WO2020235504A1 - Dispositif de soupape et unité de consommation de gaz - Google Patents

Dispositif de soupape et unité de consommation de gaz Download PDF

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Publication number
WO2020235504A1
WO2020235504A1 PCT/JP2020/019516 JP2020019516W WO2020235504A1 WO 2020235504 A1 WO2020235504 A1 WO 2020235504A1 JP 2020019516 W JP2020019516 W JP 2020019516W WO 2020235504 A1 WO2020235504 A1 WO 2020235504A1
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WO
WIPO (PCT)
Prior art keywords
valve
flow path
valve device
ring
filter
Prior art date
Application number
PCT/JP2020/019516
Other languages
English (en)
Japanese (ja)
Inventor
和人 松本
勇人 加藤
勝 竹田
和幸 宮田
Original Assignee
岩谷産業株式会社
株式会社ネリキ
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from JP2019094180A external-priority patent/JP7236697B2/ja
Priority claimed from JP2019094181A external-priority patent/JP7236698B2/ja
Application filed by 岩谷産業株式会社, 株式会社ネリキ filed Critical 岩谷産業株式会社
Publication of WO2020235504A1 publication Critical patent/WO2020235504A1/fr

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    • 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
    • F16K27/00Construction of housing; Use of materials therefor
    • F16K27/07Construction of housing; Use of materials therefor of cutting-off parts of tanks, e.g. tank-cars
    • 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
    • F16K51/00Other details not peculiar to particular types of valves or cut-off apparatus
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F17STORING OR DISTRIBUTING GASES OR LIQUIDS
    • F17CVESSELS FOR CONTAINING OR STORING COMPRESSED, LIQUEFIED OR SOLIDIFIED GASES; FIXED-CAPACITY GAS-HOLDERS; FILLING VESSELS WITH, OR DISCHARGING FROM VESSELS, COMPRESSED, LIQUEFIED, OR SOLIDIFIED GASES
    • F17C11/00Use of gas-solvents or gas-sorbents in vessels
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F17STORING OR DISTRIBUTING GASES OR LIQUIDS
    • F17CVESSELS FOR CONTAINING OR STORING COMPRESSED, LIQUEFIED OR SOLIDIFIED GASES; FIXED-CAPACITY GAS-HOLDERS; FILLING VESSELS WITH, OR DISCHARGING FROM VESSELS, COMPRESSED, LIQUEFIED, OR SOLIDIFIED GASES
    • F17C13/00Details of vessels or of the filling or discharging of vessels
    • F17C13/04Arrangement or mounting of valves

Definitions

  • the present invention relates to, for example, a valve device and a gas consumption unit which can be attached to a storage container to regulate the conduction of a fluid and have a safety valve for releasing an excess pressure larger than a predetermined pressure.
  • a safety valve that releases the pressure when an unintended excessive pressure acts may be provided.
  • such a valve device has a safety valve arranged so as to branch from a flow path through which the fluid conducts and project in the direction opposite to the conduction port through which the fluid conducts. It was difficult to construct a compact valve device.
  • an object of the present invention is to provide a valve device and a gas consumption unit which can be attached to a storage container to regulate the conduction of a fluid and can be miniaturized even if a safety valve for releasing an excess pressure larger than a predetermined pressure is provided. ..
  • the present invention is a valve device including a flow path through which a fluid passes, an on-off valve for switching opening and closing in an intermediate portion of the flow path, and a safety valve for opening the fluid having an excess pressure larger than a predetermined pressure.
  • a tubular device main body having one conduction port of the flow path is surrounded, and a surrounding portion having a discharge port for communicating the outside and the inside is provided, and the safety valve is provided inside the surrounding portion.
  • a ring-shaped urging means that is externally fitted to the apparatus main body so as to advance and retreat along the axial direction of the safety valve and urges the safety valve toward the valve closing direction with an urging force of a predetermined pressure or less, and the shaft.
  • Two sealing portions that seal between the device main body and the safety valve, and between the two sealing portions between the device main body and the safety valve, and the flow, at predetermined intervals in the direction.
  • a branch flow path communicating with the road is provided, and the effective area of the sealing portion on the valve closing side of the two sealing portions is wider than the effective area of the sealing portion on the valve opening side.
  • the fluid can be a gas, a liquid, or a gel. According to the present invention, it is possible to regulate the conduction of a fluid by attaching it to a storage container, and it is possible to make it compact even if it is provided with a safety valve that releases an excess pressure larger than a predetermined pressure.
  • the safety valve is configured in a ring shape that fits into the device body so as to advance and retreat along the axial direction of the device body, and surrounds a tubular device body having one conduction port of the flow path.
  • the urging means urges the safety valve provided inside the surrounding portion having the discharge port for communicating the outside and the inside toward the valve closing direction with an urging force of a predetermined pressure or less, and is predetermined in the axial direction.
  • the two sealing portions that seal between the device main body and the safety valve, the two sealing portions between the device main body and the safety valve, and the flow path are spaced apart from each other.
  • the branch flow path is provided.
  • the differential pressure corresponding to the difference in the effective area is a large pressure that exceeds the urging force of the urging means, the safety valve moves in the valve opening direction to open against the urging force of the urging means. It is possible to valve and release excess pressure above a predetermined pressure.
  • the safety valve capable of releasing an excessive pressure equal to or higher than a predetermined pressure is configured in a ring shape that fits into the main body of the device so as to advance and retreat along the axial direction, so that the valve device is compactly configured. be able to.
  • an attachment portion attached to a storage container for storing the fluid, a first flow path extending in the axial direction from the attachment portion, and a second flow path extending in the axial direction from the conduction port.
  • a valve chamber in which the on-off valve is arranged so as to be able to move forward and backward in the opening / closing direction is provided, the flow path is composed of the first flow path and the second flow path, and the valve chamber intersects in the axial direction.
  • the first flow path and the second flow path may be communicated with each other in the crossing direction, and the on-off valve may advance and retreat in the crossing direction in the valve chamber to open and close.
  • the on-off valve can be moved forward and backward in the intersecting direction intersecting the axial direction to switch between opening and closing, so that the valve device is more compact than the valve device in which the on-off valve is moved forward and backward along the axial direction to switch between opening and closing. can do.
  • the branch flow path may communicate with the first flow path. According to the present invention, the excess pressure on the storage container side can be released accurately and sensitively even when the valve is closed.
  • a filter may be provided on the mounting portion. According to the present invention, it is possible to prevent foreign matter from entering the inside of the valve device from the storage container side. Therefore, it is possible to prevent foreign matter from entering the inside of the valve device, which reduces the closing property and causes malfunction.
  • the filter may be formed with a diameter slightly smaller than the inner diameter of the mounting portion, and a ring-shaped closing ring may be provided on the opening side of the filter to close the gap on the outer diameter side. According to the present invention, it is possible to prevent foreign matter from entering the valve device from the storage container side, and the filter can be easily removed for cleaning or replacement.
  • the filter since the filter is formed to have a diameter slightly smaller than the inner diameter of the mounting portion, it can be easily removed from the mounting portion and cleaned or replaced. However, foreign matter may enter through the gap between the filter and the mounting portion, but since a blocking ring is provided on the opening side of the filter to close the gap on the outer diameter side, the filter and the mounting portion It is possible to prevent foreign matter from entering through the gap between the two.
  • a plurality of the filters having different filtration accuracy may be provided at predetermined intervals in the axial direction, and a ring-shaped elastic ring may be provided between the plurality of filters.
  • the difference in filtration accuracy means that the particle size of foreign matter transmitted through the filter is different.
  • the load on each filter is reduced to prevent clogging, and foreign matter is surely prevented from entering the inside of the valve device from the storage container side. can do. More specifically, even if foreign matter permeates the first filter among the plurality of filters having different filtration accuracy provided at predetermined intervals in the axial direction, the next filter allows the foreign matter to enter the inside of the valve device. It can be prevented more.
  • a ring-shaped elastic ring is provided between the plurality of filters arranged at predetermined intervals in the axial direction, a space is secured between the filters. Therefore, the foreign matter that has passed through the filter may stay in the space between the filters without being filtered by the next filter. Therefore, it is possible to reliably prevent foreign matter from entering the inside of the valve device.
  • a decompression mechanism may be provided at the conduction port.
  • a valve device having a depressurizing function can be configured and the fluid can be decompressed and used.
  • the decompression mechanism is a unitized decompression mechanism, and may be detachably attached to the valve device.
  • the unitized decompression mechanism is detachably attached to the conduction port in this way, the fluid can be decompressed and used when the fluid is used.
  • the storage container is filled with the fluid, by removing the pressure reducing mechanism and filling the storage container directly from the conduction port, it is possible to prevent the pressure reducing mechanism from functioning as a conduction direction regulating valve and becoming difficult to fill.
  • a flow path through which a fluid passes, an on-off valve for switching opening and closing in an intermediate portion of the flow path, an attachment portion for attaching a valve device main body at a predetermined position, and the on-off valve are arranged so as to be able to advance and retreat in the opening and closing direction.
  • the valve device may be a so-called container valve device used by being attached to a gas storage container, or a so-called pipe valve device used by being connected to a pipe.
  • a piping valve device in which the mounting portion is provided on both the upstream side and the downstream side in the conduction direction, it may be provided at least on the upstream side mounting portion.
  • a container valve device Japanese Patent Laid-Open No. 2010-223396
  • a gas storage container as a valve device provided with an on-off valve that conducts a fluid such as gas and switches between an open state and a sealed state.
  • Japanese Patent Laid-Open No. 2011 Japanese Patent Laid-Open No. 2011
  • a piping valve device Japanese Patent Laid-Open No. 2011-177843
  • the on-off valve is opened and closed to switch the conduction of the fluid.
  • the foreign substance is mixed in the consumed fluid or the foreign substance is caught inside the valve device to close the valve device. Was likely to decrease.
  • a filter is provided in the mounting portion, the filter is formed with a diameter slightly smaller than the inner diameter of the mounting portion, and a ring-shaped closing ring that closes a gap on the outer diameter side on the opening side of the filter is provided.
  • the provided valve device can prevent foreign matter from entering the inside of the valve device.
  • the filter even if the filter is clogged, it can be easily removed, cleaned or replaced, and foreign matter can be prevented from entering the inside of the valve device. Therefore, it is possible to prevent foreign matter from being mixed into the consumed fluid or foreign matter from being caught inside the valve device and reducing the closing property.
  • the filter in the mounting portion, it is possible to prevent foreign matter from entering the inside of the device.
  • the filter is formed to have a diameter slightly smaller than the inner diameter of the mounting portion, and is provided with a ring-shaped closing ring that closes a gap on the outer diameter side on the opening side of the filter. Therefore, the filter can be firmly mounted on the mounting portion while preventing foreign matter from entering between the filter formed with a diameter slightly smaller than the inner diameter of the mounting portion and the inner diameter of the mounting portion.
  • the filter is formed to have a diameter slightly smaller than the inner diameter of the mounting portion, the filter can be easily removed from the mounting portion by removing the closing ring that fixes the filter to the mounting portion.
  • the clogged filter can be cleaned or replaced, and foreign matter can be prevented from entering the inside of the valve device.
  • a plurality of the filters having different filtration accuracy may be provided at predetermined intervals in the axial direction, and a ring-shaped elastic ring may be provided between the plurality of filters.
  • the load on each filter is reduced, clogging is less likely to occur, and foreign matter is surely prevented from entering the inside of the valve device from the supply side. be able to.
  • the next filter allows the foreign matter to enter the inside of the valve device. It can be prevented more.
  • the ring-shaped elastic ring provided between the plurality of filters arranged at predetermined intervals in the axial direction forms a space between the filters
  • the foreign matter that has passed through the filters is as follows. It may stay in the space between the filters without being filtered by the filters. Therefore, it is possible to reliably prevent foreign matter from entering the inside of the valve device.
  • a flow path through which a fluid passes, an on-off valve for switching opening and closing in an intermediate portion of the flow path, a mounting portion for attaching a valve device main body at a predetermined position, and the on-off valve are arranged so as to be able to move forward and backward in the opening and closing direction.
  • a valve device provided with a valve chamber to be formed, characterized in that a filter is provided in the mounting portion, and a plurality of the filters having different filtration accuracy are provided at predetermined intervals in the axial direction.
  • the present invention it is possible to reliably prevent foreign matter from entering the inside of the valve device. Further, as compared with the case where a filter having high filtration accuracy is used alone, the load on each filter can be reduced and clogging can be made less likely.
  • the next filter allows the foreign matter to enter the inside of the valve device. It can be prevented more. Therefore, compared to the case where a filter with high filtration accuracy is used alone, the load on each filter can be reduced to prevent clogging, and foreign matter can be reliably prevented from entering the inside of the valve device from the supply side. it can.
  • a ring-shaped elastic ring may be provided between the plurality of filters.
  • a ring-shaped elastic ring provided between a plurality of the filters arranged at predetermined intervals in the axial direction forms a space between the filters, so that foreign matter that has passed through the filters can be removed. It may stay in the space between the filters without being filtered by the next filter. Therefore, it is possible to reliably prevent foreign matter from entering the inside of the valve device.
  • the filter may be formed with a diameter slightly smaller than the inner diameter of the mounting portion, and a ring-shaped closing ring may be provided on the opening side of the filter to close the gap on the outer diameter side. According to the present invention, it is possible to prevent foreign matter from entering the inside of the valve device, and the filter can be easily removed for cleaning or replacement.
  • the filter since the filter is formed to have a diameter slightly smaller than the inner diameter of the mounting portion, it can be easily removed from the mounting portion and cleaned or replaced. However, foreign matter may enter through the gap between the filter and the mounting portion, but since a blocking ring is provided on the opening side of the filter to close the gap on the outer diameter side, the filter and the mounting portion It is possible to prevent foreign matter from entering through the gap between the two.
  • a decompression mechanism may be provided at the conduction port.
  • a valve device having a depressurizing function can be configured and the fluid can be decompressed and used.
  • the mounting portion is configured to be mounted on a storage container for storing the fluid, and a first flow path extending in the axial direction from the mounting portion and a first flow path extending in the axial direction from the conduction port.
  • Two flow paths and a valve chamber in which the on-off valve is arranged so as to be able to move forward and backward in the opening / closing direction are provided, the flow path is composed of the first flow path and the second flow path, and the valve chamber is the valve chamber.
  • the first flow path and the second flow path may be communicated with each other in the crossing direction intersecting in the axial direction, and the on-off valve may advance and retreat in the crossing direction in the valve chamber to open and close.
  • the on-off valve since the on-off valve can be moved forward and backward in the intersecting direction intersecting the axial direction to switch between opening and closing, it can be configured more compactly than a valve device for moving the on-off valve forward and backward along the axial direction to switch between opening and closing. ..
  • the above-mentioned valve device a storage container to which the attachment portion in the valve device is attached and gas is stored as the fluid, and a gas combustion portion connected to the conduction port and burning the gas are provided. It is characterized by being a provided gas consumption unit.
  • the gas can be burned in the gas combustion section while adjusting the derivation amount of the gas stored in the storage container or by a preset derivation amount, and can be opened when an excessive pressure is applied. it can.
  • the gas is hydrogen gas
  • the storage container may store the hydrogen gas in a hydrogen storage alloy. According to the present invention, hydrogen gas can be safely burned.
  • the pressure when storing it in a hydrogen storage alloy is lower, so that hydrogen gas can be safely burned. ..
  • the hydrogen storage alloy When hydrogen gas stored in a hydrogen storage alloy is used, the hydrogen storage alloy is pulverized by repeating the absorption and release of the hydrogen gas. Therefore, by providing the above-mentioned filter in the mounting portion, the powder can be obtained. It is possible to prevent the converted hydrogen storage alloy from entering the valve device.
  • valve device and a gas consumption unit that can be attached to a storage container to regulate the conduction of a fluid and can be miniaturized even if a safety valve for releasing an excess pressure larger than a predetermined pressure is provided.
  • Sectional view of the valve device A cross-sectional view of the valve device in a state where the main body mechanism and the decompression mechanism are disassembled. Explanatory view by schematic exploded perspective view of the main body mechanism. Perspective view of the mounting part. An exploded perspective view of the mounting part. Schematic cross-sectional view of a hydrogen combustion unit to which a valve device is attached. The schematic sectional view which shows the operating state of the valve device in a hydrogen combustion unit. The schematic sectional view which shows the operating state of the valve device in a hydrogen combustion unit. The schematic sectional view which shows the operating state of the valve device in a hydrogen combustion unit. The schematic sectional view which shows the operating state of the valve device in a hydrogen combustion unit. Sectional drawing of the main body mechanism of another embodiment. Explanatory drawing of the container valve device of another embodiment.
  • FIG. 1 shows a cross-sectional view of the valve device 1
  • FIG. 2 shows a cross-sectional view of the valve device 1 in a state where the main body mechanism 2 and the decompression mechanism 3 are disassembled
  • FIG. 3 is a schematic perspective view of the main body mechanism 2.
  • An explanatory diagram is shown.
  • FIG. 4 shows a perspective view of the mounting portion 11
  • FIG. 5 shows an exploded perspective view of the mounting portion 11
  • FIG. 6 shows a schematic cross-sectional view of the hydrogen combustion unit X to which the valve device 1 is mounted.
  • Reference numeral 9 denotes a schematic cross-sectional view showing an operating state of the valve device 1 in the hydrogen combustion unit X. It should be noted that FIGS. 7 to 9 show an enlarged part of the hydrogen combustion unit X.
  • FIG. 3A shows an exploded perspective view of the relief body 41 separated from the body 10, and FIG. 3B shows a perspective view of the relief body 41 assembled.
  • FIG. 3 in order to clarify the configuration of the main body mechanism 2, particularly the configuration of the relief body 41, a part of the front side in the circumferential direction is shown in a transparent state. Further, the internal structure of the body 10 and the cover portion 30 are not shown.
  • FIG. 4 showing a perspective view of the mounting portion 11
  • FIG. 5 showing an exploded perspective view of the mounting portion 11, in order to clarify the configuration of the mounting portion 11 and the configuration of each element mounted on the mounting portion 11, the usage state
  • the mounting portion 11 arranged downward is shown so as to face upward.
  • FIGS. 4 and 5 a part of the front side of the mounting portion 11 in the circumferential direction is shown in a transparent state.
  • FIG. 6 illustrates a cross-sectional view of the hydrogen combustion unit X, but only above the storage container Y.
  • FIG. 7 shows a schematic cross-sectional view of the valve device 1 assembled to the hydrogen combustion unit X with the on-off valve 22 opened
  • FIG. 8 shows a schematic cross-sectional view of the valve device 1 with the pressure reducing mechanism 3 operating.
  • FIG. 9 shows a schematic cross-sectional view of the main body mechanism 2 in a state where the relief body 41 is opened.
  • the left-right direction in FIG. 1 is the axial direction L
  • the right side in FIG. 1 is the base end side Lb
  • the left side is the tip end side Lf.
  • the valve device 1 is a valve device that can be attached to the storage container Y (FIG. 6) to regulate the conduction of hydrogen gas stored in the storage container Y and is provided with a safety valve unit 40 that releases an excess pressure larger than a predetermined pressure. is there.
  • the valve device 1 is configured by connecting the main body mechanism 2 and the decompression mechanism 3 in the axial direction L so as to be detachable.
  • the main body mechanism 2 is composed of a body 10, an opening / closing operation unit 20, a cover unit 30, a safety valve unit 40, and a filter unit 50 along the axial direction L.
  • the body 10 has a cylindrical mounting portion 11 from the base end side Lb to the tip end side Lf, a cylindrical central diameter large portion 12 to which the opening / closing operation portion 20 is mounted, and a mounting portion having a diameter larger than that of the mounting portion 11. It has the same diameter as 11 and is composed of a tubular main body 13 to which the decompression mechanism 3 is connected.
  • the mounting portion 11 has a screw thread 111 screwed into the mounting port Ya on the upper portion of the storage container Y (FIG. 6) on the outer periphery, and the base end side Lb on which the filter portion 50 can be mounted is opened. It is cylindrical with a filter space 112.
  • the large central diameter portion 12 has a disk shape having a diameter about twice that of the mounting portion 11, and provides a columnar opening / closing space 121 extending in the radial direction from a part of the outside in the circumferential direction to a depth exceeding the center.
  • the opening / closing space 121 is a substantially cylindrical space in which the opening / closing operation unit 20 is mounted to switch between opening and closing, and the first space 122 and the central valve chamber portion constituting the valve chamber are formed from the outer diameter (lower side in FIG. 1). It is composed of 123 and a third space 124.
  • the operating body 21 of the opening / closing operation unit 20 is arranged in the first space 122, and the opening / closing valve 22 of the opening / closing operation unit 20 is arranged in the central valve chamber unit 123.
  • an on-off spring 23 that urges the on-off valve 22 in the valve-opening direction (downward in FIG. 1) is arranged.
  • the first space 122 is provided with a screw groove 125 that is exposed to the outside of the opening / closing space 121 and is screwed with a screw thread 211 provided on the outer peripheral surface of the operating body 21, and is screwed in the radial direction by the rotational operation of the operating body 21. It is configured to allow entry and exit.
  • the central valve chamber portion 123 is provided near the center of the opening / closing space 121 extending in the radial direction, is a cylindrical space having a diameter smaller than that of the first space 122, and is provided with a tapered portion 126 on the side of the third space 124. ing.
  • the third space 124 is a bottomed cylindrical space having a diameter smaller than that of the central valve chamber portion 123 in which the opening / closing spring 23 that is externally fitted to the extending portion 222 of the on-off valve 22 is arranged.
  • the tubular main body 13 has a cylindrical shape extending from the central diameter large portion 12 to the tip side Lf, the tip side Lf side is opened inside, and the mounting convex portion 61 of the decompression body 60 of the decompression mechanism 3 described later is inserted.
  • An insertion space 131 is provided.
  • the insertion space 131 is a bottomed space having a depth of about 2/3 of the length in the axial direction L in the tubular main body 13.
  • Mounting grooves 132 and 133 for mounting the O-ring 4 having an elliptical cross section are provided near the center of the tubular main body 13 in the axial direction and on the outer circumference of the base end side Lb. More specifically, the mounting grooves 132 and 133 are substantially U-shaped grooves whose three surfaces are surrounded by the side surface of the tip end side Lf and the base end side Lb and the bottom surface inside the diameter, and the outside diameter is open.
  • the mounting groove 132 provided near the center of L of the tubular main body portion 13 has a smaller diameter than the mounting groove 133 provided on the base end side Lb.
  • the bottom surface of the mounting groove 132 provided near the center of L of the tubular main body portion 13 has a smaller diameter than the bottom surface of the mounting groove 133 provided on the base end side Lb. Therefore, the O-ring 4a mounted on the mounting groove 132 has a smaller diameter than the O-ring 4b mounted on the mounting groove 133.
  • a first flow path R1 and a second flow path R2 are provided inside the opening / closing space 121. Further, the first flow path R1 passes through the side of the central valve chamber portion 123 in the third space 124 inside the opening / closing space 121, and extends in the axial direction L from the filter space 112 of the mounting portion 11 toward the tip side Lf. ing.
  • the second flow path R2 communicates the central valve chamber portion 123 constituting the valve chamber and the insertion space 131 in the axial direction L.
  • first flow path R1 extends beyond the first space 122 to the tip end side Lf of the tubular main body portion 13, and has a diameter from the tip end side of the first flow path R1 toward the outer surface of the tubular main body portion 13.
  • a third flow path R3 extending in the direction and communicating with the outside of the tubular main body 13 is provided.
  • the outer end of the third flow path R3 is located between the mounting grooves 132 and 133 arranged at predetermined intervals in the axial direction L. Further, the insertion space 131 through which the end of the tip end side Lf of the second flow path R2 communicates serves as a conduction port in the main body mechanism 2.
  • the opening / closing operation unit 20 is mounted in the opening / closing space 121 of the central diameter large portion 12 of the body 10, and has a configuration in which the opening / closing operation is switched in the radial direction, and is mounted in the first space 122 constituting the opening / closing space 121. It is composed of an on-off valve 22 mounted on the body 21, a central valve chamber portion 123, and an on-off spring 23 arranged in the third space 124 and urging the on-off valve 22 to the outside diameter (lower in FIG. 1).
  • the operating body 21 has a cylindrical shape mounted on the first space 122, and a screw thread 211 screwed into a screw groove 125 formed on the inner surface of the first space 122 is formed on the outer peripheral surface, and an operating tool (rotating operation tool) is operated.
  • An insertion recess 212 into which an insertion recess 212 (not shown) can be inserted is provided on the outer diameter.
  • the on-off valve 22 has a cylindrical shape to be attached to the central valve chamber portion 123 constituting the opening / closing space 121, and has a pre-throttled pre-throttle portion 221 on the tip side (upper in FIG. 1) from the pre-throttle portion 221.
  • An extension portion 222 that extends is provided.
  • the on-off valve 22 is provided with an O-ring 4 (see FIG. 1) on the side of the operating body 21, more specifically, on the side of the operating body 21 from the third flow path R3 and in the vicinity of the pre-throttle portion 221. It is provided.
  • the opening / closing spring 23 is a coil spring that is arranged in the third space 124 and is externally fitted to the extending portion 222, and is in the direction of separating the opening / closing valve 22, that is, the side of the operating body 21 that is outside the diameter (lower in FIG. 1). ) Is configured to be urged.
  • the opening / closing valve 22 resists the urging force of the opening / closing spring 23. Move to the side of 23.
  • the on-off valve 22 moved to the opening / closing spring 23 side is in the valve closing position (upper position in FIG. 1) in this way, the front throttle portion 221 is located on the tapered portion 126 in the opening / closing space 121, and the O-ring 4 Sealed by.
  • the cover portion 30 covers the tubular main body portion 13 and the central diameter large portion 12 of the body 10, the front end side cover portion 31 covering the tubular main body portion 13 and the proximal end side covering the central diameter large portion 12. It is formed by the cover portion 32.
  • the tip side cover portion 31 has a cylindrical shape having an inner surface having a diameter larger than the outer circumference of the tubular main body portion 13, and a gable wall 311 is provided on the tip side Lf. In this way, a space for arranging the safety valve portion 40, which will be described later, can be formed between the front end side cover portion 31, the gable wall 311 and the tubular main body portion 13.
  • the outer peripheral surface of the front end side cover portion 31 is provided with a screw thread 312 screwed into a screw groove 91 provided on the inner surface of the connection nut 90.
  • the base end side cover portion 32 has a cylindrical shape having a larger diameter than the tip end side cover portion 31 in which the tip end side Lf of the central diameter large portion 12 and the base end side Lb covering the outer diameter are open. Further, the base end side cover portion 32 is circumferentially oriented through a discharge port 321 that communicates the outside with the space for arranging the safety valve portion 40, which will be described later, between the tip end side cover portion 31, the gable wall 311 and the tubular main body portion 13. There are multiple in.
  • the safety valve portion 40 arranged in the space formed between the front end side cover portion 31, the gable wall 311 and the tubular main body portion 13 is composed of a relief body 41 and a relief spring 42.
  • the relief body 41 has a ring shape that is externally fitted to the tubular main body portion 13, and the relief spring 42 has a configuration in which the relief body 41 is urged to the base end side Lb by using the gable wall 311 of the front end side cover portion 31 as a reaction force. Is.
  • the relief body 41 is arranged on the Lf side on the tip side, and has a tip side ring portion 411 that is externally fitted to the tubular main body portion 13, a base end side ring portion 412 having a diameter slightly larger than the tip end side ring portion 411, and a base end. It has a ring shape composed of a flange 413 that extends outward in diameter at the base end side Lb of the side ring portion 412. An inclined surface 414 that inclines outward in diameter toward the proximal end side Lb is provided between the distal end side ring portion 411 and the proximal end side ring portion 412 having a diameter slightly larger than that of the distal end side ring portion 411. ing.
  • the relief body 41 configured in this way is in contact with the inner surface of the tip-side ring portion 411 with the O-ring 4a mounted in the mounting groove 132 of the tubular main body portion 13 in a state of being externally fitted to the tubular main body portion 13.
  • the O-ring 4b mounted in the mounting groove 133 abuts on the inner surface of the base end side Lb of the base end side ring portion 412 having a diameter larger than that of the tip end side ring portion 411. As a result, the space between the relief body 41 and the tubular main body 13 is sealed.
  • the space between the relief body 41 and the tubular main body 13 sealed by the contact of the O-rings 4a and 4b is such that the base end side ring portion 412 has a slightly larger diameter than the tip end side ring portion 411. Therefore, the space in the base end side ring portion 412 is also widened.
  • the filter portion 50 which is mounted in the filter space 112 provided in the mounting portion 11 of the body 10 and prevents foreign matter from entering from the storage container Y, includes two filters 51 (51a, 51b), a fixing ring 52, and elasticity. It is composed of a ring 53.
  • the two filters 51 (51a, 51b) have different filtration accuracy.
  • the fixing ring 52 prevents the filter 51 from coming off, and the elastic ring 53 is arranged between the two filters 51.
  • the filter 51 has a disk shape that is slightly smaller than the inner diameter of the mounting portion 114 in the filter space 112 and has a predetermined thickness, and is arranged on the proximal end side Lb from the second filter 51a arranged on the distal end side Lf.
  • the 1 filter 51b is a filter having a low density and a large transmission hole diameter.
  • the two filters 51 configured in this way are arranged at the mounting portion 114 at a predetermined interval in the axial direction L.
  • the fixing ring 52 fitted into the fitting groove 113 of the mounting portion 11 has a quadrangular cross section, and is a C-shaped ring body in a plan view in which a part in the circumferential direction is open. Yes, it has appropriate elasticity.
  • the elastic ring 53 arranged between the two filters 51 arranged at predetermined intervals in the axial direction L in the mounting portion 114 is an elastic ring body having a circular cross section, and is an inner surface of the mounting portion 114. It is formed with an outer diameter along the above.
  • the filter portion 50 in which each element is configured in this way is arranged so as to sandwich the elastic ring 53 between the two filters 51 in the mounting portion 114 of the filter space 112. Then, at the base end side Lb, the fixing ring 52 can be fitted into the fitting groove 113, and the filter portion 50 can be assembled in the filter space 112.
  • the decompression mechanism 3 that is assembled with the main body mechanism 2 to form the valve device 1 is composed of a decompression body 60, a cap portion 70, a decompression portion 80, and a connecting nut 90 along the axial direction L.
  • an O-ring 4 is appropriately arranged at each sliding portion, but the description thereof will be omitted here.
  • the pressure reducing body 60 is composed of a mounting convex portion 61, a piston receiving portion 62 having a diameter larger than that of the mounting convex portion 61, and a sealing ring 64.
  • the mounting convex portion 61 is inserted into the insertion space 131 of the tubular main body 13 at the base end side Lb, and the piston receiving portion 62 is arranged at the tip end side Lf of the mounting convex portion 61.
  • the sealing ring 64 is inserted into the base end side Lb of the gangway 63 that penetrates the mounting convex portion 61 and the piston receiving portion 62 in the axial direction L.
  • the mounting convex portion 61 has a cylindrical shape that is inserted into the insertion space 131 of the tubular main body portion 13, and the piston receiving portion 62 is arranged at the tip side Lf of the mounting convex portion 61 and has a larger diameter than the mounting convex portion 61.
  • the tip side Lf is open.
  • a through-passage 63 that penetrates the mounting convex portion 61 and the piston receiving portion 62 configured in this way in the axial direction L is provided, the base end side Lb of the through-passage 63 is enlarged in diameter, and the sealing ring 64 is attached. Has been done.
  • the sealing ring 64 mounted on the expanded portion of the base end side Lb in the through-passage 63 has a filter 65 mounted on the base end side Lb, and a through hole 641 penetrating in the axial direction L is provided inside.
  • the periphery of the tip side Lf of the through hole 641 forms a sealing convex portion 642 protruding toward the tip side Lf.
  • the cap portion 70 is arranged at the tip end side Lf of the piston receiving portion 62, has a bottomed cylindrical shape, and is arranged so as to be externally fitted to the piston receiving portion 62 at the base end side Lb.
  • a conduction port 71 penetrating in the axial direction L is provided on the tip end side Lf of the cap portion 70 configured in this way.
  • the decompression portion 80 arranged in the space surrounded by the decompression body 60 and the cap portion 70 has an inverted T-shape in vertical cross-sectional shape, and forms a gangway 83 penetrating in the axial direction L. ing.
  • the decompression portion 80 is a large-diameter disk having a vertical cross-sectional shape of an inverted T shape and extending in the radial direction at a rod-shaped sealing rod-shaped portion 81 extending to the base end side Lb and a tip-side Lf of the sealing rod-shaped portion 81. It is composed of a part 82.
  • the base end side Lb of the sealing rod-shaped portion 81 is provided with a sealing recess 811 which is recessed in the tip end side Lf and abuts on the sealing convex portion 642 to seal. Further, a pressure reducing spring 84 is provided to urge the pressure reducing portion 80 to the tip side Lf by using the pressure reducing body 60 as a reaction force.
  • the base end side Lb of the pressure reducing spring 84 is in contact with the piston receiving portion 62 of the pressure reducing body 60, the pressure reducing spring 84 is in contact with the large diameter disk portion 82, and the piston receiving portion 62 of the pressure reducing body 60 is subjected to a reaction force.
  • the pressure reducing spring 84 is configured to urge the large-diameter disk portion 82 toward the base end side Lb.
  • the urging force of the pressure reducing spring 84 is composed of an urging force corresponding to the depressurizing force for reducing the pressure of the conducting fluid to a predetermined pressure.
  • connection nut 90 is a cylindrical body in which the tip end side Lf is rotatably fitted to the cylindrical cap portion 70 and the base end side Lb is open, and is formed on the outer peripheral surface of the tip end side cover portion 31.
  • a screw groove 91 to be screwed into the provided screw thread 312 is provided on the inner surface.
  • the decompression mechanism 3 in which each element is configured in this way connects the base end side Lb of the sealing rod-shaped portion 81 from the tip side Lf to the through-passage 63 of the decompression body 60 in which the sealing ring 64 is attached to the base end side Lb. insert.
  • the pressure reducing spring 84 is arranged between the piston receiving portion 62 and the large diameter disk portion 82. Then, the decompression body 60 and the cap portion 70 can be assembled and integrated, and the connecting nut 90 can be attached and assembled from the tip side Lf of the cap portion 70.
  • the decompression mechanism 3 assembled in this way inserts the mounting convex portion 61 of the decompression body 60 into the insertion space 131 of the tubular main body 13 of the body 10 in the main body mechanism 2. Then, the valve device 1 can be configured by screwing the screw groove 91 of the connection nut 90 in the pressure reducing mechanism 3 and the screw thread 312 of the tip side cover portion 31.
  • valve device 1 configured in this way is equipped with the hydrogen combustion unit Z on the cap portion 70 having the conduction port 71 of the decompression mechanism 3, and is stored in the base end side Lb of the main body mechanism 2.
  • a container Y is attached to form a hydrogen combustion unit X.
  • the attachment portion Za provided on the base end side Lb of the hydrogen combustion portion Z is connected to the cap portion 70 having the conduction port 71 in the decompression mechanism 3 constituting the valve device 1 to form the valve device 1.
  • the attachment portion 11 of the main body mechanism 2 is attached to the attachment port Ya, and the valve device 1 is attached to the storage container Y.
  • the storage container Y is a storage container provided with an attachment port Ya at the top, and stores hydrogen gas as a fluid to be stored.
  • a hydrogen storage alloy (not shown) in which hydrogen gas is stored in a storage alloy is arranged inside the storage container Y, and the storage container Y stores hydrogen gas to be used as fuel.
  • a mounting portion Za connected to the cap portion 70 having the conduction port 71 is provided on the base end side Lb, and a burner portion Zb for discharging hydrogen gas and burning is provided on the tip end side Lf.
  • the hydrogen combustion unit Z is provided with an opening / closing adjustment unit Zc for opening / closing and adjusting the amount of gaseous hydrogen gas derived from the burner portion Zb between the mounting portion Za and the burner portion Zb.
  • the hydrogen combustion unit X configured in this way opens the opening / closing operation unit 20 to move the on / off valve 22 to the valve opening position, and causes the taper portion 126 and the tip throttle portion 221. A gap is formed between the two, and the valve device 1 is opened.
  • the gaseous hydrogen gas led out from the storage container Y is introduced into the first flow path R1 through the filter space 112 in which the filter unit 50 is arranged, and is introduced into the second flow path R1. It conducts through the flow path R2, that is, through the flow path R to the insertion space 131.
  • Hydrogen gas passes from the insertion space 131 through the filter 65 and the through hole 641 of the sealing ring 64 mounted on the tip end side Lf of the through path 63 of the decompression body 60 in the decompression mechanism 3, and the through path 83 of the decompression unit 80. Then, the pressure of hydrogen gas acts on the Lf on the tip end side of the decompression section 80, and as shown in FIG. 7, the decompression section 80 moves Lb on the proximal end side against the urging force of the decompression spring 84 and seals. The convex portion 642 and the sealing concave portion 811 come into contact with each other to enter a sealed state.
  • the hydrogen gas also conducts to the first flow path R1 and the third flow path R3 on the tip side of the central valve chamber portion 123, and the relief
  • the pressure of the conductive hydrogen gas also acts on the space between the body 41 and the tubular main body 13.
  • the hydrogen gas conducted in the space between the relief body 41 and the tubular main body 13 in this way acts on the inclined surface 414 as a pressure corresponding to the difference in the effective area between the O-ring 4a and the O-ring 4b. Then, when the differential pressure becomes an excessive pressure exceeding the urging force of the relief spring 42, the relief body 41 moves to the tip side Lf against the urging force of the relief spring 42 (see FIG. 9).
  • a flow provided with a flow path R through which the hydrogen gas passes, an on-off valve 22 for switching the opening and closing in the intermediate portion of the flow path R, and a relief body 41 for releasing the hydrogen gas having an excess pressure larger than a predetermined pressure.
  • a cover portion 30 having a discharge port 321 that communicates between the outside and the inside is provided while surrounding the tubular main body portion 13 of the tubular body 10 having the insertion space 131 of the tip side Lf in the road R, and the relief body 41.
  • a third flow path R3 that communicates between the two O-rings 4a and 4b in the above and the flow path R formed by the first flow path R1 is provided, and the base end side Lb of the two O-rings 4a and 4b is provided.
  • the relief body 41 can be attached to the storage container Y to regulate the conduction of hydrogen gas and release an excess pressure larger than a predetermined pressure. It can be configured compactly even if it is equipped with.
  • the relief body 41 is formed in a ring shape that fits into the body 10 so as to advance and retreat along the axial direction L, and has a tubular body 10 having an insertion space 131 of the tip side Lf in the flow path R.
  • the relief spring 42 faces the base end side Lb with an urging force of a predetermined pressure or less on the relief body 41 provided inside the cover portion 30 having a discharge port 321 that surrounds the shape main body portion 13 and communicates the outside and the inside.
  • Two O-rings 4a and 4b that urge the body 10 and seal the relief body 41 at a predetermined interval in the axial direction L, and two O-rings between the body 10 and the relief body 41.
  • a third flow path R3 that communicates between the rings 4a and 4b and the flow path R formed by the first flow path R1 is provided, and of the two O-rings 4a and 4b, the O-ring 4b on the base end side Lb is provided. Since the effective area of the tip side Lf is wider than the effective area of the O-ring 4a of the tip side Lf, the pressure from the third flow path R3 is slightly larger than that of the tip side ring portion 411 and the tip end side ring portion 411. When it acts on the inclined surface 414 formed between the ring portion 412 and the differential pressure according to the difference in the effective area is a large pressure exceeding the urging force of the relief spring 42, it opposes the urging force of the relief spring 42. The relief body 41 moves in the valve opening direction to open the valve, and an excess pressure equal to or higher than a predetermined pressure can be released.
  • the relief body 41 capable of releasing an excessive pressure equal to or higher than a predetermined pressure is configured in a ring shape that fits into the body 10 so as to advance and retreat along the axial direction L, so that the valve device 1 can be made compact. Can be configured.
  • the valve device 1 includes a mounting portion 11 attached to a storage container Y for storing hydrogen gas, a first flow path R1 extending axially from the mounting portion 11, and a second flow path R1 extending axially from the insertion space 131.
  • a flow path R2 and a central valve chamber portion 123 in which the on-off valve 22 is arranged so as to be able to move forward and backward in the opening / closing direction (vertical direction in FIG. 1) are provided.
  • the flow path R is composed of the first flow path R1 and the second flow path R2, and the central valve chamber portion 123 connects the first flow path R1 and the second flow path R2 in the radial direction orthogonal to the axial direction L.
  • the on-off valve 22 can advance and retreat in the radial direction in the central valve chamber portion 123 to switch between opening and closing. Therefore, the valve device 1 can be configured more compactly than the valve device that moves the on-off valve forward and backward along the axial direction L to switch between opening and closing.
  • the third flow path R3 communicates with the first flow path R1
  • the excess pressure on the storage container Y side can be released accurately and sensitively even in the valve closed state.
  • the filter 51 is provided on the mounting portion 11, it is possible to prevent foreign matter from entering the inside of the valve device 1 from the storage container Y side. Therefore, it is possible to prevent foreign matter from entering the inside of the valve device 1 to reduce the closing property or cause a malfunction.
  • the filter 51 is formed to have a diameter slightly smaller than the inner diameter of the mounting portion 11, and is provided with a ring-shaped fixing ring 52 that closes the gap on the outer diameter side at the base end side Lb of the filter 51. Therefore, it is possible to prevent foreign matter from entering the inside of the valve device 1 from the storage container Y side, and the filter 51 can be easily removed for cleaning or replacement.
  • the filter 51 is formed to have a diameter slightly smaller than the inner diameter of the mounting portion 11, it can be easily removed from the mounting portion 11 for cleaning or replacement. However, foreign matter may enter through the gap between the filter 51 and the mounting portion 11, but since the fixing ring 52 that closes the gap on the outer diameter side is provided at the base end side Lb of the filter 51, the filter 51 and the mounting portion 11 are mounted. It is possible to prevent foreign matter from entering through the gap with the portion 11.
  • two filters 51a and 51b having different filtration accuracy are provided at predetermined intervals in the axial direction L, and a ring-shaped elastic ring 53 is provided between the two filters 51a and 51b. Therefore, as compared with the case where a filter having high filtration accuracy is used alone, the load on the filters 51a and 51b is reduced to prevent clogging, and foreign matter invades the inside of the valve device 1 from the storage container Y side. Can be reliably prevented.
  • the two filters 51a and 51b having different filtration accuracy provided at predetermined intervals in the axial direction L, even if a foreign matter permeates through the first filter 51b on the proximal end side Lb, the first filter on the distal end side Lf.
  • the 2 filter 51a can further prevent foreign matter from entering the inside of the valve device 1.
  • the ring-shaped elastic ring 53 is provided between the two filters 51a and 51b arranged at predetermined intervals in the axial direction L, a space is secured between the filters 51a and 51b. Therefore, the foreign matter that has passed through the first filter 51b on the proximal end side Lb may stay in the space between the filters 51a and 51b without being filtered by the second filter 51a on the distal end side Lf. Therefore, it is possible to reliably prevent foreign matter from entering the inside of the valve device 1.
  • the flow path R through which the hydrogen gas passes, the on-off valve 22 for switching the opening and closing in the intermediate portion of the flow path R, the mounting portion 11 for attaching the body 10 at a predetermined position, and the on-off valve 22 are in the opening / closing direction.
  • the valve device 1 is provided with a central valve chamber portion 123 that is freely arranged in and out of the mounting portion 11, and filters 51a and 51b are provided in the mounting portion 11, and the filters 51a and 51b are smaller than the inner diameter of the mounting portion 11. Since the ring-shaped fixing ring 52 formed with a small diameter and closing the gap on the outer diameter side on the opening side of the filters 51a and 51b is provided, it is possible to prevent foreign matter from entering the inside of the valve device 1.
  • the filters 51a and 51b are clogged, they can be easily removed, cleaned or replaced, and foreign matter can be prevented from entering the inside of the valve device 1. Therefore, it is possible to prevent foreign matter from being mixed into the consumed hydrogen gas or foreign matter from being caught inside the valve device 1 to reduce the closing property.
  • the filters 51a and 51b are provided on the mounting portion 11, it is possible to prevent foreign matter from entering the inside of the valve device 1. Further, the filters 51a and 51b are formed to have a diameter slightly smaller than the inner diameter of the mounting portion 11, and a ring-shaped fixing ring 52 is provided on the opening side of the filters 51a and 51b to close the gap on the outer diameter side. Therefore, the filters 51a and 51b are firmly attached to the mounting portion 11 while preventing foreign matter from entering between the filters 51a and 51b formed with a diameter slightly smaller than the inner diameter of the mounting portion 11 and the inner diameter of the mounting portion 11. be able to.
  • the filters 51a and 51b are formed to have a diameter slightly smaller than the inner diameter of the mounting portion 11. Therefore, by removing the fixing ring 52 that fixes the filters 51a and 51b to the mounting portion 11, the filters 51a and 51b can be easily removed from the mounting portion 11 to clean or replace the clogged filters 51a and 51b. be able to. Therefore, it is possible to prevent foreign matter from entering the inside of the valve device 1.
  • the 2 filter 51a can further prevent foreign matter from entering the inside of the valve device 1. Therefore, as compared with the case where a filter having high filtration accuracy is used alone, the load on each of the filters 51a and 51b is reduced to prevent clogging, and foreign matter invades the inside of the valve device 1 from the storage container Y side. Can be reliably prevented.
  • the ring-shaped elastic ring 53 is provided between the plurality of filters 51a and 51b, it is provided between the plurality of filters 51a and 51b arranged at predetermined intervals in the axial direction L.
  • the ring-shaped elastic ring 53 forms a space between the filters 51a and 51b. Therefore, the foreign matter that has passed through the filters 51a and 51b may stay in the space between the filters 51a and 51b without being filtered by the second filter 51a on the tip side Lf. Therefore, it is possible to reliably prevent foreign matter from entering the inside of the valve device 1.
  • the mounting portion 11 is configured to be mounted on the storage container Y for storing hydrogen gas, and has a first flow path R1 extending in the axial direction L from the mounting portion 11 and a second flow path extending in the axial direction L from the insertion space 131.
  • R2 and a central valve chamber portion 123 in which the on-off valve 22 is arranged so as to be able to advance and retreat in the opening / closing direction (vertical direction in FIG. 1) are provided, and the flow path R is formed by the first flow path R1 and the second flow path R2.
  • the central valve chamber portion 123 communicates with the first flow path R1 and the second flow path R2 in the radial direction orthogonal to the axial direction L, and the on-off valve 22 advances and retreats in the central valve chamber portion 123 in the radial direction. Since the opening / closing can be switched, the valve device 1 can be configured more compactly than the valve device for switching the opening / closing by moving the on-off valve forward and backward along the axial direction L.
  • the valve device 1 having a decompression function can be configured and the hydrogen gas can be decompressed and used. Further, since the decompression mechanism 3 is unitized and is detachably attached to the main body mechanism 2, hydrogen gas can be decompressed and used at the time of use. Further, when the storage container Y is filled with hydrogen gas, the pressure reducing mechanism 3 is removed and the storage container Y is filled directly from the insertion space 131, so that the pressure reducing mechanism 3 functions as a conduction direction regulating valve and becomes difficult to fill. Can be prevented.
  • a valve device 1 a storage container Y to which the attachment portion 11 in the valve device 1 is attached and stored hydrogen gas, and a hydrogen combustion portion Z connected to the insertion space 131 and burning hydrogen gas are provided.
  • the hydrogen combustion unit X can be burned in the hydrogen combustion unit Z while adjusting the derivation amount of the hydrogen gas stored in the storage container Y or by a preset derivation amount, and when an excessive pressure acts, the hydrogen combustion unit X can be burned. It can be opened.
  • the storage container Y stores hydrogen gas by storing it in a hydrogen storage alloy, the hydrogen gas can be safely burned. More specifically, compared to the case where gaseous or liquid hydrogen is stored as it is in the storage container Y, the pressure when storing hydrogen gas by storing it in a hydrogen storage alloy is lower, so hydrogen gas can be burned safely. be able to.
  • the hydrogen storage alloy When hydrogen gas stored in a hydrogen storage alloy is used, the hydrogen storage alloy is pulverized by repeating absorption and release of the hydrogen gas, but since the filter 51 is provided in the mounting portion 11, the powder is powdered. It is possible to prevent the embodied hydrogen storage alloy from entering the inside of the valve device 1.
  • the fluid of the present invention corresponds to hydrogen gas.
  • the flow path corresponds to the flow path R
  • the on-off valve corresponds to the on-off valve 22
  • the safety valve corresponds to the relief body 41
  • the valve device corresponds to the valve device 1
  • the conduction port corresponds to the insertion space 131 and
  • the main body of the device corresponds to the body 10
  • the outlet corresponds to the outlet 321
  • the surrounding part corresponds to the cover part 30
  • the axial direction corresponds to the axial direction L
  • the valve closing direction corresponds to the base end side Lb
  • the urging means corresponds to the relief spring 42
  • the sealing part corresponds to O-rings 4a and 4b
  • the branch flow path corresponds to the third flow path R3
  • the storage container corresponds to the storage container Y
  • the mounting part corresponds to the mounting part 11
  • the first flow path corresponds to the first flow path R1 and
  • the second flow path corresponds to the second flow path R2
  • the valve chamber corresponds
  • hydrogen gas is used as the fluid, but it may be a liquid or a gel.
  • the cover portion 30 may be integrally configured with the body 10, or the main body mechanism 2 and the decompression mechanism 3 may be integrally configured.
  • mounting grooves 132 and 133 for mounting the O-ring 4 having an elliptical cross section are provided near the center of the tubular main body 13 in the axial direction L and on the base end side Lb, and the mounting grooves 132 and 133 are provided.
  • the mounted O-ring 4 is configured to abut on the inner surface of the relief body 41 fitted to the tubular main body 13 to seal the space between the relief body 41 and the tubular main body 13, and is mounted.
  • the O-ring 4a mounted on the groove 132 is formed to have a smaller diameter than the O-ring 4b mounted on the mounting groove 133, and the relief body 41 moves to the tip side Lf by the differential pressure of excess pressure acting on the inclined surface 414. It was configured to open the valve.
  • the mounting groove 134 instead of the mounting groove 133 provided on the base end side Lb of the tubular main body portion 13, the diameter center side of the tip end side Lf of the central diameter large portion 12, that is, the tubular main body portion A mounting groove 134 having a concave shape is provided at the base end side Lb with the tip side Lf open at the corner between 13 and the large central diameter portion 12, and the O-ring 4c mounted on the mounting groove 134 is mounted on the mounting groove 132. It may be formed to have a diameter larger than that of the O-ring 4a to be formed.
  • a bite convex portion 44 that protrudes to the base end side Lb and bites into the O-ring 4c at the valve closing position is provided.
  • the relief body 41 can be configured with a uniform diameter without providing the tip end side ring portion 411 and the base end side ring portion 412 having a diameter larger than that of the tip end side ring portion 411. Just do it.
  • the flange 413 of the relief body 41 at the valve closing position (the position on the right side in FIG. 10) abuts on the O-ring 4c from the tip side Lf, and the biting convex portion 44 bites into the O-ring 4c to form the relief body 41.
  • the space between the tubular body and the main body 13 is sealed, but since the O-ring 4c has a larger diameter than the O-ring 4a, the differential pressure of the excess pressure acts on the inside of the diameter of the flange 413 to relieve the valve.
  • the body 41 moves to the tip end side Lf to open the valve, and can achieve the same effect as the hydrogen combustion unit X provided with the valve device 1 and the valve device 1 described above.
  • the O-ring 4c is shown in a circular cross section in FIG. 10, it may be configured by an O-ring having a rectangular cross section in which the surface of the Lf on the tip side where the biting convex portion 44 bites is flat. The same effect as that of the hydrogen combustion unit X provided with the valve device 1 and the valve device 1 can be obtained.
  • FIG. 11 is a schematic view of a general container valve device, and the mounting portion 11a is shown in a cross-sectional view. Further, since the container valve device 1a has a general structure, detailed description thereof will be omitted, and the container valve device 1a is not limited to the container valve device having the illustrated structure, and may be, for example, a pin index valve. ..
  • the container valve device 1a in which the filter space 112 is provided in the mounting portion 11a and the filter portion 50 is assembled can exert the same effect as the effect of mounting the filter portion 50 in the valve device 1 described above. ..
  • a filter space 112 may be provided in a mounting portion on the upstream side in the conduction direction at least during consumption, and the filter portion 50 may be assembled and used. Even in this case, the same effect as that of mounting the filter unit 50 in the valve device 1 described above can be obtained.
  • Valve device 1a ... Container valve device 3 ... Decompression mechanism 4a, 4b ... O-ring 10 ... Body 11 ... Mounting part 22 ... Open / close valve 30 ... Cover part 41 ... Relief body 42 ... Relief spring 51 (51a, 51b) ... Filter 52 ... Fixed ring 53 ... Elastic ring 123 ... Central valve chamber 131 ... Insertion space 321 ... Discharge port L ... Axial direction Lb ... Base end side R ... Flow path R1 ... First flow path R2 ... Second flow path R3 ... Third. Flow path X ... Hydrogen combustion unit Y ... Storage container Z ... Hydrogen combustion unit

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  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Details Of Valves (AREA)

Abstract

La présente invention vise à procurer un dispositif de soupape et une unité de consommation de gaz qui peuvent être fixés à un récipient de stockage pour restreindre le passage de fluide, le dispositif de soupape et l'unité de consommation de gaz étant de petite taille mais comprenant une soupape de sûreté qui relâche une pression excessive supérieure à une pression prédéterminée. A cet effet, l'invention porte sur un corps de relâchement (41), lequel corps est configuré sous une forme annulaire pour s'adapter autour d'un corps principal tubulaire (13) de façon à se déplacer vers l'avant et vers l'arrière le long d'une direction axiale (L) à l'intérieur d'une partie de capot (30). Le corps de relâchement (41) comprend un ressort de relâchement (42), deux joints toriques (4), et un troisième canal d'écoulement (R3). Le ressort de relâchement (42) pousse le corps de relâchement (41) vers un côté d'extrémité proximale (Lb) avec une force de poussée d'une pression inférieure ou égale à une pression prédéterminée. Les deux joints toriques (4) sont séparés dans la direction axiale (L) et scellent des intervalles entre le corps principal tubulaire (13) et le corps de relâchement (41). Le troisième canal d'écoulement (R3) communique avec une partie située entre le corps principal tubulaire (13) et le corps de relâchement (41) et entre les deux joints toriques (4), et avec un premier canal d'écoulement (R1). La surface utile du joint torique (4b) sur le côté d'extrémité proximale (Lb) est plus grande que la surface utile du joint torique (4a) sur un côté d'extrémité distale (Lf).
PCT/JP2020/019516 2019-05-18 2020-05-15 Dispositif de soupape et unité de consommation de gaz WO2020235504A1 (fr)

Applications Claiming Priority (4)

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JP2019094180A JP7236697B2 (ja) 2019-05-18 2019-05-18 バルブ装置及びガス消費ユニット
JP2019094181A JP7236698B2 (ja) 2019-05-18 2019-05-18 バルブ装置及びガス消費ユニット
JP2019-094181 2019-05-18
JP2019-094180 2019-05-18

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