Claims
- 1. A method of communicating in a tubular system between a transmission node and a reception node through media disposed therein, the media of both compressible and incompressible fluid, the method comprising the steps of:providing a transmission apparatus at the transmission node, said transmission apparatus being in communication with the media, the media at the transmission node comprising an incompressible fluid; providing a reception apparatus at the reception node, said reception apparatus being in communication with the media, the media at the reception node comprising a compressible fluid; generating at least one impulse in the incompressible fluid with the transmission apparatus; and detecting the at least one impulse with the reception apparatus.
- 2. The method as recited in claim 1 wherein the step of generating at least one impulse further comprises propagating at least one incremental pressure increase followed by at least one corresponding incremental pressure decrease through the media.
- 3. The method as recited in claim 1 wherein the step of generating at least one impulse further comprises propagating at lest one incremental pressure decrease followed by at least one corresponding incremental pressure increase through the media.
- 4. The method as recited in claim 1 wherein the step of detecting the at least one impulse further comprises detecting variations in the fluid density of the media at the reception node.
- 5. The method as recited in claim 1 wherein the step detecting the at least one impulse further comprises detecting variations in pressure at the reception node.
- 6. The method as recited in claim 1 wherein the step of detecting the at least one impulse further comprises detecting variations in stress of the tubular system at the reception node.
- 7. The method as recited in claim 1 wherein the step of detecting the at least one impulse further comprises detecting variations in the acceleration of the tubular system at the reception node.
- 8. The method as recited in claim 1 wherein the media further comprises one interface between compressible and incompressible fluid.
- 9. The method as recited in claim 1 wherein the media further comprises at least one interface between compressible fluid and incompressible fluid.
- 10. The method as recited in claim 1 further comprising the step of generating a signal for actuating a controllable device proximate the reception node.
- 11. The method as recited in claim 10 wherein the step of generating at least one impulse further comprises generating a plurality of impulses in a predetermined pattern and comparing the pattern of impulses to information stored in a control system.
- 12. A method as in claim 1 wherein the tubular system comprises a subterranean well.
- 13. A method as in claim 1 wherein the tubular system comprises a pipeline.
- 14. A method of communicating in a tubular system through both incompressible and compressible media disposed therein comprising the steps of:generating at least one impulse in incompressible media; propagating the at least one impulse across an interface between incompressible and compressible media; and detecting the at least one impulse at a remote location along the tubular system, the remote location in compressible media.
- 15. The method as recited in claim 14 wherein the step of generating at least one impulse further comprises propagating at least one incremental pressure decrease followed by at least one corresponding incremental pressure increase through the media.
- 16. The method as recited in claim 14 wherein the step of detecting the at least one impulse further comprises detecting variations in the fluid density of the media at the remote location.
- 17. The method as recited in claim 14 wherein the step of detecting the at least one impulse further comprises detecting variations in pressure in the tubular system at the remote location.
- 18. The method as recited in claim 14 wherein the step of detecting the at least impulse further comprises detecting variations in the stress of the tubular system at the remote location.
- 19. The method as recited in claim 14 wherein the step of detecting the at least one impulse further comprises detecting variations in the acceleration of the tubular system at the remote location.
- 20. The method as recited in claim 14 wherein the step of propagating further comprises propagating the at least one impulse across at least one interface between incompressible and compressible media.
- 21. The method as recited in claim 14 wherein the step of generating at least one impulse further comprises generating a plurality of impulses in a predetermined pattern.
- 22. The method as recited in claim 14 further comprising the step of generating a signal of actuating a controllable device proximate the remote location.
- 23. A method as in claim 14 wherein the tubular system comprises a subterranean well.
- 24. A method as in claim 14 wherein the tubular system comprises a pipeline.
- 25. A method of communicating in a tubular system through both incompressible and compressible media disposed therein comprising the steps of:generating at least one impulse in compressible media; propagating the at least one impulse across an interface between incompressible and compressible media; and detecting the at least one impulse at a remote location along the tubular system, the remote location in incompressible media.
- 26. The method as recited in claim 25 wherein the step of generating at least one impulse further comprises propagating at least one incremental pressure decrease followed by at least one corresponding incremental pressure increase through the media.
- 27. The method as recited in claim 25 wherein the step of detecting the at least one impulse further comprises detecting variations in the fluid density of the media at the remote location.
- 28. The method as recited in claim 25 wherein the step of detecting the at least one impulse further comprises detecting variations in pressure in the tubular system at the remote location.
- 29. The method as recited in claim 25 wherein the step of detecting the at least one impulse further comprises detecting variations in the stress of the tubular system at the remote location.
- 30. The method as recited in claim 25 wherein the step of detecting the at least one impulse further comprises detecting variations in the acceleration of the tubular system at the remote location.
- 31. The method as recited in claim 25 wherein the step of propagating further comprises propagating the at least one impulse across at least one interface between incompressible and compressible media.
- 32. The method as recited in claim 25 wherein the step of generating at least one impulse further comprises generating a plurality of impulses in a predetermined pattern.
- 33. The method as recited in claim 25 further comprising the step of generating a signal for actuating a controllable device.
- 34. The method as in claim 25 wherein the tubular system comprises a subterranean well.
- 35. The method as in claim 25 wherein the tubular system comprises a pipeline.
- 36. An apparatus for communicating in a tubular system between a transmission node and a reception node through both compressible and incompressible media disposed therein comprising:a transmission apparatus at the transmission node, the transmission apparatus in communication with the incompressible media; and a reception apparatus at the reception node, the reception apparatus in communication with the compressible media, wherein during a communication mode of operation, the transmission apparatus generates at least one impulse in the media and the reception apparatus detects the at least one impulse.
- 37. The apparatus as recited in claim 36 wherein the at least one impulse further comprises at least one incremental pressure increase followed by at least one corresponding incremental pressure decrease that propagates through the media.
- 38. The apparatus as recited in claim 36 wherein the at least one impulse further comprises at least one incremental pressure decrease followed by at least one corresponding incremental pressure increase that propagates through the media.
- 39. The apparatus as recited in claim 36 wherein the reception apparatus detects variations in the fluid density of the media at the reception node.
- 40. The apparatus as recited in claim 36 wherein the reception apparatus detects variations in the longitudinal stress of the tubular system at the reception node.
- 41. The apparatus as recited in claim 36 wherein the reception apparatus detects variations in the circumferential stress of the tubular system at the reception node.
- 42. The apparatus as recited in claim 36 wherein the reception apparatus detects variations in the pressure of the tubular system at the reception node.
- 43. The apparatus as recited in claim 36 further comprising a controllable device within the tubular system proximate the reception node that is actuated in response to the detection of the at least one impulse by the reception apparatus.
- 44. The apparatus as recited in claim 36 wherein the at least one impulse further comprises a plurality of impulses in a predetermined pattern that are compared to information stored in a control system.
- 45. An apparatus as in claim 36 wherein the tubular system comprises a subterranean well.
- 46. An apparatus as in claim 36 wherein the tubular system comprises a pipeline.
- 47. The apparatus as recited in claim 36, the tubular system having at least one interface between incompressible and compressible media.
- 48. An apparatus for communicating in a tubular system through both compressible and incompressible media disposed therein comprising:a transmission apparatus for generating at least one impulse in the incompressible media by removing a portion of the compressible media from the tubular system; and a reception apparatus at a spaced apart location along the tubular system for detecting the at least one impulse, the reception apparatus in communication with the compressible media.
- 49. The apparatus as recited in claim 48, wherein the at least one impulse further comprises at least one incremental pressure increase followed by at least one corresponding incremental pressure decrease that propagates through the media.
- 50. The apparatus as recited in claim 48 wherein the at least one impulse further comprises at least one incremental pressure decrease followed by at least one corresponding incremental pressure increase that propagates through the media.
- 51. The apparatus as recited in claim 48 wherein the reception apparatus detects variations in the fluid density of the media at the remote location.
- 52. The apparatus as recited in claim 48 wherein the reception apparatus detects variations in the longitudinal stress of the tubular system at the remote location.
- 53. The apparatus as recited in claim 48 wherein the reception apparatus detects variations in the circumferential stress of the tubular system at the remote location.
- 54. The apparatus as recited in claim 48 wherein the reception apparatus detects variations in the acceleration of the tubular system at the remote location.
- 55. The apparatus as recited in claim 48 wherein the at least one impulse further comprises a plurality of impulses in a predetermined pattern.
- 56. The apparatus as recited in claim 48 further comprising a controllable device within the tubular system proximate the remote location that is actuated in response to the detection of the at least one impulse by the reception apparatus.
- 57. An apparatus as in claim 48 wherein the tubular system comprises a subterranean well.
- 58. An apparatus as in claim 48 wherein the tubular system comprises a pipeline.
- 59. The apparatus as recited in claim 48, the tubular system further comprising at least one interface between incompressible and compressible media.
- 60. A method of communicating in a tubular system having compressible and incompressible media therein, the method comprising the steps of:generating at least one pressure impulse in the incompressible fluid; and detecting the at least one pressure impulse in the compressible fluid.
- 61. A method as in claim 60, further comprising the steps of providing a transmission apparatus in communication with the compressible media.
- 62. A method as in claim 60, further comprising the step of providing a reception apparatus in communication with the incompressible media.
- 63. A method as in claim 60, wherein the step of generating at least one pressure impulse further comprises generating a plurality of impulses in a coded signal.
- 64. A method as in claim 60, wherein the coded signal is determined by the time pattern of the plurality of impulses.
- 65. A method as in claim 60, wherein the step of generating at least one pressure impulse further comprises generating a signal for activating a well too; and further comprising the step of activating at least one well tool.
- 66. A method as in claim 60 wherein the tubular system comprises a subterranean well.
- 67. A method as in claim 60 wherein the tubular system comprises a pipeline.
- 68. A method as in claim 60 further comprising the step of propagating the at least one impulse signal across at least one interface between incompressible and compressible media.
CROSS REFERENCE TO RELATED APPLICATIONS
This is a continuation of application Ser. No. 09/056,053 filed Apr. 6, 1998 now U.S. Pat. No. 6,384,738.
This invention relates to Provisional Application Ser. No. 60/042,783, filed Apr. 7, 1997. The contents of that application are incorporated by reference herein.
US Referenced Citations (27)
Foreign Referenced Citations (2)
Number |
Date |
Country |
0 672 819 |
Sep 1995 |
EP |
2 281 424 |
Apr 1988 |
GB |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/042783 |
Apr 1997 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09/056053 |
Apr 1998 |
US |
Child |
10/079069 |
|
US |