Sliding seal and seal structure
09976653 ยท 2018-05-22
Assignee
Inventors
- Yutaka Suzuki (Kobe, JP)
- Kaoru Nomichi (Ono, JP)
- Makoto Ninomiya (Kobe, JP)
- Mikiya Shinohara (Yokohama, JP)
- Akinobu Moriyama (Yokohama, JP)
Cpc classification
F16J15/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/56
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/365
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16J15/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/56
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A sliding seal seals an annular gap between a first member and a second member to separate a high-pressure side and a low-pressure side from each other, the first member being movable relative to the second member. The sliding seal is provided at an annular attaching groove provided at the second member. The sliding seal includes: a pressure fluid seal configured to slidingly contact a sliding surface of the first member; and a lubricant holding piece provided at the high-pressure side of the pressure fluid seal, a lubricant storage space being formed between the lubricant holding piece and the pressure fluid seal.
Claims
1. A sliding seal assembly for use in a valve, the sliding seal assembly comprising: a valve element and a housing, the valve element and the housing being movable relative to each other, an annular gap being formed between the valve element and the housing, an annular attaching groove being formed at one member out of the valve element and the housing; a pressure fluid seal: configured to seal the annular gap to divide the annular gap into a high-pressure space and a low-pressure space, arranged at the attaching groove, and configured to slidingly contact a sliding surface of an other member out of the valve element and the housing; a lubricant holding piece spaced apart from the pressure fluid seal so as to be located close to the high-pressure space and provided at the attaching groove so as to be fixed to the one member, a lubricant storage space being formed between the lubricant holding piece and the pressure fluid seal and storing a lubricant; and a lubricant seal provided closer to the high-pressure space than the lubricant storage space and configured to slidingly contact the sliding surface to isolate the high-pressure space and the lubricant storage space from each other, wherein a compression amount of a lip of the pressure fluid seal is larger than a compression amount of a lip of the lubricant seal; the lubricant holding piece is formed in an annular shape and includes a lubricant storage portion at an inner peripheral surface thereof, the lubricant storage portion being an annular groove and connected to the lubricant storage space; and a passage connecting the lubricant storage space and the high-pressure space is not formed.
2. The sliding seal assembly according to claim 1, wherein the lubricant seal is formed separately from the lubricant holding piece.
3. The sliding seal assembly according to claim 1, further comprising a backup ring provided adjacent to a low-pressure side surface of the pressure fluid seal.
4. A seal structure comprising: the sliding seal assembly according to claim 1; and a supply passage formed at the second or first member at which the attaching groove is provided, a lubricant being supplied from outside through the supply passage to the lubricant storage space.
5. The seal structure according to claim 4, wherein: the lubricant storage portion is a groove portion which is open toward the sliding surface; and the groove portion and the supply passage communicate with each other through a communication hole formed at the lubricant holding piece.
6. A sliding seal assembly comprising: a valve element and a housing, the valve element and the housing being movable relative to each other, an annular gap being formed between the valve element and the housing, an annular attaching groove being formed at one member out of the valve element and the housing; a pressure fluid seal: configured to seal the annular gap to divide the annular gap into a high-pressure space and a low-pressure space, arranged at the attaching groove, and configured to slidingly contact a sliding surface of an other member out of the valve element and the housing; a lubricant holding piece spaced apart from the pressure fluid seal so as to be located close to the high-pressure space and provided at the attaching groove so as to be fixed to the one member, a lubricant storage space being formed between the lubricant holding piece and the pressure fluid seal and storing a lubricant; and a lubricant seal provided closer to the high-pressure space than the lubricant storage space and configured to slidingly contact the sliding surface to isolate the high-pressure space and the lubricant storage space from each other, wherein: the lubricant holding piece is formed in an annular shape and includes a lubricant storage portion at an inner peripheral surface thereof, the lubricant storage portion being an annular groove and connected to the lubricant storage space; a compression amount of a lip of the pressure fluid seal is larger than a compression amount of a lip of the lubricant seal; the lubricant seal is provided at the lubricant holding piece; the lubricant holding piece is arranged in the attaching groove and at a position close to the high-pressure space; and a passage connecting the lubricant storage space and the high-pressure space is not formed.
7. The sliding seal assembly according to claim 6, wherein the lubricant seal is formed integrally with the lubricant holding piece.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF EMBODIMENTS
(7) Hereinafter, a sliding seal and a seal structure according to Embodiment 1 of the present invention will be explained in reference to
(8) Even if upstream pressure is high, the electromagnetic pressure regulating valve 40 can control, for example, the flow rate (or pressure) of hydrogen to a fuel cell stack with a high degree of accuracy and prevent a hydrogen gas from leaking to the atmosphere.
(9) The electromagnetic pressure regulating valve 40 shown in
(10) A reference sing 48 shown in
(11) To be specific, as shown in
(12) The device 15 including the first and second members 12 and 13 shown in
(13) The second member 13 that is the housing includes a first housing portion 13a and a second housing portion 13b. By separating the first and second housing portions 13a and 13b from each other, the sliding seal 11 can be attached to and detached from the attaching groove 18.
(14) In the present embodiment, the sliding seal 11 is used to secure a sealing performance of a slide portion which operates with a comparatively short stroke. However, instead of this, the sliding seal 11 may be used to secure the sealing performance of the slide portion which operates with a comparatively long stroke. The sliding seal 11 can be used for the slide portion of the device which is used for pressure other than the atmospheric pressure to 87.5 MPa.
(15) Further, in the present embodiment, the sliding seal 11 is used in the pressure regulating valve. However, the sliding seal 11 may be used to secure the sealing performance of a device including a piston seal, a rod seal, or the like.
(16) As shown in
(17) A material of the pressure fluid seal 19 is, for example, a thermoplastic elastomer. Specifically, the pressure fluid seal 19 is made of polyurethane. The thermoplastic elastomer has elasticity between the elasticity of a cross-linked rubber material and the elasticity of a resin material. It is preferable that the hardness of the thermoplastic elastomer be about 90 to 96 of JIS A (durometer A). In the present embodiment, a urethane-based (PU) elastomer is used. However, the material of the pressure fluid seal 19 is not limited to this, and various materials such as a styrene-based (SBC) elastomer, an olefine-based (TPO) elastomer, a vinyl chloride-based (TPVC) elastomer, an ester-based (TPEE) elastomer, and an amide-based (TPAE) elastomer can be used. Further, the pressure fluid seal 19 may be made of a rubber elastic body.
(18) An outer peripheral surface of the pressure fluid seal 19 is formed in a substantially short cylindrical shape. A cross-sectional shape, including a center line 23 of the pressure fluid seal 19, of an inner peripheral portion 19a of the pressure fluid seal 19 is formed in a substantially semi-circular shape. The inner peripheral portion 19a slidably contacts a sliding surface 24 that is an outer peripheral surface of the first member 12.
(19) The lubricant holding piece 20 may be made of any of various materials. For example, the lubricant holding piece 20 may be made of a synthetic resin or may be made of engineering plastic (PA, PC, or the like of general engineering plastic, or PES, PEEK, or the like of super engineering plastic) that is one of the synthetic resins. Further, the lubricant holding piece 20 may be made of iron.
(20) As shown in
(21) A lubricant storage portion 20a is formed as an annular groove portion on the inner peripheral surface of the lubricant holding piece 20. The lubricant storage portion 20a as the groove portion is open toward the lubricant storage space 26 and the sliding surface 24 of the first member 12. A cross-sectional shape of the lubricant storage portion 20a is a rectangular shape or a trapezoidal shape which is open toward an opening side.
(22) The lubricant storage space 26 and the lubricant storage portion 20a hold a lubricant 25 such as grease. The lubricant 25 lubricates a portion between the inner peripheral portion 19a of the pressure fluid seal 19 shown in
(23) The lubricant seal 22 seals to prevent the lubricant 25 held by the lubricant storage space 26 and the lubricant storage portion 20a from flowing out to the high-pressure side through the gap 14 between the inner peripheral surface of the lubricant holding piece 20 and the sliding surface 24 of the first member 12. The lubricant seal 22 is fixedly provided in a groove formed on the inner peripheral surface of the lubricant holding piece 20. The lubricant seal 22 slidably contacts the sliding surface 24 of the first member 12. For example, the lubricant seal 22 may be a felt-shaped scraper having high grease permeability, or may be made of a synthetic resin or a rubber elastic body.
(24) The backup ring 21 holds the pressure fluid seal 19 at a position shown in
(25) Next, the actions of the sliding seal 11 and the seal structure 40 configured as above will be explained in reference to
(26) According to the sliding seal 11, the inner peripheral portion 19a of the pressure fluid seal 19 slidingly contacts the sliding surface 24 of the first member 12, and an outer peripheral portion of the pressure fluid seal 19 contacts the bottom surface 18a of the attaching groove 18. With this, the sliding seal 11 can seal the annular gap 14 between the sliding surface 24 of the first member 12 and the cylindrical inner peripheral surface forming the attachment hole 16 of the second member 13.
(27) According to the sliding seal 11, the lubricant storage space 26 including the lubricant storage portion 20a can hold the lubricant 25, and when the first member 12 moves relative to the second member 13, the lubricant 25 can lubricate a slide portion between the pressure fluid seal 19 and the sliding surface 24. Therefore, start friction resistance and sliding friction resistance of the first member 12 to the second member 13 can be reduced, the start friction resistance and sliding friction resistance acting between the pressure fluid seal 19 and the sliding surface 24. Thus, abrasion of the pressure fluid seal 19 can be reduced.
(28) The lubricant 25 held in the lubricant storage space 26 formed at the high-pressure side of the pressure fluid seal 19 is supplied to between the pressure fluid seal 19 and the sliding surface 24 by the pressure fluid sealed at the high-pressure side. With this, the slide portion can be lubricated satisfactorily. Thus, the lubricant 25 held in the lubricant storage space 26 including the lubricant storage portion 20a can be prevented by the lubricant seal 22 from flowing out to the high-pressure side.
(29) Further, according to the sliding seal 11 and the seal structure 40 shown in
(30) Since the lubricant storage portion 20a (groove portion) is formed at the lubricant holding piece 20, the amount of lubricant 25 held by the lubricant storage space 26 can be increased by the amount of lubricant 25 held by the lubricant storage portion 20a. Therefore, by this increased amount of lubricant 25, the start friction resistance and sliding friction resistance of the pressure fluid seal 19 can be further made low for a long period of time. Thus, the abrasion resistance of the pressure fluid seal 19 improves, so that the life of the pressure fluid seal 19 can be increased.
(31) Since the lubricant seal 22 is provided separately from the pressure fluid seal 19, a slidingly contacting force of the lubricant seal 22 with respect to the sliding surface 24 (for example, a crush rate of a lip of the lubricant seal 22) may be set such that the lubricant 25 held in the lubricant storage space 26 can be prevented from flowing out to the high-pressure side. The slidingly contacting force of the lubricant seal 22 with respect to the sliding surface 24 can be made lower than a slidingly contacting force of the pressure fluid seal 19 with respect to the sliding surface 24 (for example, a crush rate of a lip of the pressure fluid seal 19). Therefore, the start friction resistance and sliding friction resistance of the lubricant seal 22 can be made low. Thus, the abrasion resistance of the lubricant seal 22 improves, so that the life of the lubricant seal 22 can be increased.
(32) The start friction resistance and sliding friction resistance of each of the pressure fluid seal 19 and the lubricant seal 22 can be made low by the action of the lubricant 25 for a long period of time. Therefore, the sliding seal 11 and the seal structure 40 are applicable to a case where the friction resistance needs to be low.
(33) Further, the start friction resistance and sliding friction resistance of the entire sliding seal 11 can be made low, so that the life of the sliding seal 11 can be increased.
(34) The lubricant storage space 26 is not formed at the first or second member 12 or 13 but formed between the pressure fluid seal 19 and the lubricant holding piece 20, and the lubricant storage portion 20a is formed at the lubricant holding piece 20. Therefore, the machining and formation of the lubricant storage space 26 including the lubricant storage portion 20a are easy, and the amount of lubricant held can be increased at low cost.
(35) As shown in
(36) Further, the lubricant seal 22 is formed separately from the lubricant holding piece 20. With this, the lubricant seal 22 which slidingly contacts the sliding surface 24 to generate the sliding friction can be made of a material having low friction resistance and high abrasion resistance, and the lubricant holding piece 20 which does not contact the sliding surface 24 can be made of a material, such as a synthetic resin or iron, which is different from the material of the lubricant seal 22. Therefore, choices of the material, shape, and size of each of the lubricant seal 22 and the lubricant holding piece 20 can be increased. On this account, the cost and labor of the production of the sliding seal 11 can be reduced.
(37) As shown in
(38) The backup ring 21 can prevent a case where when the first member 12 moves relative to the second member 13, the inner peripheral portion 19a (tip end portion) of the pressure fluid seal 19 which is located at the sliding surface 24 side gets into and is stuck in the gap between the sliding surface 24 and the first housing portion 13a of the second member 13. This can prevent a decrease in a sealing degree of the pressure fluid seal 19.
(39) The backup ring 21 is made of such a material that even if the inner peripheral portion 19a of the pressure fluid seal 19 gets into a gap between an inner peripheral surface of the backup ring 21 and the sliding surface 24, the inner peripheral portion 19a is not damaged.
(40) Next, the sliding seal according to Embodiment 2 of the present invention will be explained in reference to
(41) Other than the above, Embodiment 2 shown in
(42) According to the sliding seal 29 of Embodiment 2, the number of parts of the sliding seal 29 can be further reduced, and the labor of the assembling work can be reduced.
(43) Next, the seal structure according to Embodiment 3 of the present invention will be explained in reference to
(44) Other than the above, the seal structure 36 according to Embodiment 3 shown in
(45) As shown in
(46) As shown in
(47) A check valve 27 is disposed on the supply passage 37 shown in
(48) According to the seal structure 36 of Embodiment 3, when the amount of lubricant 25 in the lubricant storage space 26 including the lubricant storage portion 20a decreases, the lubricant 25 can be forcibly supplied from outside through the supply passage 37 and the communication hole 20b to the lubricant storage space 26 including the lubricant storage portion 20a. With this, a state where an appropriate amount of lubricant 25 is supplied to the slide portion between the pressure fluid seal 19 and the sliding surface 24 can be maintained for a long period of time.
(49) As shown in
(50) Next, the sliding seals according to Embodiments 4 and 5 of the present invention will be explained in reference to
(51) A sliding seal 32 according to Embodiment 5 shown in
(52) To be specific, a cross-sectional shape of the outer peripheral portion of the pressure fluid seal 19 shown in
(53) The foregoing has explained an example in which each of the sliding seals and the seal structures according to the above embodiments is applied as a component for sealing a portion which reciprocates. In addition to this, each of the sliding seals and the seal structures is applicable as a component for sealing a portion which rotates or a portion which performs a combined operation including the rotation and the reciprocation.
(54) In each of the above embodiments, as shown in
(55) Further, in each of the above embodiments, for example, as shown in
(56) The material of the pressure fluid seal 19 and the material of the lubricant seal 22 are not limited to the examples described in the above embodiments. The lubricant seal 22 is only required to prevent the lubricant 25 from flowing out. For example, an O ring may be used as the lubricant seal 22.
(57) In the above embodiment, the backup ring 21 is made of the synthetic resin or the engineering plastic that is one of the synthetic resins. However, the other material may be used for the backup ring 21. To be specific, the material of the backup ring 21 may be determined such that: the backup ring 21 has a strength capable of receiving the compressive force generated by the high pressure of the seal target fluid at the high-pressure side; and the inner peripheral portion 19a of the pressure fluid seal 19 does not get into the gap between the backup ring 21 and the sliding surface 24 by the deformation of the backup ring 21.
INDUSTRIAL APPLICABILITY
(58) As above, each of the sliding seal and the seal structure according to the present invention has excellent effects of: realizing low start friction resistance and low sliding friction resistance; allowing the first member to smoothly move relative to the second member; and having a long life. Thus, the present invention is suitably applicable to the sliding seal and the seal structure.
REFERENCE SIGNS LIST
(59) 11, 29, 31, 32 sliding seal 12 first member 13, 43 second member (housing) 13a first housing portion 13b second housing portion 13c high-pressure passage 14 gap 15 device 16 attachment hole 17 movement direction 18 attaching groove 18a bottom surface 19, 33 pressure fluid seal (high-pressure seal) 19a inner peripheral portion 20 lubricant holding piece 20a lubricant storage portion 20b communication hole 21 backup ring 22 lubricant seal 23 center line 24 sliding surface 25 lubricant 26 lubricant storage space 27 check valve 36, 40 seal structure 37 supply passage