Claims
- 1. A method of passing fluid into or from a subterranean formation of interest wherein a casing is provided within a wellbore within the formation, an outer surface of the casing being exposed to fluids within the formation, and the casing preventing the wellbore from caving in, the method comprising:
- providing a flow port through the casing;
- providing an axially slidable sleeve for normally covering the port to seal the interior of the casing from the formation and for uncovering the port for establishing fluid communication between the formation and the interior of the casing;
- lowering a test tool assembly within the casing to a location adjacent the sliding sleeve, the test tool assembly including an actuating tool with an axially movable member for engaging the sliding sleeve;
- securing the test tool assembly to the casing;
- interconnecting the movable member of the actuating tool and the sliding sleeve;
- sealing the interior of the casing below the sliding sleeve;
- axially moving the movable member to move the sliding sleeve to an uncovered position and permit a fluid sample to pass through the uncovered port and into a test chamber, and
- returning the sliding sleeve to a covered position;
- disconnecting the movable member and the sliding sleeve;
- disengaging the test tool assembly and the casing; and
- retrieving the test tool assembly and the fluid sample in the test chamber to the surface.
- 2. The method as defined in claim 1, further comprising:
- extending a coiled tubing from the test tool assembly to the surface; and
- transmitting fluid pressure through the coiled tubing for selectively moving the movable member.
- 3. The method as defined in claim 1, wherein the step of lowering the test tool assembly includes suspending the test tool assembly within the casing from a wireline.
- 4. The method as defined in claim 1, further comprising: providing the test chamber within the test tool for receiving fluid; and collecting fluid in the test chamber prior to retrieving the test tool assembly to the surface.
- 5. The method as defined in claim 1, further comprising:
- extending a wireline from the surface to the test tool assembly;
- providing a downhole electric motor powered through the wireline;
- providing a downhole pump powered by the electric motor for generating hydraulic pressure;
- activating one or more of a plurality of control valves for applying the generated hydraulic pressure to move the sliding sleeve to the uncovered position; and
- actuating one or more of the plurality of control valves for applying the generated hydraulic pressure to return the sliding sleeve to the covered position.
- 6. The method as defined in claim 1, further comprising:
- providing a radially movable first dog for securing the test tool assembly to the casing, and a radially movable second dog for interconnecting the movable member to the sliding sleeve;
- providing a first slot in the casing;
- providing a second slot in the sliding sleeve;
- the step of securing the test tool assembly includes applying hydraulic pressure to radially move the first dog into locking engagement with the first slot in the casings; and
- the step of interconnecting the axially movable member and the sliding sleeve includes applying hydraulic pressure to radially move the second dog into secured engagement with the second slot in the sliding sleeve.
- 7. The method as defined in claim 6, further comprising:
- forming the second slot in the sliding sleeve for receiving the second dog and for rejecting the first dog.
- 8. The method as defined in claim 1, further comprising:
- providing a seal for sealing engagement between the sliding sleeve and the casing when the sliding sleeve is in its covered position; and
- testing the integrity of the seal between the sliding sleeve and the casing prior to moving the sliding sleeve to its uncovered position.
- 9. The method as defined in claim 8, further comprising:
- testing the integrity of the seal between the sliding sleeve and the casing subsequent to returning the sliding sleeve to its covered position and prior to disengaging the test tool assembly and the casing.
- 10. A method of passing fluid into or from subterranean formations of interest wherein a casing is provided within a wellbore with the formations of interest, the method comprising:
- a) providing a plurality of flow ports through the casing each at a selected depth;
- b) providing a plurality of axially slidable sleeves each for selectively covering a corresponding port to seal the interior of the casing from a formation and uncovering the port for establishing fluid communication between the formation and the interior of the casing;
- c) providing a test tool assembly including an actuating tool including an axially movable member for selectively operating each of the plurality of sliding sleeves;
- d) lowering the test tool assembly into the casing to a location adjacent a selected sliding sleeve;
- e) interconnecting the movable member of the actuating tool and the selected sliding sleeve;
- f) sealing the interior of the casing below the sliding sleeve;
- g) supplying hydraulic pressure to axially move the sliding sleeve to an uncovered position and permit fluid to pass through the uncovered port;
- h) thereafter supplying fluid pressure to return the sliding sleeve to the covered position;
- i) disconnecting the movable member and the sliding sleeve;
- j) unsealing the interior of the casing;
- k) axially moving the test tool assembly to a location adjacent another sliding sleeve and repeating steps e) through j) above; and
- l) retrieving the test tool assembly to the surface.
- 11. The method as defined in claim 10, further comprising:
- providing a radially movable first dog for securing the test tool assembly to the casing, and a radially movable second dog for interconnecting the movable member to the sliding sleeve;
- providing a first slot in the casing;
- providing a second slot in the sliding sleeve;
- applying hydraulic pressure to radially move the first dog into locking engagement with the first slot in the casing; and
- the step of interconnecting the movable member and the sliding sleeve includes applying hydraulic pressure to radially move the second dog into secured engagement with the second slot in the sliding sleeve.
- 12. The method as defined in claim 11, further comprising:
- forming the second slot in the sliding sleeve for receiving the second dog and for rejecting the first dog.
- 13. The method as defined in claim 10, further comprising:
- the step of lowering the test tool assembly including extending coiled tubing from the test tool assembly to the surface; and
- the step of supplying hydraulic pressure including transmitting fluid pressure through the coiled tubing for selectively moving the movable member.
- 14. The method as defined in claim 10, further comprising:
- providing a seal for sealing engagement between the sliding sleeve and the casing when the sliding sleeve is in its covered position; and
- testing the integrity of the seal between the sliding sleeve and the casing prior to moving the sliding sleeve to its uncovered position.
- 15. A downhole actuating tool for passing fluid into or form a subterranean formation of interest wherein a casing is permanently positioned within a well bore within the formation and prevents the wellbore from caving in, a flow port is provided through the casing, and a sliding sleeve covers the flow port to seal the interior of the casing from the formation, the actuating tool comprising:
- a tool body, a first dog movable radially outward with respect to the tool body for securing the actuating tool to the casing, a member axially movable with respect to the tool body, a second dog for interconnecting the axially movable member and the sliding sleeve to axially move the sliding sleeve in response to fluid pressure applied to the axially movable member, a first flow path within the actuating tool for applying fluid pressure to axially move the movable member and the sliding sleeve in a first direction to uncover the port, and a second flow path within the actuating tool for applying fluid pressure to axially move the movable member and the sliding sleeve in opposing second direction to cover the port.
- 16. The activating tool as defined in claim 15, further comprising:
- biasing means for biasing each of the first dog and second dog radially inward.
- 17. The activating tool as defined in claim 15, wherein:
- the casing is provided with a first locking slot having a predetermined profile;
- the sliding sleeve is provided with a second locking slot having a predetermined profile;
- the first dog has a radially outward profile for locking engagement with the first slot and for preventing locking engagement with the second slot; and
- the second dog has a radially outward profile for locking engagement with the second slot.
- 18. The activating tool as defined in claim 15, further comprising: a sealing member for maintaining sealing engagement between the sliding sleeve and the casing when the sliding sleeve is in its covered position; and
- a flow path within the actuating tool for subjecting the interior of the casing adjacent the sliding sleeve to a differential pressure generated by a pump for testing the integrity of the sealing member.
- 19. A method of passing fluid into or from a subterranean formation of interest wherein a casing is provided within a wellbore within the formation, the method comprising:
- providing a flow port through the casing;
- providing an axially slidable sleeve for selectively covering the port to seal the interior of the casing from the formation and for uncovering the port for establishing fluid communication between the formation and the interior of the casing;
- lowering a test tool assembly within the casing from coiled tubing extending from the surface to a location within the wellbore adjacent the sliding sleeve, the test tool assembly including an actuating tool with an axially movable member for engaging the sliding sleeve;
- securing the test tool assembly to the casing;
- interconnecting the movable member of the actuating tool and the sliding sleeve;
- sealing the interior of the casing below the sliding sleeve;
- transmitting fluid pressure through the coiled tubing for selectively moving the movable member and thereby the sliding sleeve to an uncovered position and permit a fluid sample to pass through the uncovered port and into a test chamber;
- returning the sliding sleeve to a covered position;
- disconnecting the movable member and the sliding sleeve;
- disengaging the test tool assembly and the casing; and
- retrieving the test tool assembly and the fluid sample in the test chamber to the surface.
- 20. The method as defined in claim 19, further comprising:
- providing the test chamber within the test tool for receiving fluid; and
- collecting fluid in the test chamber prior to retrieving the test tool assembly to the surface.
- 21. The method as defined in claim 19, further comprising:
- providing a radially movable first dog for securing the test tool assembly to the casing, and a radially movable second dog for interconnecting the movable member to the sliding sleeve;
- providing a first slot in the casing;
- providing a second slot in the sliding sleeve;
- the step of securing the test tool assembly including applying hydraulic pressure to radially move the first dog into locking engagement with the first slot in the casings; and
- the step of interconnecting the axially movable member and the sliding sleeve including applying hydraulic pressure to radially move the second dog into secured engagement with the second slot in the sliding sleeve.
- 22. The method as defined in claim 19, further comprising:
- providing a seal for sealing engagement between the sliding sleeve and the casing when the sliding sleeve is in its covered position; and
- testing the integrity of the seal between the sliding sleeve and the casing prior to moving the sliding sleeve to its uncovered position.
- 23. The method as defined in claim 22, further comprising:
- testing the integrity of the seal between the sliding sleeve and the casing subsequent to returning the sliding sleeve to its covered position and prior to disengaging the test tool assembly and the casing.
- 24. A method of passing fluid into or from a subterranean formation of interest wherein a casing is provided within a wellbore within the formation, the method comprising:
- providing a flow port through the casing;
- providing an axially slidable sleeve for selectively covering the port to seal the interior of the casing from the formation and for uncovering the port for establishing fluid communication between the formation and the interior of the casing;
- lowering a test tool assembly within the casing from a wireline extending to the surface to a location within the wellbore adjacent the sliding sleeve, the test tool assembly including an actuating tool with an axially movable member for engaging the sliding sleeve;
- providing a downhole motor powered through the wireline;
- providing a downhole pump powered by the motor for generating hydraulic pressure;
- securing the test tool assembly to the casing;
- interconnecting the movable member of the actuating tool and the sliding sleeve;
- sealing the interior of the casing below the sliding sleeve;
- activating one or more of a plurality of control valves for applying the generated hydraulic pressure to move the sliding sleeve to an uncovered position and thereby permitting a fluid sample to pass through the uncovered port and into a test chamber;
- actuating one or more of the plurality of control valves for applying the generated hydraulic pressure to return the sliding sleeve to the covered position;
- disconnecting the movable member and the sliding sleeve;
- disengaging the test tool assembly and the casing; and
- retrieving the test tool assembly and the fluid sample in the test chamber to the surface.
- 25. The method as defined in claim 24, further comprising:
- providing the test chamber within the test tool for receiving fluid; and
- collecting fluid in the test chamber prior to retrieving the test tool assembly to the surface.
- 26. The method as defined in claim 24, further comprising:
- providing a radially movable first dog for securing the test tool assembly to the casing, and a radially movable second dog for interconnecting the movable member to the sliding sleeve;
- providing a first slot in the casing;
- providing a second slot in the sliding sleeve;
- the step of securing the test tool assembly including applying hydraulic pressure to radially move the first dog into locking engagement with the first slot in the casings; and
- the step of interconnecting the axially movable member and the sliding sleeve including applying hydraulic pressure to radially move the second dog into secured engagement with the second slot in the sliding sleeve.
- 27. The method as defined in claim 24, further comprising:
- providing a seal for sealing engagement between the sliding sleeve and the casing when the sliding sleeve is in its covered position; and
- testing the integrity of the seal between the sliding sleeve and the casing prior to moving the sliding sleeve to its uncovered position.
- 28. The method as defined in claim 27, further comprising:
- testing the integrity of the seal between the sliding sleeve and the casing subsequent to returning the sliding sleeve to its covered position and prior to disengaging the test tool assembly and the casing.
Parent Case Info
This is a continuation of application Ser. No. 07/748,671, filed Aug. 22, 1992, now U.S. Pat. No. 5,137,086.
US Referenced Citations (13)
Foreign Referenced Citations (1)
Number |
Date |
Country |
891900 |
Dec 1981 |
SUX |
Continuations (1)
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Number |
Date |
Country |
Parent |
748671 |
Aug 1992 |
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