Claims
- 1. A fluid pressure booster comprising:
- (a) a casing internally defining a pair of cylinders coaxially on opposite sides of a central partition wall having an inlet port, an outlet port, two exhaust ports, and two output ports;
- (b) a piston assembly including a pair of pistons slidably fitted in said cylinders and a shaft connecting said pistons and hermetically passed through said central partition wall, said pistons defining boosting chambers on the sides of said central partition wall and drive chambers on the opposite sides of said central partition wall, respectively;
- (c) inlet passages formed in said central partition wall for each one of said boosting chambers being in communication with said inlet port, and each one of said inlet passages having an inlet check valve permitting fluid flow only into said each boosting chamber
- (d) outlet passages formed in said central partition wall for each one of said boosting chambers being in communication with said outlet port, and each one of said outlet passages having an outlet check valve permitting fluid flow only out of said each boosting chamber;
- (e) a switch valve comprising a valve body to be shifted between two positions by pressing push rods protruding into said boosting chambers from said central partition wall to communicate said drive chambers of said cylinders alternately with said inlet port and said exhaust port through outlet ports so as to drive said pistons toward the other stroke end upon reaching one stroke end thereof, and each protruding push rod being pushed by each piston when the piston closes to the central partition wall; and
- (f) passages connecting each one of said output ports in said central partition wall to a corresponding one of said drive chambers;
- (g) a stall preventing means for discouraging said valve body from stopping at a neutral position between said two positions, CHARACTERIZED IN THAT said stall preventing means comprises;
- (i) a pair of push rod springs each provided in association with said push rod protruding into said boosting chamber from said partition wall, said push rod springs preventing said valve body from being driven to the neutral position against the effort of said piston when the supply fluid pressure to said drive chamber drops below a predetermined level;
- (ii) an idling gap provided between the inner end of each push rod and the opposite end face of said spool, permitting the inner end of said push rod to abut said end face of said valve body for driving said valve body when the pressing force of said piston based on the supply fluid pressure in said drive chamber reaches a predetermined pressing force; and
- (iii) an inlet check valve spring provided in each one of the inlet check valves and having a predetermined biasing force for closing the inlet check valve to prevent a reverse flow from the boosting chamber,
- (iv) whereby, when the valve body is positioned around the neutral position, said valve body is prevented from stopping at the neutral position, since said stall preventing means:
- (A) restricts the valve body so as not to be pushed with the push rod by utilizing the biasing force of the spring until the valve body starts to move and
- (B) helps the sliding movement of the valve body once the valve body starts to move.
- 2. The fluid pressure booster as defined in claim 1, further comprising a pressure regulator valve provided in a conduit leading from said inlet port of said casing to said switch valve for regulating the fluid pressure to be supplied to said drive chamber.
- 3. A fluid booster comprising:
- (a) a casing (20) internally defining a pair of cylinders (22a, 22b), said pair of cylinders (22a, 22b) being coaxial and on opposite sides of a central partition wall (200) having an inlet port (204), an outlet port (214), two exhaust ports (232a, 232b), and two output ports (231a, 231b);
- (b) a piston assembly including a pair of pistons (24a, 24b), one of said pair of pistons (24a, 24b) being slidably fitted in each one of said pair of cylinders (22a, 22b), and a shaft (25) connecting said pair of pistons (24a, 24b), said shaft (25) being hermetically passed through said central partition wall (200), said pair of pistons (24a, 24b) defining a boosting chamber (26a, 26b) in each one of said pair of cylinders (22a, 22b) on the side of said central partition wall (200) and a drive chamber (27a, 27b) on the opposite side;
- (c) an inlet passage (205a, 205b) formed in said central partition wall (200) for each one of said boosting chambers (26a, 26b) in communication with said inlet port (204), each one of said inlet passages (205a, 205b) being provided with an inlet check valve (207a, 207b) permitting fluid flow only in the direction toward the associated one of said boosting chambers (26a, 26b);
- (d) an inlet passage formed in said casing (20) for each one of said boosting chambers (26a, 26b) in communication with said outlet port (214), each one of said outlet passages being provided with an outlet check valve (212a, 212b) permitting fluid flow only in the direction out of the associated one of said boosting chambers (26a, 26b);
- (e) a fluid passageway (235a, 235b) connecting each one of said output ports (232a, 232b) in said central partition wall (200) to a corresponding one of said drive chambers (27a, 27b); and
- (f) a switch valve (220) comprising:
- (i) a bore (221) extending through said central partition wall (200) from one of said boosting chambers (26a, 26b) to the other one of said boosting chambers (26a, 26b), said bore (221) being in fluid communication with said inlet port (204) and said outlet port (214), said bore (221) having an axially inwardly facing abutment surface adjacent each end thereof;
- (ii) a sleeve (222) disposed in said bore (221); said sleeve (222) having a supply port (230) therethrough that is in fluid communication with said inlet port (204) and said outlet port (214) and, axially outwardly of said supply port (230), a pair of output ports, each one of said output ports being in fluid communication with a corresponding one of said output ports (231a, 231b) in said central partition wall (200);
- (iii) a spool (224) slidably movable in said sleeve (222), said spool (224) having two axially spaced lands (224a, 224b) defining a central annular chamber that is in fluid communication with said supply port (230) in said sleeve (222) over the full range of travel of said spool (224) in said sleeve (222), said two axially spaced lands (224a, 224b) being axially spaced by a distance such that said central annular chamber is in fluid communication with one and only one of said pair of output ports in said sleeve (222) over the full range of travel of said spool (224) in said sleeve (222);
- (iv) two push rod guides (223a, 223b) disposed in said bore (221), one of said push rod guides (223a, 223b) being located on each side of said sleeve (222), each one of said push rod guides (223a, 223b) abutting the adjacent end surface of said sleeve (222) and the adjacent one of said axially inwardly facing abutment surfaces in said bore (221), each one of said push rod guides (223a, 223b) having at least one radial opening that is in fluid communication with a corresponding one of said exhaust ports (232a, 232b), each one of said two push rod guides (223a, 223b) having an axially inner end sized, shaped, and positioned to make valving contact with the adjacent one of said two axially spaced lands (224a, 224b);
- (v) a push rod (225a, 225b) slidably movable in each one of said push rod guides (223a, 223b), each one of said push rods (225a, 225b) having an axially inner head (225c, 225d) and an axially outer head (226a, 226b); and
- (vi) a travel spring (227a, 227b) disposed between each one of said push rod guides (223a, 223b) and the axially outer head (226a, 226b) of the corresponding one of said push rods (225a, 225b);
- (viii) said push rods (225a, 225b), said axially inner heads (225c, 225d) and said spool (224) being sized and shaped so that:
- (A) the axially outer end of each one of said push rods (225a, 225b) protrudes into the corresponding one of said booster chambers (26a, 26b) when neither of said pistons (24a, 24b) is in contact with the adjacent one of said push rods (225a, 225b);
- (B) when one of said pistons (24a, 24b) contacts the axially outer end of the adjacent one of said push rods (225a, 225b), moving said push rod (225a, 225b) axially in the corresponding one of said push rod guides (223a, 223b) against the bias of the corresponding one of said travel springs (227a, 227b), the axially inner head (225c, 225d) of said push rod (225a, 225b) contacts said spool (224), moving said spool (224) axially and causing said two axially spaced lands (224a, 224b) on said spool (224) to block communication between said central annular chamber and one of said output ports in said sleeve (222) and to open communication between said central annular chamber and the other one of said output ports in said sleeve (222), whereby the pressure in said supply port (230) is shifted from a first one of said drive chambers (27a, 27b) to a second one of said drive chambers (27a, 27b) is placed in communication with the corresponding one of said exhaust ports (223a, 223b) and communication between the first one of said drive chambers (27a, 27b) and the corresponding one of said exhaust ports (232a, 232b) is blocked and the axially inner end of the other one of said push rod guides (223a, 223b) makes valving contact with the adjacent one of said two axially spaced lands (224a, 224b); and
- (C) when said spool (224) is in its neutral position, exhaust air from one of said output ports (231a, 231b) acts on the corresponding one of said two axially spaced lands (224a, 224b), thereby forcing said spool (224) beyond its neutral position and ensuring that the flow of fluid switches from one of said drive chambers
- (27a, 27b) to the other one of said drive chambers (27a, 27b) without stalling.
- 4. The fluid pressure booster as recited in claim 3 and further comprising a pressure regulator valve provided in a conduit leading from said inlet port (204) to said switch valve (220) for regulating the fluid pressure to be supplied to said boosting chambers (26a, 26b).
- 5. The fluid pressure booster as recited in claim 3 wherein said two axially spaced lands (224a, 224b) further define two axially outer annular chambers (57) between said spool (224) and a corresponding one of said two axially spaced lands (224a, 224b).
- 6. The fluid pressure booster as recited in claim 3 wherein:
- (a) said central partition wall (200) comprises two axially spaced check valve casings (202a, 202b);
- (b) each one of said inlet check valves (207a, 207b) is mounted in a corresponding one of said check valve casings (202a, 202b); and
- (c) each one of said axially inwardly facing abutment surfaces in said bore (221) is located on the axially inward surface of one of said check valve casings (202a, 202b).
- 7. The fluid pressure booster as recited in claim 3 wherein the axially outward end of each one of said push rods (225a, 225b) is axially outward of the axially outer head (226a, 226b) of the corresponding one of said push rods (225a, 225b).
Priority Claims (2)
Number |
Date |
Country |
Kind |
59-119912 |
Aug 1984 |
JPX |
|
59-191891 |
Dec 1984 |
JPX |
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Parent Case Info
This is a division of application Ser. No. 912,189 filed Sept. 25, 1986, now U.S. Pat. No. 4,674,958, which is a continuation of application Ser. No. 751,531, filed July 3, 1985, now abandoned.
US Referenced Citations (6)
Foreign Referenced Citations (1)
Number |
Date |
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325269 |
Sep 1920 |
DE2 |
Divisions (1)
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Number |
Date |
Country |
Parent |
912189 |
Sep 1986 |
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Continuations (1)
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Number |
Date |
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Parent |
751531 |
Jul 1985 |
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