Claims
- 1. An apparatus for suppressing wave energy in a borehole comprising:
a wave suppression structure having a closed top end and an open bottom end and configured to define a chamber under said top end; a structure connected to said wave suppression structure for use in lowering and raising said structure within said borehole; and a gas source for supplying gas to said chamber of said wave suppression structure.
- 2. An apparatus according to claim 1, wherein said wave suppression structure is substantially tubular in configuration, the diameter of said substantially tubular wave suppression structure being sized to extend substantially across a diameter of said borehole in which said apparatus is to be disposed.
- 3. An apparatus according to claim 2, wherein said closed top end of said substantially tubular wave suppression structure comprises a flexible membrane.
- 4. An apparatus according to claim 3, wherein said substantially tubular wave suppression structure comprises sides formed of a flexible material.
- 5. An apparatus according to claim 2, further comprising at least one baffle within said chamber of said substantially tubular wave suppression structure.
- 6. An apparatus according to claim 1, wherein said structure for lowering and raising said substantially tubular wave suppression structure within said borehole is a wireline or a tubing string.
- 7. An apparatus according to claim 1, wherein said gas source is a self-contained gas source associated with said apparatus.
- 8. An apparatus according to claim 1, wherein the gas is helium or nitrogen.
- 9. An apparatus according to claim 1, further comprising:
at least one sensor connected to said structure.
- 10. A method of suppressing wave energy in a borehole comprising:
positioning a wave suppression structure having a closed top end and an open bottom end and configured to define a chamber below said closed top end within a fluid-filled borehole; supplying gas to said chamber; retaining a volume of said gas at substantially an ambient pressure of fluid within said fluid-filled borehole underneath said closed end of said structure; and suppressing the transmission of wave energy traveling along said fluid-filled borehole with said volume of gas.
- 11. A method according to claim 10, wherein said wave suppression structure is a substantially tubular structure and said closed top end of said tubular structure is a flexible membrane defining a diaphragm, the method further comprising absorbing wave energy with said flexible membrane.
- 12. A method according to claim 11, wherein said substantially tubular wave suppression structure includes at least one baffle disposed within said chamber, and further including absorbing acoustic energy with said at least one baffle.
- 13. A method according to claim 10, wherein positioning said wave suppression structure within said borehole comprises raising and lowering said wave suppression structure.
- 14. A method according to claim 10, wherein supplying said gas to said chamber comprises supplying said gas from a gas source located within said borehole.
- 15. A method according to claim 10, wherein supplying said gas comprises supplying helium or nitrogen.
- 16. A method according to claim 10, further comprising:
positioning a sensor and a wave energy source within said borehole; and positioning said wave suppression structure adjacent said sensor.
- 17. An apparatus for suppressing wave energy in a borehole comprising:
a wave suppression structure comprising:
a plurality of rods pivotally connected about a common base and, in a first position, extending substantially parallel to a longitudinal axis extending downwardly from said base; and a web of gas impermeable flexible material attached to said plurality of rods and defining a conical chamber when said plurality of rods are pivoted away from said vertical axis; a structure for lowering and raising said wave suppression structure within said borehole; and a gas source for supplying gas to said chamber of said wave suppression structure.
- 18. An apparatus according to claim 17, further comprising:
a holding element for holding said plurality of rods in said closed position.
- 19. An apparatus according to claim 18, wherein said holding element is suspended from a shaft mounted to said umbrella structure and extending to a location proximate free ends of said plurality of rods and said holding element further comprises:
an inverted cup attached to said shaft and extending over said free ends of said plurality of rods, said inverted cup being movably mounted in relation to said base so as to release said free ends of said plurality of rods when moved away from said base.
- 20. An apparatus according to claim 17, wherein said structure for lowering and raising said wave suppression structure within said borehole is a wireline or a tubing string.
- 21. An apparatus according to claim 17, wherein said gas source is a self-contained gas source associated with said apparatus.
- 22. An apparatus according to claim 17, wherein the gas is helium or nitrogen.
- 23. An apparatus according to claim 17, further comprising:
at least one sensor connected to said structure.
- 24. An apparatus according to claim 17, wherein said gas impermeable flexible material comprises a fabric.
- 25. A method of suppressing wave energy in a borehole comprising:
positioning a wave suppression structure including a plurality of rods pivotally connected about a base and a web of gas impermeable flexible material attached to said rods within a fluid-filled borehole; supplying a gas to said wave suppression structure below said web to rotate said rods upwardly and expand said gas impermeable flexible material into the shape of a conical chamber; retaining a volume of said gas within said conical chamber; and suppressing the transmission of wave energy traveling along said fluid-filled borehole with said volume of gas.
- 26. A method according to claim 25, further comprising:
holding free ends of said plurality of rods in mutually adjacent locations during the positioning of said wave suppression structure; and releasing said free ends of said plurality of rods while supplying said.
- 27. A method according to claim 26, further comprising holding the free ends of said plurality of rods in mutually adjacent locations using an inverted cup and moving said inverted cup away from said free ends of said plurality of rods to release said free ends.
- 28. A method according to claim 25, wherein positioning said wave suppression structure within said borehole comprises raising and lowering said wave suppression structure.
- 29. A method according to claim 25, wherein supplying said gas comprises supplying said from a gas source located within said borehole.
- 30. A method according to claim 25, wherein supplying said gas comprises supplying helium or nitrogen.
- 31. A method according to claim 25, further comprising:
positioning at least one sensor within said fluid-filled borehole; and positioning said wave suppression structure adjacent said at least one sensor.
- 32. An apparatus for suppressing wave energy in a borehole comprising:
a wave suppression structure including a reverse acting bladder comprising at least one layer of elastomeric material formed into a substantially tubular structure having the shape of a bellows, said tubular structure having closed ends; a structure for lowering and raising said reverse acting bladder within said borehole; and a gas source for supplying gas to pressurize said reverse acting bladder.
- 33. An apparatus according to claim 32, wherein said tubular structure with closed ends is formed of a plurality of layers of elastomeric material.
- 34. An apparatus according to claim 32, wherein said elastomeric material comprises natural or synthetic rubber.
- 35. An apparatus according to claim 32, wherein said structure for lowering and raising said reverse acting bladder within said borehole is a wireline or a tubing string.
- 36. An apparatus according to claim 32, wherein said gas source is a self-contained gas source associated with said apparatus.
- 37. An apparatus according to claim 32, wherein the gas is helium or nitrogen.
- 38. An apparatus according to claim 32, further comprising:
at least one sensor connected to said structure.
- 38. An apparatus according to claim 32, further comprising:
a pump operably couple to said reverse acting bladder for removing gas from an interior thereof.
- 40. A method of suppressing wave energy in a borehole comprising:
pressurizing a reverse acting bladder having the shape of a bellows to extend said reverse acting bladder in a longitudinal direction and reduce a diameter thereof; positioning said reverse acting bladder within a fluid-filled borehole; reducing pressure within said reverse acting bladder to longitudinally shorten said reverse acting bladder and expand its diameter; and suppressing the transmission of wave energy traveling along said fluid-filled borehole with said reverse acting bladder.
- 41. A method according to claim 40, wherein positioning said reverse acting bladder within said borehole comprises raising and lowering said reverse acting bladder.
- 42. A method according to claim 40, wherein pressurizing a reverse acting bladder comprises supplying a gas to an interior of said reverse acting bladder.
- 43. A method according to claim 42, wherein supplying said gas comprises supplying said gas from a gas source located within said borehole.
- 44. A method according to claim 42, wherein supplying said gas comprises supplying helium or nitrogen.
- 45. A method according to claim 40, further comprising positioning at least one sensor and a within said fluid-filled borehole; and positioning said reverse acting bladder adjacent said at least one sensor.
- 46. An apparatus for suppressing wave energy in a fluid-filled borehole, comprising a chamber containing a gas at a pressure at or below an ambient pressure of fluid in the fluid-filled borehole.
- 47. The apparatus of claim 46, wherein the gas comprises a low density gas.
- 48. The apparatus of claim 47, wherein the low density gas comprises helium or nitrogen.
- 49. A method of suppressing acoustic waves in a fluid-filled borehole, comprising disposing a chamber containing a gas in the fluid-filled borehole at a pressure at or below an ambient pressure of fluid in the fluid-filled borehole.
- 50. The method of claim 49, further including filling the chamber with the gas while the chamber is disposed in the fluid-filled borehole.
- 51. The method of claim 49, further including expanding the chamber to extend substantially across a diameter of the fluid-filled borehole after disposition on the chamber therein.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application filed Mar. 5, 2002, Ser. No. ______ entitled METHOD AND APPARATUS FOR SUPPRESSING WAVES IN A BOREHOLE, which is incorporated herein by reference in its entirety.
GOVERNMENT RIGHTS
[0002] This invention was made with United States Government support under Contract No. DE-AC07-99ID13727 awarded by the United States Department of Energy. The United States Government has certain rights in the invention.