Claims
- 1. A method for a gate valve mountable onto a wellbore casing, said gate valve being operable for controlling fluid and cutting tubing, comprising:mounting said gate valve on aid well casing for controlling fluid flow in place of at least one BOP on said well casing; mounting a slidable gate within said gate valve, said slidable gate having a first side and a second side opposite said first side; providing first and second seats for said slidable gate; positioning said slidable gate between said first and second seats such that said first side of said gate is adjacent said first seat d said second side of said gate is adjacent said second seat; providing that said first and second seats each have different internal diameters adjacent said slidable gate; forming an aperture through said slidable gate; providing a cutting edge on said slidable gate of said gate valve within said aperture such that said cutting edge defines at least a portion of said aperture.
- 2. The method of claim 1, further comprising:mounting said gate valve in a subsea installation.
- 3. The method of claim 1, further comprising:providing that said first seat is formed by telescoping interconnecting two seat elements with respect to each other, and providing that said second seat is formed by telescoping interconnecting two seat elements with respect to each other.
- 4. The method of claim 1, further comprising:providing that said aperture has a minimum size at said first side of said slidable gate.
- 5. The method of claim 1, further comprising:providing a single inclined space defining aperture which is angled with respect to an axis through said aperture from about three degrees to about twenty-five degrees.
- 6. A method for determining force needed on a gate to cut a tubular disposed within a gate valve, said gate valve being mountable on a wellbore casing such that said tubular is positional within said wellbore casing, said method comprising:providing a test body for slidably supporting a test gate, said test gate comprising dimensions related to said gate; inserting a test pipe through said test body and said test gate, said test pipe comprising a dimension related to said tubular; applying force to said test gate until said pipe is cut by said test gate; and measuring said force on said test gate required for cutting said test pipe by sliding movement of said gate.
- 7. The method of claim 6, further comprising:designing an actuator for said gate such that said actuator is capable of producing said force.
- 8. The method of claim 6, further comprising:utilizing a hydraulic press which is not utilized for controlling a gate valve for applying said force to said test gate.
- 9. A method for cutting a pipe within a wellbore utilizing a gate valve such that said pipe is pushed away from a gate within said gate valve, said gate defining an aperture therethrough, said method comprising:providing said gate valve with a cutting edge on one side of said gate along said aperture through the gate; providing a single inclined surface on said aperture through said gate such that said aperture opens from a minimum size adjacent said cutting edge to a maximum size distal said cutting edge, said single inclined surface extending from said minimum size to said maximum size of said aperture; inserting said pipe into said wellbore through said gate valve; closing said gate within said gate valve; and cutting said pipe as said gate closes such that said inclined surface produces a force on said pipe to move said pipe away from said gate.
- 10. The method of claim 9, further comprises:determining said force for cutting said pipe utilizing a hydraulic press prior to said step of cutting, wherein said hydraulic press of a type not utilized for controlling a valve for said wellbore.
- 11. The method of claim 9, further comprising:mounting said gate within said valve between a first set of telescopingly interconnected seat elements and a second set of telescopingly interconnected seat elements.
- 12. The method of claim 9, further comprising:utilizing said gate valve on a wellbore without using a B.O.P.
- 13. The method of claim 9, further comprising:providing that said inclined surface is angled with respect to an axis through said aperture of said gate within said gate valve in a range of from three degrees to twenty-five degrees.
- 14. A gate valve for a subsea riser package installation, said gate valve comprising a valve body defining a flow passageway therethough, said gate valve being operable for cutting a tubular extending through said gate valve and said subsea riser package, said subsea riser package installation being operable for replacement of a B.O.P, said subsea riser package being connectable to a wellbore casing, said subsea river package installation further comprising:a sliding gate within said gate valve; a cutting edge mounted on one side of said sliding gate; an inclined surface adjacent said cutting edge such that said cutting edge and said inclined surface define at least a portion of aperture through said sliding gate; a hydraulic actuator for said gate valve operable to apply sufficient force to said sliding gate to cut said tubular; and a first seat on a first side of aid sliding gate and a second seat on a second side of said sliding gate, at least one of said first seat of said second seat defining an interior passageway with an axial seat length wherein said interior passageway comprises a conical surface extending along a substantial portion of said axial sea length.
- 15. The gate valve of claim 14, further comprising:a first telescopingly interconnected set of at least two seating elements mounted adjacent said one side of said sliding gate, each of said first telescopingly interconnected set of at least two seating elements being moveable within said valve body with respect to said valve body; and a second telescopingly interconnected set of seating elements mounted adjacent an opposite side of said sliding gate.
- 16. The gate valve of claim 14, wherein said inclined surface is angled with respect to an axis through said aperture by from three degrees to twenty degrees.
- 17. A gate valve for a subsea riser package installation, said gate valve comprising a valve body defining a flow passageway therethough, said subsea riser package being sized for carrying a tubular therein having a diameter greater an two and one-half inches, said subsea riser package being connectable to a wellbore casing, said subsea riser package installation further comprising:a sliding gate within said gate valve; a cutting edge mounted on said sliding gate; an inclined surface adjacent said cutting edge such that said cutting edge and said inclined surface define at least a portion of aperture through said sliding gate; a hydraulic actuator for said gate valve operable to apply sufficient force to said sliding gate to cut through said diameter greater than two and one-half inches of said tubular; a first telescopingly interconnected set of at least two seating elements mounted adjacent said one side of said sliding gate, each of said first telescopingly interconnected set of at least two seating elements being moveable within said valve body with respect to said valve body; and a second telescopingly interconnected set of seating elements mounted adjacent an opposite side of said sliding gate.
- 18. A gate valve for a subsea riser package installation, said gate valve comprising a valve body defining a flow passageway therethough, said subsea riser package being sized for carrying a tubular therein having a diameter greater an two and one-half inches, said subsea riser package being connectable to a wellbore casing, said subsea riser package installation further comprising:a sliding gate within said gate valve mounted for transverse movement with respect to said flow passageway; a cutting edge mounted on said sliding gate; a first inclined surface adjacent said cutting edge such that said cutting edge and said first inclined surface define at least a portion of an aperture through said sliding gate; a hydraulic actuator for said gate valve operable to apply sufficient force to said sliding gate to cut through said diameter of said tubular; and a valve seat adjacent said sliding gate, said valve seat having an axial seat length, said valve seat defining an interior wall with second inclined inner surface, said second inclined surface defining an inner diameter which decreases with respect to axial distance away from said sliding gate.
- 19. The gate valve of claim 18, wherein said second inclined inner surface extends along at least a substantial portion of said axial seat at length.
Parent Case Info
This application claims benefit of U.S. Provisional Application No. 60/318,371 filed Sep. 10, 2001, and is a continuation-in-part of U.S. patent application Ser. No. 09/925,676 filed Aug. 9, 2001.
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/318371 |
Sep 2001 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09/925676 |
Aug 2001 |
US |
Child |
09/992220 |
|
US |