Claims
- 1. A hydraulic strain sensor for use with a downhole tool in a wellbore, comprising:a housing having two chambers with a fluid pressure differential between the two chambers; a mandrel disposed in the housing and adapted to be coupled to the tool such that the weight of the tool is supported by the pressure differential between the two chambers; and a pressure-responsive sensor in fluid communication with one of the chambers, the pressure-responsive sensor being arranged to sense pressure changes in, the one of the chambers as the tool is accelerated or decelerated and to generate signals representative of the pressure changes.
- 2. The hydraulic strain sensor of claim 1, wherein the pressure-responsive sensor further senses pressure changes in the one of the chambers when there is a change in external force applied to the tool.
- 3. A hydraulic strain sensor for use with a downhole tool, comprising:a housing having an end adapted to be coupled to a conveyance device so as to be lowered into a wellbore on the conveyance device, the housing having a first chamber and a second chamber defined therein, the first chamber being exposed to fluid pressure outside the first housing through a port in the housing; a mandrel slidably disposed in the housing, the mandrel having a piston portion with one side exposed to fluid pressure in the first chamber and another side exposed to fluid pressure in the second chamber; means for generating pressure signals in response to pressure changes in the second chamber as the tool is accelerated or decelerated; and a fluid path filled with pressure-transmitting medium and arranged to transmit pressure changes in the second chamber to the means for generating pressure signals.
- 4. A hydraulic strain sensor for use with a downhole tool, comprising:a first housing having an end adapted to be coupled to a conveyance device so as to be lowered into a wellbore on the conveyance device, the first housing having a first chamber and a second chamber defined therein, the first chamber being exposed to fluid pressure outside the first housing through a port in the housing; a mandrel slidably disposed in the first housing, the mandrel having a piston portion with one side exposed to fluid pressure in the first chamber and another side exposed to fluid pressure in the second chamber; a second housing coupled to the mandrel and having a pressure-responsive sensor disposed therein, the second housing being adapted to be coupled to the tool such that the weight of the tool is supported by fluid pressure differential across the piston portion; and a fluid path extending from the second chamber to the pressure-responsive sensor, the fluid path being filled with a pressure-transmitting medium and arranged to transmit pressure changes from the second chamber to the pressure-responsive sensor as the tool is accelerated or decelerated; wherein the pressure-responsive sensor generates signals representative of the pressure changes in the second chamber and transmits the signals to the tool.
- 5. The hydraulic strain sensor of claim 4, wherein the fluid path extends through the mandrel and the piston portion includes a port for selective fluid communication between the first chamber and the fluid path.
- 6. The hydraulic strain sensor of claim 5, wherein a plug is provided to prevent fluid communication between the first chamber and the fluid path.
- 7. The hydraulic strain sensor of claim 6, wherein the plug includes a pressure-responsive member which allows fluid communication between the first chamber and the fluid path when the pressure in the first chamber reaches a predetermined value.
- 8. The hydraulic strain sensor of claim 7, wherein the predetermined value is the maximum operating pressure of the pressure-responsive sensor.
- 9. The hydraulic strain sensor of claim 7, wherein a connecting body couples the mandrel to the sensor housing and the fluid path extends through the connecting body.
- 10. The hydraulic strain sensor of claim 9, wherein the connecting body includes a port for selective fluid communication with the fluid path.
- 11. The hydraulic strain sensor of claim 10, wherein the sensor housing includes an electrical connector which is adapted to be connected to the tool and through which signals are transmitted from the pressure-responsive sensor to the tool.
- 12. A downhole actuating and operating apparatus for use in a wellbore, comprising:a housing adapted to be lowered into the wellbore, the housing having a first chamber and a second chamber, the first chamber being exposed to pressure outside the housing through a port in the housing, the second chamber being filled with a pressure-transmitting medium; a mandrel slidably disposed in the housing, the mandrel having a piston portion with one side exposed to fluid pressure in the first chamber and another side exposed to fluid pressure in the second chamber thereby creating a fluid pressure differential across the piston portion; a downhole tool coupled to the mandrel so as to be supported by the fluid pressure differential across the piston portion; and a pressure-responsive sensor in fluid communication with the second chamber, the pressure-responsive sensor being responsive to pressure changes in the second chamber as the downhole tool is accelerated or decelerated and generating signals representative of the pressure changes; wherein the tool performs a downhole operation in response to the signals generated by the pressure-responsive sensor.
- 13. The apparatus of claim 12, wherein the pressure-responsive sensor further senses pressure changes in the second chamber when there is a change in external force applied to the tool.
- 14. The apparatus of claim 13, wherein the change in external force applied to the tool is generated by pulling on and releasing the tool.
- 15. A method of generating pressure signals for operating a downhole tool, comprising:providing a hydraulic strain sensor having a housing with two champs, a mandrel disposed in the housing, and a fluid pressure-responsive sensor in communication with one of the chambers; providing a fluid pressure differential between the two chambers; coupling the tool to the mandrel such that the weight of the tool is supported by the pressure differential between the two chambers; lowering the hydraulic strain sensor and the tool downhole on a conveyance device; manipulating the conveyance device to accelerate or decelerate the tool; detecting fluid pressure changes in the one of the chambers using the pressure-responsive sensor; and transmitting signals representative of pressure changes in the one of the chambers to the tool.
- 16. A downhole assembly for use in a wellbore, comprising:a housing having a chamber with a fluid disposed therein; the housing adapted to be coupled to a downhole tool such that the weight of the tool is supported by the fluid in the chamber; and a pressure-responsive sensor in fluid communication with the fluid, the pressure-responsive sensor being arranged to senses pressure changes in the fluid when there is a change in external force applied to the housing, wherein the housing is deployed in the wellbore on a conveyance device, the change in external force is generated by manipulating the conveyance device, the conveyance device is a slickline, and the change in external force is generated by pulling on and/or releasing the slickline.
- 17. The assembly of claim 16, wherein the operation of the tool is enabled after receipt by the pressure-responsive sensor of a predetermined pattern of pressure changes.
- 18. The assembly of claim 16, further comprising:the pressure-responsive sensor being arranged to generate signals representative of the pressure changes; an electronics cartridge receiving the signals generated by the pressure-responsive sensor; and the electronics cartridge operating the tool upon receipt of a pre-determined signal pattern from the pressure-responsive sensor.
- 19. The assembly of claim 16, wherein:the housing is deployed in the wellbore on a conveyance device; and the change in external force is generated by manipulating the conveyance device.
- 20. The assembly of claim 16, further comprising:a mandrel slidably disposed in the housing; and the mandrel adapted to be coupled to the tool such that the weight of the tool is supported by the fluid in the chamber.
- 21. A method of generating signals for operating a downhole tool in a wellbore, comprising:providing a housing having a chamber and a fluid pressure-responsive sensor in communication with the chamber; providing a fluid within the chamber; coupling the tool to the housing such that the weight of the tool is supported by the fluid in the chamber; changing an external force applied to the housing to create fluid pressure changes in the chamber; detecting the fluid pressure changes in the chamber using the pressure-responsive sensor; and deploying the hydraulic strain sensor and the tool on a conveyance device, wherein the changing an external force step comprises manipulating the conveyance device, the conveyance device comprises a slickline, and the manipulating step comprises pulling on and/or releasing the slickline.
- 22. The method of claim 21, further comprising operating the tool after the pressure-responsive sensor detects a pre-determined pattern of pressure changes.
- 23. The method of claim 21, further comprising:transmitting signals representative of the pressure changes in the chamber to an electronics cartridge; and operating the tool upon receipt of a pre-determined signal pattern from the pressure-responsive sensor.
- 24. The method of claim 21, further comprising:deploying the sensor and the tool on a conveyance device; and the changing an external force step comprises manipulating the conveyance device.
- 25. A downhole assembly for use in a wellbore, comprising:a housing having a chamber with a fluid disposed therein; a mandrel slidably disposed in the housing and adapted to be coupled to a downhole tool such that the mandrel may slide when there is a change in external force applied to the housing thereby changing the pressure in the chamber; and a pressure-responsive sensor in fluid communication with the chamber, the pressure-responsive sensor being arranged to senses pressure changes in the fluid when there is a change in external force applied to the housing, wherein the housing deployed in the wellbore on a conveyance device, the change in external force is generated by manipulating the conveyance device, the conveyance device is a slickline, and the change in external force is generated by pulling on and/or releasing the slickline.
- 26. The assembly of claim 25, wherein the operation of the tool is enabled after receipt by the pressure-responsive sensor of a pre-determined pattern of pressure changes.
- 27. The assembly of claim 25, further comprising:the pressure-responsive sensor being arranged to generate signals representative of the pressure changes; an electronics cartridge receiving the signals generated by the pressure-responsive sensor; and the electronics cartridge operating the tool upon receipt of a pre-determined signal pattern from the pressure-responsive sensor.
- 28. The assembly of claim 25, wherein:the housing is deployed in the wellbore on a conveyance device; and the change in external force is generated by manipulating the conveyance device.
- 29. A method of generating signals for operating a downhole tool, comprising:providing a housing with a chamber; providing a fluid within the chamber; changing an external force applied to the housing; providing a mandrel slidably disposed in the housing and adapted to be coupled to a downhole tool such that the mandrel may slide when there is a change in external force applied to the housing thereby changing the pressure in the chamber; providing a fluid pressure-responsive sensor in communication with the fluid in the chamber; detecting a fluid pressure changes in the fluid using the pressure-responsive sensor; and deploying the hydraulic strain sensor and the tool on a conveyance device, wherein the changing an external force step comprises manipulating the conveyance device, the conveyance device comprises a slickline, and the manipulating step comprises pulling on and/or releasing the slickline.
- 30. The method of claim 29, further comprising operating the tool after the pressure-responsive sensor detects a pre-determined pattern of pressure changes.
- 31. The method of claim 29, further comprising:transmitting signals representative of the pressure changes in the chamber to an electronics cartridge; and operating the tool upon receipt of a pre-determined signal pattern from the pressure-responsive sensor.
- 32. The method of claim 29, further comprising:deploying the sensor and the tool on a conveyance device; and the changing an external force step comprises manipulating the conveyance device.
- 33. An assembly for use in a wellbore, comprising:a strain sensor connected to a downhole tool; the strain sensor adapted to detect a pressure change in a fluid inside the sensor to sense when there is a change in external force applied to the assembly; and the strain sensor adapted to enable the operation of the downhole tool upon sensing a pre-determined pattern of changes in external force applied to the assembly, wherein the hydraulic strain sensor is adapted to be coupled to a conveyance device so as to be lowered into the wellbore, the changes in external force are generated by manipulating the conveyance device, and the conveyance device comprises a slickline.
- 34. The assembly of claim 33, wherein:the strain sensor includes a chamber with the fluid disposed therein; the strain sensor is adapted to sense pressure changes in the fluid caused by changes in external force applied to the assembly; and the strain sensor is adapted to enable the operation of the tool upon sensing a pre-determined pattern of pressure changes in the fluid.
- 35. The assembly of claim 33, wherein:the strain sensor is adapted to be coupled to a conveyance device so as to be lowered into the wellbore; and the changes in external force are generated by manipulating the conveyance device.
- 36. The assembly of claim 33, wherein:the hydraulic strain sensor is adapted to convert the pattern of changes in external force applied to the assembly into electrical signals; and the operation of the downhole tool is enabled after the conversion of a pre-determined signal pattern.
- 37. A method of generating signals for operating a downhole tool, comprising:providing a strain sensor connected to a downhole tool; changing an external force applied to the strain sensor to change a pressure of fluid inside the sensor; operating the tool upon sensing a pre-determined pattern of the at least one external force applied to the strain sensor; and lowering the hydraulic strain sensor and downhole tool on a conveyance device, wherein the changing an external force step comprises manipulating the conveyance device, and the conveyance device comprises a slickline.
- 38. The method of claim 37, wherein:the strain sensor includes a chamber with the fluid disposed therein; the sensing step comprises sensing pressure changes in the fluid caused by changes in external force applied to the strain sensor; and the operating step comprises operating the tool upon sensing a pre-determined pattern of pressure changes in the fluid.
- 39. The method of claim 37, wherein:lowering the strain sensor and downhole tool on a conveyance device; and the changing an external force step comprises manipulating the conveyance device.
- 40. The method of claim 39, wherein the manipulating step comprises pulling on and/or releasing the slickline.
- 41. The method of claim 37, wherein the operating step comprises:converting the pattern of changes in external force applied to the hydraulic strain sensor into electrical signals; and operating the tool upon conversion of a predetermined signal pattern.
Parent Case Info
This application is a continuation and claims the benefit under 35 U.S.C. §120 to U.S. patent application Ser. No. 09/267,498 filed by Sweetland et al. on Mar. 12, 1999, which patent application became abandoned on Oct. 27, 2000.
US Referenced Citations (30)
Non-Patent Literature Citations (1)
Entry |
Model Slickline Initiation Device; Petroleum Engineering Services Limited; Oct. 4, 1995; pp. 1-11. |
Continuations (1)
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Number |
Date |
Country |
Parent |
09/267498 |
Mar 1999 |
US |
Child |
09/663372 |
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US |