Claims
- 1. A valve for controlling the flow of a fluid, said device comprising:
a housing defining a passage therethrough, the passage being in fluid communication with an inlet formed in the housing for receiving fluid and with an outlet formed in the housing for discharging the fluid; a flow-control element disposed within the passage between the inlet and the outlet and operable to control flow of the fluid therethrough; at least one seat disposed in the housing proximate the flow-control element, the at least one seat and the flow-control element defining opposing surfaces that at least in some operating conditions of the valve make sealing contact with each other so as to prevent flow of fluid therebetween and thereby prevent flow through the valve between the inlet and the outlet; and a biasing device structured and arranged for urging each seat and the flow-control element relatively toward each other; wherein the biasing device, the seat, and the flow-control element are comprised of refractory materials and at least the biasing device comprises a toughened refractory material capable of substantial elongation and compression.
- 2. The valve of claim 1, further comprising:
an actuating device operably engaging the flow-control element for moving the flow-control element relative to the seat between an open position in which the fluid is capable of flowing between the inlet and the outlet via the flow-control element and a closed position in which the fluid is not capable of flowing between the inlet and the outlet via the flow-control element.
- 3. The valve of claim 2, wherein the flow-control element has a flow passage formed therethrough and the at least one seat has a flow passage formed therethrough, the flow-control element being movable by the actuating device to vary orientation of the flow passage of the flow-control element relative to the flow passage in the seat so as to selectively restrict flow through the valve.
- 4. The valve of claim 3, wherein there are two of the seats sealingly engaging different portions of the flow-control element and respectively in fluid communication with the inlet and outlet, each seat having a flow passage formed therethrough and the flow-control element being movable to place each of the flow passages of the seats in fluid communication with the flow passage in the flow-control element.
- 5. The valve of claim 4, wherein the flow-control element is rotatable in the housing for establishing communication between the flow passage in the flow-control element and the flow passages in the seats.
- 6. The valve of claim 5, wherein the flow-control element comprises a ball and the flow passage therein comprises a straight bore formed through the ball, the seats being arranged on opposite sides of the ball such that in an open position of the valve the bore is aligned with the flow passages of both seats, and in a closed position of the valve the ball is rotated such that the ball closes the flow passages of both seats.
- 7. The valve of claim 6, wherein there are two of the biasing devices each urging one of the seats toward the ball.
- 8. The valve of claim 7, wherein each seat and the respective biasing device therefor are formed from a single piece of toughened refractory material so as to be integral with each other.
- 9. The valve of claim 8, wherein each biasing device comprises a helical spring.
- 10. The valve of claim 1, wherein each seat defines a seating surface for engaging the flow-control element, and wherein a portion of the seating surface is defined by a resiliently flexible portion of the seat that is resiliently flexible relative to the remainder of the seat, the seat being formed of a toughened refractory material.
- 11. The valve of claim 1, further comprising a shield disposed in the housing so as to shield the biasing device from contact by fluid flowing through the valve, the shield being formed of a refractory material.
- 12. The valve of claim 11, wherein the seat and the shield are integrally formed from a single piece of refractory material.
- 13. The valve of claim 11, wherein the seat, shield, and biasing device are integrally formed from a single piece of toughened refractory material.
- 14. The valve of claim 1, formed as a check valve, the flow-control element being movable axially within the passage of the housing between a closed position sealingly engaging the seat and an open position spaced from the seat such that fluid can flow between the opposing surfaces of the flow-control element and seat, and the biasing device engaging the flow-control element to urge the flow-control element toward the closed position.
- 15. The valve of claim 1, wherein said device is operable for prolonged continuous operation with fluids having temperatures in excess of 400° C.
- 16. A sealing device for interacting with a flow-control element of a valve for controlling the flow of a fluid, said sealing device comprising:
a seat having a seating surface adapted to sealingly engage the flow-control element; and a biasing device operably connected to the seat for urging the seat into engagement with the flow-control element, the biasing device and the seat being comprised of a refractory material and at least the biasing device being comprised of a toughened refractory material.
- 17. The sealing device of claim 16, wherein a portion of the seating surface of the seat is defined by a resiliently flexible portion of the seat that is resiliently flexible relative to another portion of the seat that defines the remainder of the seating surface, the seat being comprised of a toughened refractory material.
- 18. The sealing device of claim 17, wherein the resiliently flexible portion is provided by a groove formed in the seat proximate the seating surface so as to form a reduced-thickness region in the seat to which the resiliently flexible portion is attached.
- 19. The sealing device of claim 16, wherein the seat and the biasing device are formed from a single piece of toughened refractory material so as to be integral with each other.
- 20. The sealing device of claim 19, wherein the biasing device is formed as a helical spring.
- 21. A method of fabricating a sealing device for interacting with a flow-control element of a valve for controlling the flow of a fluid, said method comprising the steps of:
providing a cylinder of a toughened refractory material having a bore formed therethrough such that the bore defines an axis and is adapted to cooperate with the flow-control element to control the flow of a fluid through the bore; forming a seating surface in the cylinder generally perpendicular to the axis of the bore; forming a circumferentially and axially extending channel in the cylinder opposing the seating surface, the channel extending into the cylinder concentrically with the bore and thereby forming a generally cylindrical spring blank radially outward of the channel and a generally cylindrical spring shield radially inward of the channel such that the bore is defined by an inner surface of the spring shield; and forming a spiral groove in the spring blank so as to fabricate a biasing device such that the seating surface, the spring shield, and the biasing device comprise an integral structure.
- 22. The method of claim 21, further comprising forming a groove in the cylinder proximate the seating surface so as to cause a portion of the cylinder defining a portion of the seating surface to be resiliently flexible relative to the remainder of the cylinder.
- 23. A device for sealing an actuator operably connected to a flow-control element disposed within a main housing of a valve for controlling the flow of a fluid, said device comprising:
an actuator housing adapted to engage the main housing so as to surround the actuator, the actuator housing having a proximal end adjacent to the flow-control element and an opposing threaded distal end; a compliant packing adapted to be disposed about the actuator, at the proximal end of the actuator housing adjacent to the flow-control element, for forming a seal between the actuator and the actuator housing; an end cap operably engaging the threaded end of the actuator housing and adapted to allow the actuator to pass therethrough; and a biasing device disposed within the actuator housing intermediate the end cap and the packing, the biasing device being comprised of a toughened refractory material and configured such that a substantially uniform compressive force is applied to the packing about the actuator to compress the packing between the actuator housing and the actuator to form a seal therebetween.
- 24. A ball valve for controlling the flow of a fluid, said ball valve comprising:
a housing defining a passage therethrough having an inlet adapted to receive the fluid and an outlet adapted to dispense the fluid; a valve ball disposed within the passage of the housing between the inlet and the outlet and defining a bore therethrough; at least two seats operably engaging the valve ball, each seat being adapted to prevent the fluid from flowing between the housing and the valve ball; a biasing device operably engaging each seat for urging the seat into engagement with the valve ball; a shield operably engaging each seat, the shield extending from the valve ball to at least one of the inlet and the outlet and adapted to channel the fluid therebetween, the biasing device, the seat, and the valve ball being comprised of a toughened refractory material; and a valve stem operably engaging the valve ball, the valve stem capable of actuating the valve ball between a position in which the fluid is capable of flowing between the inlet and the outlet through the bore in the valve ball and a position in which the fluid is not capable of flowing between the inlet and the outlet through the bore in the valve ball.
- 25. A valve for controlling the flow of a fluid, said device comprising:
a housing defining a passage therethrough, the passage being in fluid communication with an inlet formed in the housing for receiving fluid and with an outlet formed in the housing for discharging the fluid; a flow-control element disposed within the passage between the inlet and the outlet and operable to control flow of the fluid therethrough; at least one seat disposed in the housing proximate the flow-control element, the at least one seat and the flow-control element defining opposing surfaces that at least in some operating conditions of the valve make sealing contact with each other so as to prevent flow of fluid therebetween and thereby prevent flow through the valve between the inlet and the outlet; and a biasing device structured and arranged for urging each seal, and the flow-control element relatively toward each other; wherein the biasing device, the seat, and the flow-control element are comprised of refractory materials and at least the biasing device comprises a toughened refractory material capable of substantial elongation and compression, and wherein the valve is free of elements made of polymer-based materials.
- 26. The valve of claim 25, further comprising at least one seal made of a graphite-impregnated non-polymer-based material for sealing an interface between two components of the valve.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of currently pending U.S. patent application Ser. No. 09/738,383, filed Dec. 15, 2000, which claims the benefit of the filing date of U.S. Provisional Patent Application Ser. No. 60/170,807 filed Dec. 15, 1999.
Provisional Applications (1)
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Number |
Date |
Country |
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60170807 |
Dec 1999 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09738383 |
Dec 2000 |
US |
Child |
09775080 |
Feb 2001 |
US |