Field of the Invention
The present invention relates to a pressure reduction valve used for decompressing high-pressure fluid such as high-pressure gas.
Related Art
Heretofore, as one technique of this type of a valve, for example, a high-pressure regulator which has been described in Japanese Patent Application Publication No. 2010-533268 (JP-A-2010-533268) is known. As shown in a sectional view of
However, in the high-pressure regulator 61 described in JP-A-2010-533268, when high-pressure fluid suddenly flows from the inlet 63 into the valve chamber 69, for example, the pressure of the fluid has a chance to be applied to the sliding part 66. This application of the pressure results in sudden high pressure acting on the sealing member 72, and thus there is a possibility that the sealing member 72 gets deformed and broken, leading to deterioration in its sealing function. If the sealing function is deteriorated, a part of the fluid might be leaked outside. In some types of fluids, leakage of the fluid is problematic, and therefore it is a very critical issue to ensure the sealing function of the sealing member 72.
The present invention has been made in view of the above circumstance and has a purpose of providing a pressure reduction valve configured to prevent breakage of a sealing member in a sliding part of a rod so that sealing function is ensured.
To achieve the above purpose, one aspect of the present invention provides a pressure reduction valve including: a housing; an inlet and an outlet provided on an axial one end and the other end of the housing, respectively; a piston provided in the housing in an axially movable state; a rod axially extending from the piston toward the inlet; a rod sliding part along which the rod is configured to slide with respect to the housing; a valve element provided on a leading end of the rod; a valve seat configured to be seated with the valve element in the housing; a valve chamber formed around the valve element downstream of the valve seat; a pressure control chamber provided between the piston and the housing on a downstream side of the piston to communicate with the outlet; a passage formed in the rod and the piston to flow fluid from the valve chamber to the pressure control chamber; a spring configured to urge the piston and the rod in a direction to separate the valve element from the valve seat; and a sealing member provided on the rod sliding part, the pressure reduction valve being configured such that fluid introduced from the inlet is flown in the pressure control chamber between the valve element and the valve seat via the passage and when the fluid pressure in the pressure control chamber is balanced with the urging force of the spring, the fluid is decompressed and then flown out of the outlet, wherein the pressure reduction valve further includes a narrowing member placed upstream of the sealing member to narrow a clearance between the rod sliding part and the housing.
According to the present invention, breakage of the sealing member in the sliding part of the rod configuring the pressure reduction valve is prevented, and thus the sealing function of the sealing member is ensured.
A first embodiment embodying a pressure reduction valve of the present invention is now explained in detail below with reference to the accompanying drawings.
The body case 3 is formed in a hollow cylindrical shape, and inside the case 3 is provided with a metal piston 9 which is axially movable. On an axial one-end side (on a lower side in
A leading end of the rod 9a is provided with a valve element 12 having a tapered shape tapering toward its tip end. In corresponding to the valve element 12, a valve seat 13, on which the tip end of the valve element 12 is allowed to be seated (the valve is allowed to be closed), is held between the body case 3 and the inlet-side case 5. The valve seat 13 has a ring-like shaped valve hole in its center and is made separately from the cases 3 and 5 by resin. In the body case 3, a valve chamber 4 is formed downstream of the valve seat 13 and around the valve element 12.
The inlet-side case 5 is formed with an inlet-side passage 5a which communicates with the inlet 4. On an opposite side from the inlet 4, the inlet-side passage 5a includes a step portion 5b changed its passage diameter in a stepwise fashion. This step portion 5b is formed with a metal mesh filter 15 to capture foreign matters in the fluid and a metal bush 16 to hold the filter 15. The bush 16 is held between the filter 15 and the valve seat 13. The valve seat 13 is held between the body case 3 and the inlet-side case 5 as mentioned above, and hence the filter 15 is pressed against the step portion 5b via the bush 16.
A pressure control chamber 17 is provided between the piston 9 and the outlet-side case 7 on a downstream side (on an upper side in
A piston passage 9b is formed in radial center portions of the rod 9a and the piston 9 to flow fluid from the valve chamber 14 to the pressure control chamber 17. This piston passage 9b is communicated with the valve chamber 14 through a plurality of holes in the vicinity of the valve element 12. The air chamber 18 of the body case 3 is provided with a spring 21 to urge the piston 9 and the rod 9a in a direction to separate the valve element 12 from the valve seat 13.
In the rod sliding part 11, a first lip seal 22 is provided at an outer circumference of the rod 9a. This lip seal 22 is formed in a V-shape in section and fitted in a circumferential groove 9c formed at the outer circumference of the rod 9a. The first lip seal 22 is made of rubber and corresponds to one example of a sealing member. Further, in the piston sliding part 10, a second lip seal 23 is provided at an outer circumference of the piston 9. This lip seal 23 is fitted in a circumferential groove 9d formed at the outer circumference of the piston 9. The second lip seal 23 is made of rubber and corresponds to one example of a second sealing member.
The pressure reduction valve 1 configured as mentioned above is configured such that the fluid introduced through the inlet 4 is flown to the pressure control chamber 17 between the valve element 12 and the valve seat 13 via the piston passage 9b, and when the fluid pressure in the pressure control chamber 17 is balanced with the urging force of the spring 21, the fluid is decompressed and then flown out of the outlet 6.
In the rod sliding part 11, a first wear ring 31 to narrow a clearance of the sliding part 11 is provided upstream of the first lip seal 22 at the outer circumference of the rod 9a. The first wear ring 31 is formed in a C-shape and fitted in a circumferential groove 9e which is formed at the outer circumference of the rod 9a. The first wear ring 31 corresponds to one example of a narrowing member.
In the piston sliding part 10, a second wear ring 32 to narrow a clearance of the sliding part 10 is provided downstream of the second lip seal 23 at the outer circumference of the piston 9. The wear ring 32 is formed in a C-shape and fitted in a circumferential groove 9f which is formed at the outer circumference of the piston 9. The wear ring 32 also has a similar shape to the one shown in
According to the pressure reduction valve 1 of the above-mentioned embodiment, the fluid having flown through the inlet 4 flows in the pressure control chamber 17 between the valve element 12 and the valve seat 13 via the piston passage 9b, and when the fluid pressure in the pressure control chamber 17 is balanced with the urging force of the spring, the fluid is decompressed and then flown out of the outlet 6. At this time, the clearance of the rod sliding part 11 is narrowed by the first wear ring 31 on the upstream side of the first lip seal 22, and thus even if the high-pressure fluid suddenly flows from the inlet 4 into the valve chamber 14 and the fluid pressure (inrush pressure) is applied to the rod sliding part 11, the first wear ring 31 relaxes the pressure increase at the first lip seal 22 which is positioned downstream of the first wear ring 31. As shown in
Further, in the present embodiment, the clearance of the piston sliding part 10 is narrowed by the second wear ring 32 on the downstream side (on the upper side in
A second embodiment embodying a pressure reduction valve of the present invention is now explained in detail with reference to the accompanying drawings. In the foregoing explanation, similar components with the first embodiment are indicated with the same referential signs with the first embodiment, and explanation thereof is omitted. The following explanation is made with a focus on the differences from the first embodiment.
According to the present embodiment, the clearance of the rod sliding part 11 on the upstream side (on the lower side in
Next, a third embodiment embodying a pressure reduction valve of the present invention is explained in detail with reference to the accompanying drawings.
In the present embodiment, even though the first wear ring 31 is not provided, the clearance of the rod sliding part 11 is narrowed by a flange 9g on the upstream side (on the lower side in
The present invention is not limited to the above embodiments and may be partly applied with various changes without departing from the scope of the subject matter.
In the above first and second embodiments, the first and second wear rings 31 and 32 are obliquely cut in the cut portions 31a and 32a, respectively, such that the both end faces of each of the cut portions 31a and 32a face each other. As one alternative for this, as shown in a perspective view of
In the above embodiments, the first and second lip seals 22 and 23 are provided as sealing members, but the sealing member is not limited to the lip seal and may be any other component which enables to ensure sealing function of the sliding part.
In the above embodiments, the piston 9 and the rod 9a are integrally formed, but alternatively, these elements may be individually formed and then joined together.
In the above embodiments, the rod 9a and the valve element 12 are separately formed, but alternatively, the rod 9a and the valve element 12 may be integrally formed.
The present invention can be utilized for a fluid supply device to decompress and supply high-pressure fluid such as high-pressure gas. One example of the fluid supply device is a hydrogen supply device to supply hydrogen gas to a fuel cell.
1 Pressure reduction valve
2 Housing
4 Inlet
6 Outlet
9 Piston
9
a Rod
9
b Piston passage
10 Piston sliding part
11 Rod sliding part
12 Valve element
13 Valve seat
14 Valve chamber
17 Pressure control chamber
21 Spring
22 First lip seal (sealing member)
23 Second lip seal (second sealing member)
31 First wear ring (narrowing member)
32 Second wear ring (second narrowing member)
Number | Date | Country | Kind |
---|---|---|---|
2015-233704 | Nov 2015 | JP | national |