WO2020220486A1 - Soupape antidéflagrante, bloc-batterie, et véhicule - Google Patents

Soupape antidéflagrante, bloc-batterie, et véhicule Download PDF

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Publication number
WO2020220486A1
WO2020220486A1 PCT/CN2019/097718 CN2019097718W WO2020220486A1 WO 2020220486 A1 WO2020220486 A1 WO 2020220486A1 CN 2019097718 W CN2019097718 W CN 2019097718W WO 2020220486 A1 WO2020220486 A1 WO 2020220486A1
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WO
WIPO (PCT)
Prior art keywords
valve
dust
filter structure
valve body
explosion
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Application number
PCT/CN2019/097718
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English (en)
Chinese (zh)
Inventor
谢伟
胡清峰
王小龙
郑卫鑫
朱燕
Original Assignee
比亚迪股份有限公司
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Application filed by 比亚迪股份有限公司 filed Critical 比亚迪股份有限公司
Publication of WO2020220486A1 publication Critical patent/WO2020220486A1/fr

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/10Particle separators, e.g. dust precipitators, using filter plates, sheets or pads having plane surfaces
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/42Auxiliary equipment or operation thereof
    • B01D46/4227Manipulating filters or filter elements, e.g. handles or extracting tools
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K17/00Safety valves; Equalising valves, e.g. pressure relief valves
    • F16K17/40Safety valves; Equalising valves, e.g. pressure relief valves with a fracturing member, e.g. fracturing diaphragm, glass, fusible joint

Definitions

  • the present disclosure relates to the field of vehicle technology, and in particular, to an explosion-proof valve, a battery pack, and a vehicle.
  • the battery cells in the battery pack will produce dust when they are damaged and burned.
  • the dust will be discharged from the battery pack explosion-proof valve along with the high-pressure gas generated by the cells. Excessive dust will accumulate in the battery pack explosion-proof valve, causing The exhaust of the explosion-proof valve of the battery pack is not smooth, and some dust is discharged out of the battery pack, which can also cause damage to the external environment and the crowd. .
  • the traditional battery pack explosion-proof valve cannot clean up the dust accumulated in it, resulting in poor exhaust effect, which affects the exhaust effect of the battery pack explosion-proof valve.
  • the present disclosure aims to solve one of the above technical problems in the prior art at least to a certain extent. For this reason, the present disclosure proposes an explosion-proof valve, which has a better exhaust effect.
  • the present disclosure also proposes a battery pack with the above explosion-proof valve.
  • the present disclosure also proposes a vehicle with the above-mentioned battery pack.
  • An explosion-proof valve includes: a valve body having a valve body inlet and a valve body outlet, a flow path is formed between the valve body inlet and the valve body outlet; a diaphragm, so The diaphragm is arranged in the flow path and used to block the valve body inlet and the valve body outlet; a filtering structure, the filtering structure is arranged in the flow path, and the filtering structure is located in the valve The position between the body inlet and the diaphragm, the filter structure is used to filter dust, wherein the fluid entering through the valve body inlet and discharged from the valve body outlet has a first circulation path and a second circulation path, When the fluid flows according to the first circulation path, the fluid passes through the filter structure in a first direction, and when the fluid flows according to the second circulation path, the fluid passes through the filter structure in a second direction, wherein the first One direction is opposite to the second direction.
  • the explosion-proof valve is provided with a filter structure to ensure smooth exhaust of the circulation path, so as to avoid damage to the battery pack caused by the explosion-proof valve being unable to exhaust in time.
  • explosion-proof valve according to the disclosed embodiment may also have the following additional technical features:
  • the filter structure is a filter membrane or a filter mesh.
  • the filtering structure is a sheet structure.
  • the filter structure is a horizontally arranged diaphragm structure.
  • the filter structure has an inner surface and an outer surface.
  • the fluid flows according to the first circulation path, the fluid flows from the outer surface to the inner surface, and when the fluid flows according to the second circulation path, When the path flows, fluid flows from the inner surface to the outer surface.
  • the first circulation path is a normal circulation path
  • the second circulation path is a dust removal and anti-blocking circulation path
  • the first direction is a direction from bottom to top
  • the second direction is a direction from top to bottom
  • a dust collection port is provided on the valve body at a position corresponding to the filter structure.
  • the dust collection port is located directly below the filtering structure.
  • the fluid entering the valve body from the inlet of the valve body flows along the second flow path in a manner of directly impacting the filter structure.
  • a battery pack according to another aspect of the present disclosure includes the aforementioned explosion-proof valve.
  • a vehicle according to another aspect of the present disclosure includes the above-mentioned battery pack.
  • Figure 1 is a cross-sectional view of an explosion-proof valve according to an embodiment of the present disclosure
  • Figure 2 is a cross-sectional view of an explosion-proof valve according to an embodiment of the present disclosure
  • FIG. 3 is a schematic diagram of the flow of a first circulation path and a second circulation path according to an embodiment of the present disclosure
  • Figure 4 is a partial cross-sectional view of an explosion-proof valve according to an embodiment of the present disclosure
  • Figure 5 is a partial cross-sectional view of a battery pack according to an embodiment of the present disclosure.
  • Fig. 6 is a schematic structural diagram of a vehicle according to an embodiment of the present disclosure.
  • Explosion-proof valve 100 valve body 1, valve body inlet 11, valve body outlet 12, first filter structure 21, inner surface 211, outer surface 212, first filter structure mounting port 13, first communicating hole 14, second communicating hole 15.
  • first and second are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. Thus, the features defined with “first” and “second” may explicitly or implicitly include one or more of these features. In the description of the present disclosure, "a plurality of” means at least two, such as two, three, etc., unless otherwise specifically defined.
  • the terms “installed”, “connected”, “connected”, “fixed” and other terms should be understood in a broad sense, for example, it may be a fixed connection or a detachable connection , Or integrated; it can be mechanically connected, or it can be electrically connected or can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium, it can be the internal communication of two components or the interaction of two components.
  • installed may be a fixed connection or a detachable connection , Or integrated; it can be mechanically connected, or it can be electrically connected or can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium, it can be the internal communication of two components or the interaction of two components.
  • the "above” or “below” of the first feature of the second feature may include the first and second features in direct contact, or may include the first and second features Not in direct contact but through other features between them.
  • “above”, “above” and “above” the second feature of the first feature include the first feature being directly above and obliquely above the second feature, or it simply means that the level of the first feature is higher than the second feature.
  • the “below”, “below” and “below” the first feature of the second feature include the first feature directly below and obliquely below the second feature, or it simply means that the level of the first feature is smaller than the second feature.
  • the explosion-proof valve 100 according to an embodiment of the present disclosure will be described below with reference to FIGS. 1 to 6.
  • the valve body 1 has a valve body inlet 11 and a valve body outlet 12.
  • the valve body inlet 11 is formed on the inner protective cover of the valve body 1
  • the valve body outlet 12 is formed on the outer protective cover of the valve body 1.
  • Cover where the fluid in the battery pack 300 can enter the flow path through the valve body inlet 11, when the battery pack 300 is abnormal and the internal pressure of the battery pack 300 increases to a certain extent, the diaphragm on the explosion-proof valve 100 ruptures , The fluid is discharged out of the battery pack 300 through the valve body outlet 12, that is, the fluid in the battery pack 300 can be exhausted through the circulation path.
  • multiple circulation paths may be formed between the valve body inlet 11 and the valve body outlet 12.
  • the fluid enters the flow path through the valve body inlet 11 and acts on the membrane of the explosion-proof valve 100 When filming, the dust in the fluid is filtered out through the filter structure.
  • the diaphragm is arranged in the flow path and is used to block the valve body inlet 11 and the valve body outlet 12 to prevent foreign matter from entering the battery pack 300 from the explosion-proof valve 100.
  • the diaphragm will be pushed by the high-pressure gas against the puncture structure provided on the valve body 1, so that the diaphragm ruptures, and then A large amount of high-pressure gas in the battery pack 300 can be discharged from the explosion-proof valve 100 to the outside of the battery pack 300 to prevent the battery pack 300 from exploding.
  • a filter structure is provided in the explosion-proof valve 100, wherein the filter structure is provided in each flow path to filter dust in the fluid flowing through the corresponding flow path to ensure the unobstructed flow of each flow path, so that the explosion-proof valve 100 When the battery cell is damaged, it can start normally and discharge gas to avoid damage to the battery pack 300.
  • the flow path includes: a first flow path (the solid line path in Figure 3) and a second flow path (the dotted line path in Figure 3), that is, there are two flow paths in the explosion-proof valve 100
  • the filtering structure includes: a first filtering structure 21, which is arranged on the valve body 1, and is used to filter the fluid entering the explosion-proof valve 100.
  • the fluid passes through the first filter structure 21 when flowing according to the first flow path or the second flow path, but the direction of passing through the first filter structure 21 is opposite.
  • the fluid is a mixture of gas and dust mixed with gas generated when the cells in the battery pack 300 are damaged.
  • the dust when fluid with dust flows through the first filter structure 21 from one of the first circulation path or the second circulation path, the dust will adhere to the first filter structure 21 due to the filtering effect of the first filter structure 21.
  • the direction of the fluid passing through the first filter structure 21 is opposite, that is, the fluid flows from the The other side surface of a filter structure 21 flows in, so the dust attached to one side surface of the first filter structure 21 is blown away from the first filter structure 21 to achieve the effect of cleaning the dust.
  • the first filter structure 21 may be a filter membrane or a filter mesh with a smaller pore size.
  • the first filter structure 21 may be a filter membrane or a filter mesh.
  • the first filtering structure 21 may be a sheet structure.
  • the first filter structure 21 may be a horizontally arranged membrane structure. That is, the first filter structure 21 does not have a ravine or curved structure. Thus, the dust attached to the first filter structure 21 can be removed more easily.
  • the first filter structure 21 has an inner surface 211 and an outer surface 212, where the fluid flows from the outer surface 212 to the inner surface 211 when the fluid flows according to the first circulation path, and the dust contained in the fluid will be caused by
  • the first filter structure 21 is attached to the outer surface 212 by the filtering effect.
  • the dust attached to the outer surface 212 will be affected by the impact of the fluid.
  • the bottom is separated from the outer surface 212, and the dust removal effect is realized.
  • the inner surface 211 is a side surface of the first filter structure 21 close to the valve body outlet 12
  • the outer surface 212 is a side surface of the first filter structure 21 away from the valve body outlet 12.
  • the first circulation path is a normal circulation path
  • the second circulation path is a dust removal and anti-blocking circulation path. That is, when the explosion-proof valve 100 is under normal working conditions (the outer surface 212 is not covered by dust), fluid will be discharged from the first flow path to the outside of the battery pack 300, and when the explosion-proof valve 100 is under abnormal working conditions (the outer surface 212 Covered by dust), fluid will be discharged from the second circulation path to the outside of the battery pack 300 to clean the dust on the first filter structure 21 and restore the explosion-proof valve 100 to a normal state.
  • a first filter structure installation port 13 is formed in the valve body 1, the first filter structure 21 is installed in the first filter structure installation port 13, and the valve body 1 is also formed with spaced apart
  • the first communication hole 14 is opened and the second communication hole 15 is closed, so that the fluid enters from the valve body inlet 11 and then flows through the first communication hole 14 and the installation of the first filter structure 21 in sequence.
  • the first filter structure mounting opening 13 allows dust to adhere to the outer surface 212 of the first filter structure 21 to achieve the filtering effect of the first filter structure 21 and prevent dust from being discharged outside the battery pack 300 and affecting the external environment.
  • the first communication hole 14 When the fluid flows according to the second flow path, the first communication hole 14 is closed and the second communication hole 15 is opened.
  • the fluid enters from the valve body inlet 11 and then flows through the second communication hole 15 and the first filter structure 21 in turn.
  • a filter structure installation opening 13 to remove dust attached to the outer surface 212 of the first filter structure 21.
  • the explosion-proof valve 100 further includes: a first valve 3 and a first valve driving part 4, the first valve 3 is movably arranged in the valve body 1, and the first valve driving part 4 is used to drive the first valve A valve 3 moves so that the first valve 3 opens or closes the first communication hole 14.
  • the first valve driving part 4 drives the first valve 3 to open the first communication hole 14, and fluid will flow in from the first communication hole 14 to realize the fluid flow according to the first circulation path.
  • the first filtering structure 21 can function to filter dust, so that the dust adheres to the outer surface 212. When the dust adheres to a certain degree, the first flow path is blocked.
  • the first valve driving part 4 will drive the first valve 3 to close the first communication hole 14, and fluid will flow in from the second communication hole 15 to achieve the The second circulation path flows, so that the fluid can flow in from the inner surface 211 to impact the dust attached to the outer surface 212, thereby achieving the effect of dust removal and ensuring the unobstructedness of the first circulation path.
  • the first valve driving unit 4 will again drive the first valve 3 to open the first communication hole 14, thereby reciprocating operation.
  • the filtering structure further includes: a second filtering structure 22, which can also filter the dust contained in the fluid.
  • the second filter structure 22 may be a filter membrane or a filter mesh with a smaller pore size.
  • a second filter structure installation port 16 for installing the second filter structure 22 is also formed in the valve body 1 to stably install the second filter structure 22 in the valve body 1.
  • the fluid first passes through the first filter structure 21 and then passes through the second filter structure 22 when flowing according to the second circulation path.
  • the fluid flows according to the first circulation path until the dust accumulates on the outer surface 212, after the switching of the first valve 3, the fluid flows according to the first circulation path to remove the dust on the outer surface 212, in order to avoid The dust falling from the outer surface 212 is discharged out of the battery with the fluid. Therefore, a second filter structure 22 is provided between the valve body outlet 12 and the first filter structure 21 to form a second layer of filtration, which can effectively avoid The external environment causes pollution.
  • the explosion-proof valve 100 further includes: a second valve 5, the second valve 5 is movably arranged in the valve body 1 and used to connect or isolate the first filter structure installation port 13 and the second filter structure installation ⁇ 16. Wherein, when the fluid needs to flow according to the first flow path, the second valve 5 blocks the first filter structure installation opening 13 and the second filter structure installation opening 16, and when the fluid needs to flow according to the second flow path, the second valve 5 Connect the first filter structure installation port 13 and the second filter structure installation port 16.
  • the second valve 5 is driven by the action of the first valve 3. That is, the first valve driving part 4 drives the first valve 5 to move so that when the first valve 5 closes the first communication hole 14, the second valve 5 acts to make the first filter structure installation port 13 and the second filter structure 22 communicate.
  • the first valve 3 and the second valve 5 can be operated in conjunction. That is, when the explosion-proof valve 100 is under normal working conditions, the first valve driving part 4 will drive the first valve 3 to open the first communication hole 14, and the second valve 5 will also be driven by the first valve 3 and the first valve driving part 4.
  • the first filter structure installation opening 13 and the second filter structure installation opening 16 are blocked downward to allow fluid to flow in from the first communication hole 14 to realize the fluid flow according to the first circulation path.
  • the first valve driving part 4 When the explosion-proof valve 100 is under abnormal working conditions, the first valve driving part 4 will drive the first valve 3 to close the first communication hole 14, and the second valve 5 will also be connected to the first valve 3 and the first valve driving part 4.
  • the first filter structure installation port 13 and the second filter structure installation port 16 are connected by driving, so that fluid flows in from the second communication hole 15 to realize the fluid flow according to the second circulation path.
  • a first elastic portion 7 is provided between the first valve 3 and the second valve 5.
  • the first elastic portion 7 is compressed, and the first valve 3 is The first elastic part 7 is driven so that the first valve 3 can move normally and can return to the initial position.
  • the first valve driving part 4 drives the first valve 3 to move in the direction of closing the first communication hole 14
  • the first valve 3 will press the first elastic part 7, and when the first valve driving part 4
  • the first valve 3 will return to the initial position under the action of the elastic restoring force of the first elastic part 7, so as to realize the fluid between the first circulation path and the second circulation path.
  • the explosion-proof valve 100 further includes: a second elastic portion 8, which is elastically disposed between the valve body 1 and the second valve 5.
  • the first elastic portion 7 and the second elastic portion The parts 8 are respectively located on both sides of the second valve 5. As the first valve 3 is driven by the first valve driving part 4 to approach the second valve 5, the elastic force of the first elastic part 7 becomes larger to be suitable for driving the second valve.
  • the second valve 5 moves, so that the second valve 5 can move from the position separating the first filter structure installation port 13 and the second filter structure installation port 16 to the position connecting the first filter structure installation port 13 and the second filter structure installation port 16
  • the first valve driving part 4 does not apply driving force to the first valve 3
  • the first valve 3 will return to the initial position under the driving of the first elastic part 7, and the second valve 5 will be in the second elastic Driven by the part 8, it is restored to the position that cuts off the first filter structure installation opening 13 and the second filter structure installation opening 16, thereby realizing the switching of the fluid flow between the first circulation path and the second circulation path.
  • the filter structure further includes: a third filter structure 23, the third filter structure 23 is provided at the front end of the second communication hole 15, when the fluid flows through the second flow path through the third filter Structure 23, and then pass through the first filtering structure 21.
  • the third filter structure 23 can preliminarily filter the fluid flowing according to the second flow path to prevent dust from being accumulated on the inner surface 211 due to the filtering effect of the first filter structure 21 when flowing through the second flow path. , Causing the first filter structure 21 to be blocked and difficult to clean.
  • the third filter structure 23 has a dust deposition surface 231 corresponding to the valve body inlet 11, and the dust deposition surface 231 is a side surface of the third filter structure 23 facing the valve body inlet 11, when the fluid flows through the third filter structure At 23 o'clock, dust will accumulate on the dust deposition surface 231 due to the filtering effect of the third filter structure 23, and the dust deposition surface 231 is configured to change its shape, so that at least a part of the dust on the dust deposition surface 231 falls off.
  • the filter structure is a filter membrane or a filter mesh.
  • the filter membrane or filter mesh has a dust deposition surface 231.
  • the dust deposition surface 231 is a side of the fluid flowing through the filter membrane or filter mesh first.
  • the dust deposition surface 231 has an initial shape and a deformed shape, and when the deformed shape of the dust deposition surface 231 changes to the original shape, at least a part of dust falls from the dust deposition surface 231.
  • the fluid when the first communication hole 14 is opened and the second communication hole 15 is closed, the fluid will flow according to the first circulation path. At this time, the fluid will not flow through the third filter structure 23, and when the first communication hole 15 When the hole 14 is closed and the second communicating hole 15 is opened, the fluid will flow according to the second flow path. At this time, the fluid will flow through the third filter structure 23 to transform the dust deposition surface 231 from the initial form to the deformed form.
  • the dust deposition surface 231 is a convex first convex surface in the initial form, and the dust deposition surface 231 is a convex second convex surface in the deformed form.
  • the convexity of the first convex surface is greater than that of the second convex surface. Degree of convexity.
  • the dust deposition surface 231 is a convex first convex surface in the initial form, and the dust deposition surface 231 is a flat surface in the deformed form.
  • the dust deposition surface 231 in the initial form is a convex first convex surface
  • the dust deposition surface 231 in the deformed form is a concave first concave surface.
  • the above-mentioned convexity means that the first convex surface and the second convex surface are convex toward the valve body inlet 11 side, that is, convex toward the upstream of the fluid.
  • the above-mentioned concave means that the first convex surface and the second convex surface are concave toward the valve body outlet 12 side, that is, concave toward the downstream of the gas.
  • the explosion-proof valve 100 further includes: a drive holding structure 9, which drives and stops the third filter structure 23, so that the dust deposition surface 231 is suitable for changing from a deformed form to The initial shape changes and is suitable to be maintained in the initial shape, so as to clean the dust attached to the dust deposition surface 231.
  • the drive holding structure 9 includes: a drive holder 91, which is arranged in the valve body 1.
  • the drive holder 91 can press the side of the third filter structure 23 away from the dust deposition surface 231 to make The dust attached to the dust deposition surface 231 falls off, and the holder 91 is driven to open or close the second communication hole 15.
  • the second communication hole 15 is closed by the drive holder 91.
  • the dust deposition surface 231 is in the initial form under the pressure of the drive holder 91.
  • the driving cage 91 opens the second communication hole 15, the driving cage 91 is no longer against the dust deposition surface 231.
  • the dust deposition surface 231 changes from the initial form to the deformed form under the action of the fluid, and the dust will adhere to At this time, the dust deposition surface 231 is on, and when the driving holder 91 closes the second communication hole 15 again, the driving holder 91 will squeeze the dust deposition surface 231 again to restore the dust deposition surface 231 from the deformed form to the original form , In turn, the dust attached to the dust deposition surface 231 is removed, so as to complete the cleaning of the third filter structure 23.
  • a support body 141 is formed in the valve body 1, and a support channel is formed in the support body 141.
  • the support channel is the second communication hole 15, and at least a part of the drive holder 91 is slidably arranged
  • the filter structure is provided on the side of the support body 141 facing the valve body inlet 11, so that the drive holder 91 can block the second communication hole 15 and can easily stop the third filter structure 23 to achieve Clean the dust on the dust deposition surface 231.
  • the drive cage 91 includes a first plate 911, a connecting plate 912, and a second plate 913.
  • the radial dimension of the first plate 911 matches the diameter of the support channel.
  • the plate 911 is located in the support passage and can slide to the side close to the valve body outlet 12 relative to the support passage.
  • the first plate 911 is located in the second communication hole 15, and the connecting plate 912 connects the first plate 911 and the second plate 911.
  • the plate 913 and the second plate 913 extend out of the support channel and are adapted to be pressed and limited on the side of the support body 141 facing the valve body outlet 12 and close the support channel. Wherein, when the second plate 913 moves in a direction away from the second communication hole 15, the second communication hole 15 is opened.
  • the radial dimension of the first plate 911 is smaller than the radial dimension of the second plate 913.
  • the first plate 911 can be stably moved in the second communication hole 15, and the area of the second plate 913 is larger than the cross-sectional area of the second communication hole 15, so that the second plate 913 can be blocked stably Live the second communicating hole 15.
  • a first plate protrusion 9111 is provided on the side of the first plate 911 facing the filter structure, and the first plate protrusion 9111 is adapted to support the third filter structure 23, so that the dust of the third filter structure 23 is deposited.
  • the surface 231 is configured as a convex surface. That is, when the first plate protrusion 9111 supports the third filter structure 23, the dust deposition surface 231 is in an initial form, and when the first plate protrusion 9111 does not support the third filter structure 23, the dust deposition surface 231 is in a deformed form.
  • the convex means that the first convex surface and the second convex surface are convex toward the valve body inlet 11 side, that is, convex toward the upstream of the fluid.
  • the drive holding structure 9 further includes: a third elastic portion 92, the third elastic portion 92 elastically presses the drive retainer 91 and is located on the drive retainer 91 away from the third filter structure 23 On one side, the drive holding structure 9 can move away from the second communication hole 15 under the driving of the third elastic portion 92 to open the second communication hole 15.
  • the third elastic portion 92 is configured to be able to apply a resilient restoring force to the third filter structure 23 to shake the third filter structure 23 so that at least a part of the dust on the dust deposition surface 231 falls. That is, the rebound vibration of the third elastic portion 92 becomes the shaking and dust removal of the third filter structure 23 during the rebound.
  • a stop step 17 is provided on the valve body 1, and the stop step 17 is located between the first filter structure installation opening 13 and the second filter structure installation opening 16 and is suitable for stopping and limiting the drive retainer 91,
  • the drive holder 91 In order to enable the drive holder 91 to isolate the first filter structure installation port 13 and the second filter structure installation on one side of the first filter structure installation port 13 and the second filter structure installation port 16 when the fluid flows according to the second flow path The space between the ports 16 so that fluid can enter from the second communication hole 15 and sequentially flow through the first filter structure 21 and the second filter structure 22, and finally out of the valve body outlet 12, so as to achieve fluid filtration and Clean up the dust.
  • the first valve 3 includes: a first valve first end plate 31, a first valve second end plate 32, and a first valve first end plate 31 connected to the first valve second end plate 32
  • the first valve connecting rod 33 and the first valve connecting rod 33 pass through the second valve 5, and the first elastic part 7 is sleeved on the first valve connecting rod 33.
  • the first valve driving part 4 is adapted to apply a driving force to the second end plate 32 of the first valve to move the second end plate 32 of the first valve and drive the first end plate 31 of the first valve to move, and the second valve 5 will move in the same direction as the first valve 3 under the action of the first elastic part 7, thereby realizing the switching of the fluid flow between the first circulation path and the second circulation path.
  • a first end plate accommodating groove 18 is formed in the valve body 1, and the first end plate accommodating groove 18 is used to accommodate the first end plate 31 of the first valve to prevent the first end plate 31 of the first valve from occupying the first end plate 31.
  • valve body 1 is also formed with a driving part accommodating groove 19 directly opposite to the first end plate accommodating groove 18, and the driving part accommodating groove 19 is used to accommodate the first valve driving part 4, wherein the first valve driving The portion 4 is directly opposite to the second end plate 32 of the first valve to prevent the first valve driving portion 4 from occupying the space in the valve body 1, thereby ensuring that the second valve 5 can have sufficient movement space.
  • the first valve driver 4 is an electromagnetic driver
  • the first valve second end plate 32 is a magnetic element that can be magnetically attracted. As a result, it is easier to operate, and the driving stability is better.
  • a displacement sensor 93 is also provided on the drive cage 91, and the displacement sensor 93 communicates with the first valve driving part 4 so that the first valve driving part 4 can drive according to the feedback of the displacement sensor 93
  • the displacement information of the holder 91 drives the first valve 3 to act.
  • the displacement sensor 93 detects that the drive holder 91 moves away from the second communication hole 15, it proves that the valve body 1 is to be switched from the first flow path to the second flow path. At this time, the drive holder 91 opens the second flow path. Two communicating holes 15, and the first valve driving part 4 will receive information to drive the first valve 3 and the second valve 5 to move to close the first communicating hole 14 so that fluid can flow out of the explosion-proof valve 100 from the second flow path .
  • the explosion-proof valve further includes an air pressure sensor, which is located in the flow path.
  • the air pressure sensor is located in the space defined by the drive holder 91 and the diaphragm.
  • the air pressure sensor will sense the change in air pressure and then transmit a signal, and the first valve driving part 4 will receive the signal to drive the first valve 3 and the second valve 5 to move to close the first communication hole 14 so that fluid can flow from the first valve
  • the explosion-proof valve 100 flows out of the second circulation path.
  • the battery pack 300 includes the aforementioned explosion-proof valve 100.
  • the battery pack 300 further includes: a battery pack housing 200 and a dust collecting part 201, wherein the explosion-proof valve 100 is mounted on the battery pack housing 200, and the explosion-proof valve 100 has a valve body dust collecting port 101, and the dust falling from the first filter structure 21 and the third filter structure 23 is suitable for being discharged from the valve body dust collecting port 101 to the outside of the valve body 1 to avoid dust in the valve body 1 Accumulate and cause blockage.
  • the dust collecting part 201 is provided in the battery pack housing 200 for collecting dust discharged from the valve body dust collecting port 101, wherein the dust collecting part 201 is located
  • the dust collecting part 201 has a dust collecting part dust collecting port 2011, the dust collecting part dust collecting port 2011 and the valve body dust collecting port 101 are sealed, so that the dust in the explosion-proof valve 100 can be collected through the valve body
  • the dust opening 101 and the dust collecting opening 2011 of the dust collecting part fall into the dust collecting part 201 to completely discharge the dust in the valve body 1 to the outside of the valve body 1.
  • the dust collection port is the dust collection port 2011, and the dust collection port 2011 is located directly below the first filter structure 21.
  • the fluid entering the valve body 1 from the valve body inlet 11 directly impacts the first
  • the dust on the outer surface 212 will fall from the valve body dust collection port 101 and the dust collection port 2011 to the first filter due to impact force and gravity.
  • the direct impact means that the fluid impacts the first filter structure 21 from top to bottom, so that the dust accumulated on the outer surface 212 of the first filter structure 21 falls off and falls into the dust collecting part 201.
  • the dust collecting part 201 is located in the battery pack housing 200, so as to increase the dust collecting capacity of the dust collecting part 201 so that it can store more dust.
  • a hollow beam is provided in the battery pack housing 200, and the hollow beam is configured as the dust collecting part 201. Constructing the hollow beam as the dust collecting part 201 can make the battery pack 300 more integrated and avoid disposing a separate dust collecting part 201 in the battery pack 300 to occupy unnecessary space.
  • the dust collecting port 2011 of the dust collecting part is provided on the upper surface of the hollow beam so as to collect the dust leaking from the explosion-proof valve 100.
  • the battery pack housing 200 includes a tray and an upper cover.
  • the tray includes a bottom plate and a side frame on the bottom plate.
  • the side frame includes a hollow beam.
  • the explosion-proof valve 100 is provided on the side frame.
  • the dust collection part 201 is provided with a dust adhesion structure, so that the dust falling into the dust collection part 201 can be stably placed in the dust collection part 201 under the adhesion of the dust adhesion structure. In order to prevent the dust in the dust collecting part 201 from flowing back into the explosion-proof valve 100.
  • the dust adhesion structure includes a dust adhesion layer, and the dust adhesion layer is disposed on the bottom surface of the dust collection part 201 that is directly opposite to the dust collection opening 2011 of the dust collection part, so that the dust can enter the dust collection part 201. The first time it is bonded by the dust adhesion layer to ensure the dust collection effect.
  • the hollow beam is a beam of the battery pack 300. As a result, it is more convenient to install the dust collecting part 201, and to connect the explosion-proof valve 100 to the beam, and it is more convenient to arrange the explosion-proof valve 100.
  • a sealing ring is provided between the dust collection port 2011 and the valve body dust collection port 101 to prevent dust from leaking from the gap between the dust collection port 2011 and the valve body dust collection port 101. This affects the surrounding environment, thereby ensuring the dust collection stability of the dust collection part 201.
  • the fluid will instantly impact the diaphragm to damage the diaphragm.
  • the first communication hole 14 is opened, and the second The communication hole 15 is blocked and closed by the drive holder 91, so that fluid can only flow in from the valve body inlet 11 and flow according to the first flow path, and finally discharge from the valve body outlet 12.
  • the drive holder 91 will be driven by the third elastic portion 92 to move away from the second communication hole 15 to between the first filter structure installation opening 13 and the second filter structure installation opening 16
  • the displacement sensor 93 provided on the drive holder 91 detects the movement of the drive holder 91, and will transmit the signal to the first valve drive unit 4 so that the first valve drive unit 4 can drive the first valve 3 and the second valve 3
  • the valve 5 moves, causing the first communication hole 14 to close, the second communication hole 15 to open, and to connect the first filter structure installation port 13 and the second filter structure installation port 16.
  • the fluid will flow according to the second flow path, namely First, it flows through the third filter structure 23, and then flows in from the inner surface 211 of the first filter structure 21 to clean up the dust on the outer surface 212.
  • the cleaned dust will be collected from the valve body dust collecting port 101 and the dust collecting part.
  • the port 2011 falls into the dust collecting part 201 for storage, the fluid passes through the first filter structure 21 and then passes through the second filter structure 22, and is finally discharged from the valve body outlet 12.
  • the first valve 3 and the second valve 5 will return to their original positions to open the first communication hole 14, and the drive holder 91 will also be restored under the drive of the third elastic part 92
  • the second communication hole 15 is closed and the third filter structure 23 is pressed against, so that the dust attached to the dust deposition surface 231 is cleaned out and discharged into the dust collecting part 201.
  • a vehicle 400 (as shown in FIG. 6) according to another embodiment of the present disclosure includes the battery pack 300 described in the above embodiment.
  • Other structures of the vehicle 400 such as a transmission, a braking system, and a steering system, are already known in the prior art and are well known to those skilled in the art. Therefore, other structures of the vehicle 400 are not described in detail here.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Details Of Valves (AREA)

Abstract

L'invention concerne une soupape antidéflagrante (100), un bloc-batterie, et un véhicule. La soupape antidéflagrante comprend : un corps de soupape (1), un diaphragme, et une structure de filtration. Un trajet d'écoulement est prévu entre une entrée de corps de soupape (11) et une sortie de corps de soupape (12). La structure de filtration est disposée dans le trajet d'écoulement. Un fluide introduit par l'entrée de corps de soupape et évacué de la sortie de corps de soupape est pourvu d'un premier trajet d'écoulement et d'un second trajet d'écoulement, lorsque le fluide s'écoule selon le premier trajet d'écoulement, le fluide s'écoule à travers la structure de filtration dans une première direction, et lorsque le fluide s'écoule selon le second trajet d'écoulement, le fluide s'écoule à travers la structure de filtration dans une seconde direction, la première direction et la seconde direction étant opposées l'une à l'autre.
PCT/CN2019/097718 2019-04-29 2019-07-25 Soupape antidéflagrante, bloc-batterie, et véhicule WO2020220486A1 (fr)

Applications Claiming Priority (2)

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CN201910354351.5A CN110185829B (zh) 2019-04-29 2019-04-29 防爆阀、电池包和车辆
CN201910354351.5 2019-04-29

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WO2020220486A1 true WO2020220486A1 (fr) 2020-11-05

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CN111864154B (zh) * 2019-04-29 2022-03-18 比亚迪股份有限公司 电池包和车辆
CN114447515B (zh) * 2022-02-10 2023-07-14 徐州海富轻金属科技有限公司 防爆阀、新能源电池盖板和新能源电池

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