hole, and spaced apart from the semipermeable membrane.
[0021] The bidirectional relief valve according to the embodiment of the present application can achieve bidirectional conduction and is normally in a normally closed state. The first and second valve elements are axially arranged along the passage of the valve seat, and they cooperate with the valve seat to realize the conduction or closure of the bidirectional relief valve, thereby achieving compact dimensions and structure in the radial and axial directions of the passage of the valve seat. The bidirectional relief valve can automatically select and open the first or second valve element based on changes in pressure on both sides, automatically achieving equilibrium between the pressures on both sides. The radial direction of the passage is the direction perpendicular to the axial direction of the passage. After the bidirectional relief valve according to the embodiment of the present application is applied to a battery, if the air pressure inside the battery becomes too high or too low, the bidirectional relief valve automatically conducts and switches from a normally closed state to a conducting state, gradually balancing the internal and external pressures of the battery. After the internal and external pressures of the battery reach equilibrium, the bidirectional relief valve automatically closes and switches from a conducting state to a closed state, preventing external gas or water vapor from entering the battery. In this way, the possibility of the case deforming and causing structural damage to the sealing surface when the air pressure inside the battery is too high or too low is reduced, which also reduces the possibility of external water vapor or dust entering the battery and causing battery failure.
[0022] In another aspect, the present application provides a battery including a case, a battery module, and a two-way relief valve. The case includes a storage space. The battery module is housed in the storage space. The two-way relief valve is provided on the case. The two-way relief valve is provided to balance the pressure in the storage space, thereby maintaining a predetermined pressure value in the storage space.
[0023] According to an embodiment of another aspect of the present application, the battery further includes an annular seal that is fitted to the outside of the valve seat to seal the valve seat and the case.
[0024] The present application further provides an electrical device including a battery such as the above embodiment. [Brief explanation of the drawings]
[0025] In order to more clearly explain the technical solutions of the embodiments of the present application, the following briefly describes the drawings necessary for the embodiments of the present application. Obviously, the following drawings are only some embodiments of the present application. Those skilled in the art can further derive other drawings based on the drawings without any creative work. In the drawings, the drawings are not drawn to actual scale. [Figure 1] 1 is a partial structural schematic diagram of a vehicle according to an embodiment of the present application; [Figure 2] 1 is a schematic diagram of a battery according to an embodiment of the present application. [Figure 3] 1 is a structural schematic diagram of a two-way relief valve according to an embodiment of the present application; [Figure 4] FIG. 4 is an exploded structural schematic view of the two-way relief valve of the embodiment shown in FIG. 3. [Figure 5] FIG. 4 is a schematic diagram of a half cross-sectional structure of the two-way relief valve of the embodiment shown in FIG. 3. [Figure 6] 1 is a schematic plan view of a valve seat according to an embodiment of the present application; [Figure 7] FIG. 10 is a schematic half-sectional view of a two-way relief valve according to another embodiment of the present application. [Figure 8] FIG. 10 is a schematic half-sectional view of a two-way relief valve according to another embodiment of the present application. [Figure 9] FIG. 10 is a schematic plan view of a valve seat according to another embodiment of the present application. [Figure 10] FIG. 10 is a schematic half-sectional view of a two-way relief valve according to another embodiment of the present application. [Figure 11] FIG. 2 is a structural schematic diagram of a second valve body according to an embodiment of the present application. [Figure 12] 1 is a schematic cross-sectional view of a two-way relief valve according to an embodiment of the present invention and a case in a connected state; [Explanation of symbols]
[0026] 1, vehicle, 1a, motor, 1b, controller, 10, battery, 11, case, 111, upper case, 112, lower case, 12, annular seal, 20. Two-way relief valve; 30, valve seat, 31, the first end; 32, second end, 33, passageway; 331, first chamber; 332, second chamber; 34, separator, 34a, first region, 34b, second region, 341, first relief hole, 40, first valve body, 40a, first through-hole, 41, first elastic body, 42, first valve body, 421, first valve plate, 421a, first groove, 422, first gasket, 50, second valve body, 50a, second through hole, 50b, protrusion, 51, second elastic body, 52, second valve body, 521, second valve plate, 521a, second groove, 522, second gasket, 60, the second relief hole, 70, end cover, 70a, through hole, 70', end cover; 70'a, through hole; 70'b, receiving groove; 80, semi-permeable membrane; 90, protective cover, 100, notch, X, axial direction; DETAILED DESCRIPTION OF THE INVENTION
[0027] Hereinafter, the present application will be described in more detail with reference to the drawings and examples. The detailed description of the examples and the drawings are used to exemplify the principles of the present application, but are not intended to limit the scope of the present application. In other words, the present application is not limited to the described examples.
[0028] As should be understood, in this description, "plurality" means two or more unless otherwise specified. Any orientation or positional relationship indicated by the terms "up," "down," "left," "right," "inside," "outside," etc., is intended solely for ease of explanation and brevity of description and does not indicate or imply that the depicted device or element must have a particular orientation, be constructed, or operate in a particular orientation, and should not be understood as limiting this application. Furthermore, the terms "first," "second," "third," etc., are used solely for descriptive purposes and should not be understood as indicating or implying relative importance. "Perpendicular" does not mean perpendicular in the strict sense, but rather within a tolerance. "Parallel" does not mean parallel in the strict sense, but rather within a tolerance.
[0029] All directional terms used in the following description refer to the directions shown in the drawings and do not limit the specific structure of the present application. For clarity, unless otherwise clearly specified or limited, the terms "attached," "connected," and "continuous" should be understood in a broad sense in the description of the present application. For example, they may refer to fixed connections, detachable connections, or integral connections, and may also refer to direct connections or indirect connections via intermediate media. Those skilled in the art will be able to understand the specific meanings of the above terms in the present application according to specific circumstances.
[0030] The applicant discovered that conventional batteries have a problem of unstable pressure, which can lead to breakdowns. He then studied and analyzed the various battery structures. He discovered that the internal and external pressures of a battery vary depending on the temperature of the battery or the altitude during use. However, if the internal pressure of the battery is too high or too low, the sealing surface structure can easily be damaged, allowing water vapor or dust from the outside to enter the battery, resulting in battery breakdown.
[0031] Based on the above problems discovered by the applicant, the applicant has improved the structure of the battery. Examples of the present application are further described below.
[0032] For a better understanding of the present invention, an embodiment of the present invention will be described below with reference to FIGS.
[0033] An embodiment of the present application provides an electric device using a battery 10 as a power source. The electric device may be, but is not limited to, a vehicle, a ship, an aircraft, or the like. As shown in FIG. 1 , an embodiment of the present application provides a vehicle 1. The vehicle 1 may be a fuel-powered vehicle, a gas-powered vehicle, or a new energy vehicle. The new energy vehicle may be a pure electric vehicle, a hybrid vehicle, or a range-extended vehicle, or the like. In the embodiment of the present application, the vehicle 1 may include a motor 1a, a controller 1b, and a battery 10. The controller 1b is used to control the battery 10 to supply power to the motor 1a. The motor 1a is connected to wheels via a transmission mechanism to drive the vehicle 1. The battery 10 can be a driving power source for the vehicle 1 and can provide driving power to the vehicle 1 instead of or partially replace fuel oil or natural gas. In one example, the battery 10 may be installed at the bottom, front, or rear of the vehicle 1. The battery 10 is used to supply power to the vehicle 1. In one example, the battery 10 is used as an operating power source for the vehicle 1 and for the circuit system of the vehicle 1. Preferably, the battery 10 is used to meet the electrical needs of the vehicle 1 for start-up, navigation and driving operations.
[0034] As shown in FIG. 2 , the battery 10 may include two or more battery modules (not shown). In some alternative embodiments, the battery 10 further includes a case 11. The case 11 includes a storage space. The two or more battery modules are arranged side by side in the storage space of the case 11. The type of the case 11 is not limited. The case 11 may be a frame-shaped case, a disc-shaped case, a box-shaped case, or the like. Optionally, the case 11 includes an upper case 111 and a lower case 112 covered by the upper case 111. The upper case 111 covers the lower case 112 to form a storage space for accommodating the battery modules. In some other embodiments, the battery 10 includes the case 11 and a plurality of battery cells directly installed in the case 11. In some other embodiments, the battery 10 may include one battery module.
[0035] The battery 10 further includes a two-way relief valve 20 provided in the case 11. The number of two-way relief valves 20 may be one or more. The two-way relief valve 20 is used to balance the pressure in the storage space with that in the external environment and maintain a predetermined pressure in the storage space.
[0036] 3 and 4 , the two-way relief valve 20 includes a valve seat 30, a first valve element 40, and a second valve element 50. The valve seat 30 includes opposing first and second ends 31 and 32, and a passage 33 that penetrates the first and second ends 31 and 32. Gas can flow through the passage 33 in the valve seat 30 and pass through the valve seat 30. The two-way relief valve 20 further includes the first valve element 40 and the second valve element 50. The first valve element 40 and the second valve element 50 are provided in the passage 33.
[0037] As shown in FIG. 5 , the bidirectional relief valve 20 further includes a separator 34. The separator 34 is disposed in the passage 33 of the valve seat 30 and is connected to the inner wall of the passage 33. The separator 34 divides the passage 33 into a first chamber 331 and a second chamber 332 in the axial direction X of the passage 33. The first valve element 40 is disposed in the first chamber 331, and the second valve element 50 is disposed in the second chamber 332. The separator 34 includes a first relief hole 341 and a second relief hole 60. The first valve element 40 is configured to open and close the first relief hole 341, thereby establishing or blocking communication between the first chamber 331 and the second chamber 332. The second valve element 50 is disposed to open and close the second relief hole 60, thereby establishing or blocking communication between the first chamber 331 and the second chamber 332. Preferably, the valve seat 30 is a cylindrical structure.
[0038] As shown in FIG. 5 , when the pressure on the W side of the bidirectional relief valve 20 is greater than the pressure on the N side, the first valve element 40 is pushed away from the separator 34 to open the first relief hole 341. At this time, the first chamber 331 and the second chamber 332 are connected via the first relief hole 341, and the pressures on the W side and the N side gradually become balanced. After the pressures on the W side and the N side are balanced, the first valve element 40 moves closer to the separator 34 to close the first relief hole 341. At this time, the first chamber 331 and the second chamber 332 are isolated from each other, and external gas or water vapor cannot move from the W side to the N side through the bidirectional relief valve 20. During the operation of the first valve element 40, the second valve element 50 and the separator 34 maintain a contact seal, so that the second valve element 50 closes the second relief hole 60. When the pressure value on the N side of the bidirectional relief valve 20 is greater than the pressure value on the W side, the second valve element 50 is pushed away from the separator 34 to open the second relief hole 60. At this time, the first chamber 331 and the second chamber 332 communicate through the second relief hole 60, and the pressures on the N side and the W side gradually become balanced. After the pressures on the W side and the N side become balanced, the second valve element 50 moves closer to the separator 34 to close the second relief hole 60. At this time, the first chamber 331 and the second chamber 332 are isolated from each other. During the operation of the second valve element 50, the first valve element 40 and the separator 34 maintain a contact seal, and the first valve element 40 closes the first relief hole 341.
[0039] The bidirectional relief valve 20 of the embodiment of the present application can achieve bidirectional conduction and is generally normally closed. The first valve element 40 and the second valve element 50 are arranged along the axial direction X of the passage 33, and cooperate with the valve seat 30 to enable the bidirectional relief valve 20 to be conductive or closed, thereby achieving compact dimensions and structure in the radial direction of the valve seat 30 in the passage 33 and in the axial direction X of the passage 33. The bidirectional relief valve 20 automatically selects and opens the first valve element 40 or the second valve element 50 based on pressure changes on both sides, thereby automatically balancing the pressures on both sides. The radial direction of the passage 33 is a direction perpendicular to the axial direction X of the passage 33. After the bidirectional relief valve 20 of the embodiment of the present application is applied to a battery, if the air pressure inside the battery is too high or too low, the bidirectional relief valve 20 automatically conducts and switches from a normally closed state to a conductive state, gradually balancing the internal and external pressures of the battery. After the internal pressure and external pressure of the battery are balanced, the two-way relief valve 20 automatically closes to switch from a conductive state to a closed state, thereby preventing external gas or water vapor from entering the battery. In this way, when the air pressure inside the battery is too high or too low, the possibility of the case 11 being deformed and causing damage to the sealing surface structure is reduced, and therefore the possibility of external water vapor or dust entering the battery and causing battery failure is also reduced.
[0040] In some other embodiments, as shown in FIG. 5 , along the axial direction X of the passage 33, the orthogonal projection of the first valve element 40 can cover at least the first relief hole 341, and the orthogonal projection of the second valve element 50 can cover at least the second relief hole 60. When a pressure difference exists between the W side and the N side of the bidirectional relief valve 20, the first valve element 40 or the second valve element 50 moves along the axial direction X to open or close the first relief hole 341 or the second relief hole 60. Because the orthogonal projection of the first valve element 40 does not cover the second relief hole 60, the first valve element 40 is less likely to adversely affect the gas permeability of the second relief hole 60. Because the orthogonal projection of the second valve element 50 does not cover the first relief hole 341, the second valve element 50 is less likely to adversely affect the gas permeability of the first relief hole 341. Optionally, the first valve body 40 and the second valve body 50 are provided along the axial direction X of the passage 33 .
[0041] In some other embodiments, as shown in FIG. 5 , the first valve element 40 includes a first elastic body 41 and a first valve body 42. The first elastic body 41 is pressed against the first valve body 42. The first valve body 42 is configured to open and close the first relief hole 341. The first elastic body 41 is located on the side of the first valve body 42 away from the separator 34. The first elastic body 41 is confined within the first chamber 331. The first elastic body 41 exerts a predetermined compressive stress on the first valve body 42 through its elastic restoring force, pressing the first valve body 42 against the separator 34, thereby maintaining a good sealing between the first valve body 42 and the first relief hole 341. When the W-side pressure is greater than the N-side pressure, gas pressure acts on the first valve body 42 and drives it away from the separator 34. The first valve body 42 compresses the first elastic body 41, opening the first relief hole 341. When the pressure on the W side and the N side is balanced, the first elastic body 41, through its own elastic restoring force, drives the first valve body 42 toward the separator 34 along the axial direction X of the passage 33, ultimately closing the first relief hole 341. The first valve body 42 is restricted by the inner wall of the passage 33 in the radial direction of the passage 33, improving the stability of the first valve body 42 as it moves through the passage 33 and reducing the possibility of the first valve body 42 swinging and colliding with or scratching the inner wall of the passage 33 during its movement. This also reduces the possibility of the first valve body 42 swinging and being pinched within the valve seat 30 during its movement, preventing the bidirectional relief valve 20 from functioning normally. Optionally, the first valve body 42 directly contacts the inner wall of the passage 33. Alternatively, the first elastic body 41 is a coil spring, or the first elastic body 41 is an elastic sleeve.
[0042] In some other embodiments, the first valve body 42 includes a first valve plate 421 and a first gasket 422. At least a portion of the first valve plate 421 is located between the first elastic body 41 and the first gasket 422. The first valve body 42 uses the first gasket 422 to open and close the first relief hole 341. The first valve plate 421 and the first gasket 422 are arranged along the axial direction X of the passage 33. The first elastic body 41 is pressed against the first valve plate 421, and uses the first valve plate 421 to apply compressive stress to the first gasket 422. Because the rigidity of the first valve plate 421 is greater than the rigidity of the first gasket 422, the first valve plate 421 is less likely to deform relative to the first gasket 422, reducing the possibility that the first gasket 422 will be pushed up and unintentionally open the first relief hole 341, thereby improving the operational stability and reliability of the two-way relief valve 20. In addition, because the first elastic body 41 does not directly contact the first gasket 422, the possibility that the first elastic body 41 will apply compressive stress to the first gasket 422 over a long period of time, causing rebound failure or structural damage to the first gasket 422 and resulting in a sealing failure of the first gasket 422, is reduced. Optionally, the material of the first valve plate 421 is plastic, and the material of the first gasket 422 is rubber or silica gel.
[0043] 5, the first valve plate 421 has a first groove 421a on the surface away from the first elastic body 41. At least a portion of the first gasket 422 is received in the first groove 421a. The first valve plate 421 can provide protection and restriction for the first gasket 422, reducing the possibility that the first gasket 422 will wear or become misaligned, resulting in poor or no sealing effect.
[0044] In some other embodiments, as shown in FIG. 5 , the bidirectional relief valve 20 includes an end cover 70. The end cover 70 includes a through-hole 70a. The end cover 70 is provided at the first end 31. Optionally, the first end 31 and the end cover 70 are removably connected. For example, the end cover 70 may be threadedly or adhesively connected to the first end 31. The through-hole 70a of the end cover 70 communicates with the first chamber 331. The end cover 70 restricts the first valve body 40 within the first chamber 331.
[0045] Optionally, after the first valve body 42 and the first elastic body 41 of the first valve element 40 are sequentially placed in the first chamber 331, the end cover 70 is attached to the first end 31 to limit the position of the first elastic body 41 and compress the first elastic body 41. By adjusting the position of the end cover 70, the compression amount of the first elastic body 41 can be adjusted, and thus the predetermined pressure value for opening the first valve element 40 can be adjusted as required.
[0046] In some other embodiments, as shown in FIG. 5 , the second valve element 50 includes a second elastic body 51 and a second valve body 52. The second elastic body 51 is pressed against the second valve body 52. The second valve body 52 is configured to open and close the second relief hole 60. The second elastic body 51 is configured on the side of the second valve body 52 away from the separator 34. The second elastic body 51 is limited within the second chamber 332. The second elastic body 51 applies a predetermined compressive stress to the second valve body 52 through the action of its own elastic restoring force, thereby ensuring the sealing of the second valve body 52 with the second relief hole 60. When the pressure on the N side is greater than the pressure on the W side, the gas pressure acts on the second valve body 52 and drives the second valve body 52 away from the separator 34. The second valve body 52 compresses the second elastic body 51, opening the second relief hole 60. When the pressure on the W side and the N side is balanced, the second elastic body 51, through its own elastic restoring force, drives the second valve body 52 toward the separator 34 along the axial direction X of the passage 33, ultimately closing the second relief hole 60. The second valve body 52 is restricted by the inner wall of the passage 33 in the radial direction of the passage 33, improving the stability of the second valve body 52 as it moves through the passage 33 and reducing the possibility of the second valve body 52 swinging and colliding with or scratching the inner wall of the passage 33 during its movement. This could result in the second valve body 52 swinging and being pinched within the valve seat 30, preventing the two-way relief valve 20 from functioning normally. Alternatively, the second valve body 52 may directly contact the inner wall of the passage 33. Alternatively, the second elastic body 51 is a coil spring, or the second elastic body 51 is an elastic sleeve.
[0047] In some other embodiments, the second valve body 52 includes a second valve plate 521 and a second gasket 522. At least a portion of the second valve plate 521 is located between the second elastic body 51 and the second gasket 522. The second valve body 52 opens and closes the second relief hole 60 with the second gasket 522. The second valve plate 521 and the second gasket 522 are arranged along the axial direction X of the passage 33. The second elastic body 51 is pressed against the second valve plate 521, and the second valve plate 521 applies compressive stress to the second gasket 522. Because the rigidity of the second valve plate 521 is greater than that of the second gasket 522 and the second valve plate 521 is less likely to deform relative to the second gasket 522, the possibility of the second gasket 522 being pushed up and unintentionally opening the second relief hole 60 is reduced, thereby improving the operational stability and reliability of the two-way relief valve 20. In addition, because the second elastic body 51 does not directly contact the second gasket 522, the second elastic body 51 is less likely to apply compressive stress to the second gasket 522 over the long term, causing rebound failure or structural damage to the second gasket 522, thereby reducing the possibility of sealing failure in the first gasket 422. Optionally, the second valve plate 521 is made of plastic, and the first gasket 422 is made of rubber or silica gel.
[0048] 5, the second valve plate 521 has a second groove 521a on the surface away from the second elastic body 51. At least a portion of the second gasket 522 is received in the second groove 521a. The second valve plate 521 can provide protection and restriction for the second gasket 522, reducing the possibility that the second gasket 522 will wear or become misaligned, resulting in poor or no sealing effect.
[0049] In some other embodiments, as shown in FIG. 5 , an end cover 70′ is provided at the second end 32. Here, the labeling of the end cover 70 and the end cover 70′ is for ease of explanation only and does not limit their actual structures. Optionally, the second end 32 and the end cover 70′ are removably connected. For example, the end cover 70′ may be threadedly or adhesively connected to the second end 32. The through-hole 70′a of the end cover 70′ communicates with the second chamber 332. The end cover 70′ restricts the second valve body 50 to the second chamber 332.
[0050] Optionally, after the second valve body 52 and the second elastic body 51 of the second valve element 50 are sequentially placed in the second chamber 332, the end cover 70' is attached to the second end 32 to limit the position of the second elastic body 51 and compress the second elastic body 51. By adjusting the position of the end cover 70', the compression amount of the second elastic body 51 can be adjusted, and the predetermined pressure value for opening the second valve element 50 can be adjusted as required.
[0051] In some other embodiments, the first end 31 and the second end 32 of the valve seat 30 are both provided with an end cover 70 or an end cover 70'. The two-way relief valve 20 may be connected to the case 11 by one of the end cover 70 or the end cover 70'. Alternatively, the end cover 70 and the case 11, or the end cover 70' and the case 11, may be detachably connected. For example, the end cover 70 and the case 11, or the end cover 70' and the case 11 may be fixed by a threaded connection.
[0052] In some other embodiments, as shown in FIG. 5 , the bidirectional relief valve 20 further includes a semipermeable membrane 80 and a protective cover 90. The semipermeable membrane 80 is located in the through-hole 70′a and covers the through-hole 70′a of the end cover 70′. The semipermeable membrane 80 can filter dust and liquid water, reducing the possibility of external water vapor or dust entering the battery and causing battery failure. The protective cover 90 is connected to the end cover 70′ and covers the opening of the through-hole 70′a. Optionally, the protective cover 90 can be detachably connected to the end cover 70′. For example, the protective cover 90 can be screwed or glued to the end cover 70′. The protective cover 90 is spaced apart from the semipermeable membrane 80 to form a chamber therebetween. The protective cover 90 protects the semipermeable membrane 80 and reduces the possibility of the semipermeable membrane 80 being damaged by an external object colliding with or scratching the semipermeable membrane 80. Optionally, a notch 100 is provided in the end cover 70' at a position close to the protective cover 90. The chamber between the protective cover 90 and the semipermeable membrane 80 communicates with the external environment through the notch 100, allowing gas to enter the chamber through the notch 100. The end cover 70 and the end cover 70' shown in Figure 5 have different configurations. However, as can be appreciated, in some other embodiments, the end cover 70 and the end cover 70' may have the same structure.
[0053] In some other embodiments, as shown in FIG. 5 , the first valve body 40 is provided with a first through-hole 40a at a position corresponding to the second relief hole 60. The first through-hole 40a is provided to communicate between the first chamber 331 and the second relief hole 60. Optionally, the first through-hole 40a has the same diameter as the second relief hole 60. When the first valve body 40 opens the first relief hole 341, the gas on the W side can flow to the N side through the notch 100 in the end cover 70, the semipermeable membrane 80, the second chamber 332, the first relief hole 341, the first through-hole 40a, and the first chamber 331. When the second valve body 50 opens the second relief hole 60, the gas on the N side can flow to the W side through the first chamber 331, the first through hole 40a, the second relief hole 60, the second chamber 332, the semipermeable membrane 80 and the notch 100 in the end cover 70.
[0054] In some other embodiments, as shown in FIG. 6 , the separator 34 includes a first region 34a and a second region 34b. The first relief hole 341 is provided in the first region 34a, and the second relief hole 60 is provided in the second region 34b of the separator 34. In FIG. 6 , the first region 34a and the second region 34b are shown by dashed lines for ease of explanation, but the dashed lines are not real structures and do not limit the area size of the first region 34a and the second region 34b. In this embodiment, the first region 34a is provided surrounding the second region 34b.
[0055] In some other embodiments, the second relief hole 60 is located in the central region of the separator 34. Two or more first relief holes 341 are spaced apart and surround the second relief hole 60. Optionally, the two or more first relief holes 341 are uniformly distributed around the second relief hole 60, which helps to ensure stress balance throughout the first valve body 40 and improve the movement stability of the first valve body 40 in the first chamber 331. Optionally, the first relief hole 341 is an arc-shaped hole.
[0056] In some other embodiments, as shown in FIG. 7 , the same points as those in the above embodiments will not be discussed, and differences will be mainly discussed. The first valve body 42 and the second valve body 52 are integrally molded. The first valve body 42 and the second valve body 52 each include a small number of parts, which reduces the difficulty of manufacturing the first valve body 42 and the second valve body 52 and helps improve the reliability and ease of assembly during use of the first valve body 42 and the second valve body 52. Optionally, the materials of the first valve body 42 and the second valve body 52 may both be plastic. It can be understood that the first valve body 42 has an integrally molded structure, and the second valve body 52 includes a second valve plate 521 and a second gasket 522. Alternatively, the second valve body 52 has an integrally molded structure, and the first valve body 42 includes a first valve plate 421 and a first gasket 422.
[0057] In some other embodiments, as shown in Figures 8 and 9, the same points as those in any of the above embodiments will not be described, and differences will be mainly described. As shown in Figure 8, the first relief hole 341 and the second relief hole 60 are spaced apart in the radial direction of the passage 33. The second valve body 50 is provided with a second through hole 50a corresponding to the first relief hole 341. The second through hole 50a is provided to connect the second chamber 332 and the first relief hole 341. Optionally, the second through hole 50a has the same diameter as the first relief hole 341. When the first valve body 40 opens the first relief hole 341, gas on the W side can flow to the N side through the notch 100 in the end cover 70, the semipermeable membrane 80, the second chamber 332, the second through-hole 50a, the first relief hole 341, the first through-hole 40a, and the first chamber 331. When the second valve body 50 opens the second relief hole 60, gas on the N side can flow to the W side through the first chamber 331, the first through-hole 40a, the second relief hole 60, the second chamber 332, the second through-hole 50a, the semipermeable membrane 80, and the notch 100 in the end cover 70. In FIG. 9 , the first region 34a and the second region 34b are shown by dashed lines for ease of explanation, but the dashed lines do not represent actual structures and do not limit the area of the first region 34a and the second region 34b. In this embodiment, the first region 34a is located on one side of the second region 34b along the radial direction of the passage 33. The number of first relief holes 341 provided in the first region 34a may be one or two or more. The number of second relief holes 60 provided in the second region 34b may be one or two or more.
[0058] In some other embodiments, as shown in FIG. 10 , the same features as those of any of the above embodiments will not be described, and differences will be mainly described. The separator 34 has a first relief hole 341. The first valve body 40 has a second relief hole 60. The first relief hole 341 and the second relief hole 60 are positioned corresponding to each other along the axial direction X of the passage 33. As shown in FIG. 11 , the second valve body 50 has a protrusion 50a. At least a portion of the protrusion 50a is accommodated in the first relief hole 341 and is arranged to contact or be separated from the first valve body 40, thereby opening and closing the second relief hole 60 of the first valve body 40. In some other embodiments, the second valve body 50 has a second elastic body 51 and a second valve body 52. The protrusion 50a is arranged on the second valve body 52. The second valve body 50 is provided with a second through-hole 50a corresponding to the first relief hole 341. The second through-hole 50a is provided so as to connect the second chamber 332 and the first relief hole 341 to each other.
[0059] When the pressure value on the W side of the bidirectional relief valve 20 is greater than the pressure value on the N side, the first valve element 40 is pushed to move away from the separator 34, causing the first valve element 40 and the second valve element 50 to disengage from their connected state and open the first relief hole 341. At this time, the first chamber 331 and the second chamber 332 communicate with each other through the first relief hole 341 and the second relief hole 60, so that the pressures on the W side and the N side gradually become balanced. When the first valve element 40 opens the first relief hole 341, the gas on the W side can flow to the N side through the notch 100 in the end cover 70, the semipermeable membrane 80, the second chamber 332, the second through-hole 50a, the first relief hole 341, the second relief hole 60, and the first chamber 331. When the pressure value on the N side of the bidirectional relief valve 20 is greater than the pressure value on the W side, the second valve element 50 is pushed to move away from the separator 34, causing the first valve element 40 and the second valve element 50 to disengage from their connected state and open the second relief hole 60. At this time, the first chamber 331 and the second chamber 332 communicate with each other through the first relief hole 341 and the second relief hole 60, gradually balancing the pressures on the W side and the N side. When the second valve element 50 opens the second relief hole 60, the gas on the N side can flow to the W side through the first chamber 331, the second relief hole 60, the first relief hole 341, the second chamber 332, the second through-hole 50a, the semipermeable membrane 80, and the notch 100 in the end cover 70'.
[0060] In some other embodiments, the first valve body 42 comprises a first valve plate 421 and a first gasket 422. The second valve body 50 is a one-piece molded structure.
[0061] In some other embodiments, as shown in FIG. 12 , the bidirectional relief valve 20 is connected to the case 11 of the battery. Optionally, the bidirectional relief valve 20 is detachably connected to the case 11. For example, the valve seat 30 and the case 11 are connected by threads or adhesive. The battery further includes an annular seal. The annular seal is fitted onto the outside of the valve seat 30. The annular seal is provided to seal the valve seat 30 and the case 11, thereby reducing the possibility of external dust or water vapor entering the inside of the battery through the gap between the valve seat 30 and the case 11 and causing communication between the inside of the battery and the external environment due to the seal between the valve seat 30 and the case 11 being broken, which could further cause failure of the bidirectional relief valve 20. Optionally, the material of the annular seal may be rubber or silica gel.
[0062] In some other embodiments, the end cover 70' of the bidirectional relief valve 20 includes a receiving groove 70'b. A portion of the annular seal is disposed within the receiving groove 70'b. The end cover 70' and the case 11 press against the annular seal together. The end cover 70' limits the position of the annular seal, reducing the possibility of the annular seal becoming misaligned and causing the seal to fail.
[0063] The bidirectional relief valve 20 of the embodiment of the present application can achieve bidirectional conduction by the first valve element 40 and the second valve element 50 that are arranged along the axial direction X of the passage 33 of the valve seat 30. Because the first valve element 40 and the second valve element 50 are arranged along the axial direction X, the bidirectional relief valve 20 itself is compact. After the bidirectional relief valve 20 of the embodiment of the present application is applied to a battery, the bidirectional relief valve 20 can achieve a balance between the internal and external pressures of the battery, reducing the possibility of the sealing failure due to damage to the sealing surface structure of the battery case 11, thereby reducing the possibility of external water vapor or dust entering the battery through the damaged sealing surface and causing battery failure, and improving the reliability and stability of the battery during use.
[0064] Although the present application has been described with reference to preferred embodiments, various modifications may be made thereto and equivalents may be substituted for parts therein without departing from the scope of the present application. In particular, unless there is a structural conflict, any of the technical features recited in each embodiment may be combined in any manner. The present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. a valve seat having opposing first and second ends, a passage penetrating the first and second ends, and a separator provided in an inner wall of the passage, the separator having a first relief hole, and dividing the passage into a first chamber and a second chamber in an axial direction of the passage; a first valve body at least a portion of which is located within the first chamber and configured to open and close the first relief hole to establish or block communication between the first chamber and the second chamber; a second valve element, at least a portion of which is located in the second chamber, configured to open or close a second relief hole provided in the separator or the first valve element to establish or block communication between the first chamber and the second chamber; Equipped with the first valve body includes a first elastic body, the second valve body includes a second elastic body, and at least one of the first elastic body and the second elastic body includes a coil spring; the separator has a first region in which the first relief holes are provided, and a second region in which the second relief holes are provided when the second relief holes are provided in the separator; Two-way relief valve used in batteries.
2. The first region is provided around the second region or is located on one side of the second region in the radial direction of the passage.
2. The two-way relief valve of claim 1.
3. The first valve body is provided with a first through-hole configured to communicate between the first chamber and the second relief hole; and / or The second valve body is provided with a second through-hole configured to communicate between the second chamber and the first relief hole.
3. The two-way relief valve according to claim 1 or 2.
4. the second relief hole is provided in the first valve body and corresponds to the position of the first relief hole; the second valve body is provided with a protrusion, at least a part of which is accommodated in the first relief hole and is configured to contact or separate from the first valve body to close or open the second relief hole; 2. The two-way relief valve of claim 1.
5. The second valve body is provided with a second through-hole configured to communicate between the second chamber and the first relief hole.
5. The two-way relief valve of claim 4.
6. an orthogonal projection of the first valve body covers the first relief hole, and an orthogonal projection of the second valve body covers the second relief hole along the axial direction of the passage; 6. The two-way relief valve according to claim 1.
7. The first valve body further includes a first valve body configured to open and close the first relief hole, and the first elastic body is pressed against the first valve body.
7. The two-way relief valve according to claim 1.
8. The first valve body has a first valve plate and a first gasket, at least a portion of the first valve plate is located between the first elastic body and the first gasket, and the first valve body opens and closes the first relief hole by means of the first gasket.
8. The two-way relief valve of claim 7.
9. the first valve plate has a first groove on a surface remote from the first elastic body, and at least a portion of the first gasket is accommodated in the first groove; 9. The two-way relief valve of claim 8.
10. The second valve body further includes a second valve body configured to open and close the second relief hole, and the second elastic body is pressed against the second valve body.
10. A two-way relief valve according to any one of claims 1 to 9.
11. The second valve body has a second valve plate and a second gasket, and at least a portion of the second valve plate is located between the second elastic body and the second gasket, and the second valve body opens and closes the second relief hole by means of the second gasket. The two-way relief valve of claim 10.
12. the second valve plate has a second groove on a surface remote from the second elastic body, and at least a portion of the second gasket is accommodated in the second groove; 12. The two-way relief valve of claim 11.
13. Further provided is an end cover having a through hole; the end cover is provided at the first end, the through hole communicates with the first chamber, and the end cover restricts the first valve body within the first chamber; and / or the end cover is provided at the second end, the through hole communicates with the second chamber, and the end cover restricts the second valve body within the second chamber.
13. A two-way relief valve according to any one of claims 1 to 12.
14. the two-way relief valve further includes a semipermeable membrane located within and covering the through hole, and a protective cover connected to the end cover, covering the opening of the through hole, and spaced apart from the semipermeable membrane.
14. The two-way relief valve of claim 13.
15. a case having a storage space; a battery module accommodated in the accommodation space; and the two-way relief valve according to any one of claims 1 to 14, The two-way relief valve is provided in the case and configured to balance the pressure in the accommodation space so that the accommodation space maintains a predetermined pressure value. battery.
16. The battery further includes an annular seal fitted to the exterior of the valve seat and configured to seal the valve seat and the case.
16. The battery of claim 15.
17. An electrical device comprising a battery according to claim 15 or 16.
Citation Information
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