Claims
- 1. A fluid flow control device for use in a wellbore to control the inflow of production fluids comprising:
a tubular member having at least one fluid passageway in a sidewall section thereof; a sand control screen positioned exteriorly around the tubular member, the sand control screen having a filter medium section defining a first annular region with the tubular member and a housing section defining a second annular region with the tubular member adjacent to the fluid passageway; a sealing member positioned within the second annular region, the sealing member having a first position wherein fluid flow is permitted through the fluid passageway and a second position wherein fluid flow is prevented through the fluid passageway; and a pressure source that is selectively in fluid communication with the sealing member to operate the sealing member from the first position to the second position.
- 2. The fluid flow control device as recited in claim 1 wherein the sealing member further comprises a sliding sleeve.
- 3. The fluid flow control device as recited in claim 1 wherein the sealing member further comprises an expandable bladder.
- 4. The fluid flow control device as recited in claim 1 further comprising a cylinder positioned within the second annular region, the cylinder and the housing section forming first and second chambers therebetween, the first and second chambers having a piston therebetween, the first chamber selectively being in fluid communication with the pressure source and the second chamber being in fluid communication with an expandable bladder sealing member.
- 5. The fluid flow control device as recited in claim 1 further comprising a piston positioned within the second annular region, the piston, the tubular member and the housing section forming a first chamber therebetween that is selectively in fluid communication with the pressure source and the piston and the housing section forming a second chamber that is in fluid isolation from the pressure source.
- 6. The fluid flow control device as recited in claim 1 wherein the pressure source further comprises a hydraulic control line extending from a surface location to the sand control screen, the hydraulic control line having a first section with a terminus that is selectively in fluid communication with the sealing member, the hydraulic control line having a second section that passes through the first annular region and extends downhole of the sand control screen.
- 7. The fluid flow control device as recited in claim 1 wherein the pressure source further comprises a wellbore pressure source.
- 8. The fluid flow control device as recited in claim 1 further comprising a valve positioned within a fluid communication path between the pressure source and the sealing member to selectively prevent and permit fluid communication between the pressure source and the sealing member.
- 9. The fluid flow control device as recited in claim 8 wherein the valve is a eutectic valve.
- 10. The fluid flow control device as recited in claim 8 wherein the valve is a rupture disk.
- 11. The fluid flow control device as recited in claim 1 further comprising a sensor positioned on the fluid flow control device to sense at least one downhole parameter selected from the group comprising temperature, pressure and fluid composition.
- 12. The fluid flow control device as recited in claim 1 further comprising an energy conductor extending from a surface location to the sand control screen, the energy conductor passing through the first annular region and extending downhole of the sand control screen.
- 13. The fluid flow control device as recited in claim 11 wherein the energy conductor further comprising an electrical conductor.
- 14. The fluid flow control device as recited in claim 11 wherein the energy conductor further comprising a fiber optic conductor.
- 15. The fluid flow control device as recited in claim 14 wherein the fiber optic conductor provides information relating to at least one downhole parameter selected from the group comprising temperature and pressure to the surface location from a location proximate the sand control screen.
- 16. A method for controlling production fluid flow through multiple sand control screens in a sand control screen assembly positioned within a wellbore, the method comprising the steps of:
coupling a hydraulic fluid conduit to the multiple sand control screens in the sand control screen assembly; increasing the pressure within the hydraulic fluid conduit to a first predetermined level to prevent production fluid flow through a first sand control screen; and increasing the pressure within the hydraulic fluid conduit to a second predetermined level that is greater than the first predetermined level to prevent production fluid flow through a second sand control screen.
- 17. The method as recited in claim 16 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises bursting a rupture disk operably associated with one of the first and the second sand control screens.
- 18. The method as recited in claim 16 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises sliding a sleeve operably associated with one of the first and the second sand control screens.
- 19. The method as recited in claim 16 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises expanding a bladder operably associated with one of the first and the second sand control screens.
- 20. The method as recited in claim 16 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises shifting a piston between first and second chambers and expanding a bladder operably associated with one of the first and the second sand control screens.
- 21. The method as recited in claim 16 wherein the first sand control screen is uphole of the second sand control screen.
- 22. The method as recited in claim 16 wherein the first sand control screen is downhole of the second sand control screen.
- 23. A method for controlling production fluid flow through multiple flow control devices positioned within a wellbore, the method comprising the steps of:
coupling a hydraulic fluid conduit to the multiple flow control devices; increasing the pressure within the hydraulic fluid conduit to a first predetermined level to prevent production fluid flow through a first flow control device; and increasing the pressure within the hydraulic fluid conduit to a second predetermined level that is greater than the first predetermined level to prevent production fluid flow through a second flow control device.
- 24. The method as recited in claim 23 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises bursting a rupture disk operably associated with one of the first and the second flow control devices.
- 25. The method as recited in claim 23 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises sliding a sleeve operably associated with one of the first and the second flow control devices.
- 26. The method as recited in claim 23 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises expanding a bladder operably associated with one of the first and the second flow control devices.
- 27. The method as recited in claim 23 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises shifting a piston between first and second chambers and expanding a bladder operably associated with one of the first and the second flow control devices.
- 28. The method as recited in claim 23 wherein the first flow control device is uphole of the second flow control device.
- 29. The method as recited in claim 23 wherein the first flow control device is downhole of the second flow control device.
- 30. The method as recited in claim 23 wherein the first and second flow control devices further comprise sand control screens.
- 31. A system for controlling production fluid flow in a wellbore comprising:
first and second sand control screens in a sand control screen assembly positioned within the wellbore; and a hydraulic fluid conduit coupled to the first and second sand control screens such that increasing the pressure within the hydraulic fluid conduit to a first predetermined level prevents production fluid flow through the first sand control screen and increasing the pressure within the hydraulic fluid conduit to a second predetermined level that is greater than the first predetermined level prevents production fluid flow through the second sand control screen.
- 32. The system as recited in claim 31 wherein the first sand control screen has a rupture disk operably associated therewith that bursts at a pressure less than the first predetermined level and the second sand control screen has a rupture disk operably associated therewith that bursts at a pressure between the first predetermined level the second predetermined level.
- 33. The system as recited in claim 31 wherein the first and the second sand control screens each further comprises a sliding sleeve operably associated therewith.
- 34. The system as recited in claim 31 wherein the first and the second sand control screens each further comprises an expandable bladder operably associated therewith.
- 35. The system as recited in claim 31 wherein the first sand control screen is uphole of the second sand control screen.
- 36. The system as recited in claim 31 wherein the first sand control screen is downhole of the second sand control screen.
- 37. A system for controlling production fluid flow in a wellbore comprising:
first and second flow control devices positioned within the wellbore; and a hydraulic fluid conduit coupled to the first and second flow control devices such that increasing the pressure within the hydraulic fluid conduit to a first predetermined level prevents production fluid flow through the first flow control device and increasing the pressure within the hydraulic fluid conduit to a second predetermined level that is greater than the first predetermined level prevents production fluid flow through the second flow control device.
- 38. The system as recited in claim 37 wherein the first flow control device has a rupture disk operably associated therewith that bursts at a pressure less than the first predetermined level and the second flow control device has a rupture disk operably associated therewith that bursts at a pressure between the first predetermined level and the second predetermined level.
- 39. The system as recited in claim 37 wherein the first and the second flow control devices each further comprises a sliding sleeve operably associated therewith.
- 40. The system as recited in claim 37 wherein the first and the second flow control devices each further comprises an expandable bladder operably associated therewith.
- 41. The system as recited in claim 37 wherein the first flow control device is uphole of the second flow control device.
- 42. The system as recited in claim 37 wherein the first flow control device is downhole of the second flow control device.
- 43. A method for controlling production fluid flow through multiple sand control screens in a sand control screen assembly positioned within a wellbore, the method comprising the steps of:
coupling a hydraulic fluid conduit to the multiple sand control screens in the sand control screen assembly; coupling an energy conductor to the multiple sand control screens in the sand control screen assembly; signaling a valve operably associated with a first sand control screen to actuate to an open position via the energy conductor; communicating hydraulic pressure from the hydraulic fluid conduit to the first sand control screen to prevent production fluid flow therethrough; signaling a valve operably associated with a second sand control screen to actuate to an open position via the energy conductor; and communicating hydraulic pressure from the hydraulic fluid conduit to the second sand control screen to prevent production fluid flow therethrough.
- 44. The method as recited in claim 43 wherein each of the steps of communicating hydraulic pressure from the hydraulic fluid conduit further comprises sliding a sleeve operably associated with one of the first and the second sand control screens.
- 45. The method as recited in claim 43 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises expanding a bladder operably associated with one of the first and the second sand control screens.
- 46. The method as recited in claim 43 wherein each of the steps of signaling a valve further comprises electrically signaling.
- 47. The method as recited in claim 43 wherein each of the steps of signaling a valve further comprises optically signaling.
- 48. The method as recited in claim 43 further comprising the step of sensing at least one downhole parameter proximate the first sand control screen prior to signaling the valve operably associated with the first sand control screen.
- 49. The method as recited in claim 48 further comprising the step of sensing at least one downhole parameter proximate the second sand control screen prior to signaling the valve operably associated with the second sand control screen.
- 50. A method for controlling production fluid flow through multiple flow control devices positioned within a wellbore, the method comprising the steps of:
coupling a hydraulic fluid conduit to the multiple flow control devices; coupling an energy conductor to the multiple flow control devices; signaling a valve operably associated with a first flow control device to actuate to an open position via the energy conductor; communicating hydraulic pressure from the hydraulic fluid conduit to the first flow control device to prevent production fluid flow therethrough; signaling a valve operably associated with a second flow control device to actuate to an open position via the energy conductor; and communicating hydraulic pressure from the hydraulic fluid conduit to the second flow control device to prevent production fluid flow therethrough.
- 51. The method as recited in claim 50 wherein each of the steps of communicating hydraulic pressure from the hydraulic fluid conduit further comprises sliding a sleeve operably associated with one of the first and the second flow control devices.
- 52. The method as recited in claim 50 wherein each of the steps of increasing the pressure within the hydraulic fluid conduit further comprises expanding a bladder operably associated with one of the first and the second flow control devices.
- 53. The method as recited in claim 50 wherein each of the steps of signaling a valve further comprises electrically signaling.
- 54. The method as recited in claim 50 wherein each of the steps of signaling a valve further comprises optically signaling.
- 55. The method as recited in claim 50 further comprising the step of sensing at least one downhole parameter proximate the first flow control device prior to signaling the valve operably associated with the first flow control device.
- 56. The method as recited in claim 55 further comprising the step of sensing at least one downhole parameter proximate the second flow control device prior to signaling the valve operably associated with the second flow control device.
- 57. A system for controlling production fluid flow in a wellbore comprising:
first and second sand control screens in a sand control screen assembly positioned within the wellbore; a hydraulic fluid conduit coupled to the first and second sand control screens; and an energy conductor coupled to the first and second sand control screens, the energy conductor providing a signal to open a valve operably associated with the first sand control screen such that hydraulic pressure is communicated from the hydraulic fluid conduit to the first sand control screen to prevent production fluid flow therethrough and the energy conductor providing a signal to open a valve operably associated with the second sand control screen such that hydraulic pressure is communicated from the hydraulic fluid conduit to the second sand control screen to prevent production fluid flow therethrough.
- 58. A system for controlling production fluid flow in a wellbore comprising:
first and second flow control devices positioned within the wellbore; a hydraulic fluid conduit coupled to the first and second flow control devices; and an energy conductor coupled to the first and second flow control devices, the energy conductor providing a signal to open a valve operably associated with the first flow control device such that hydraulic pressure is communicated from the hydraulic fluid conduit to the first flow control device to prevent production fluid flow therethrough and the energy conductor providing a signal to open a valve operably associated with the second flow control device such that hydraulic pressure is communicated from the hydraulic fluid conduit to the second flow control device to prevent production fluid flow therethrough.
- 59. A method for controlling the flow of production fluids through a fluid flow control device, the method comprising the steps of:
positioning the fluid flow control device downhole, the fluid flow control device including a tubular member having at least one fluid passageway in a sidewall section thereof and a sand control screen positioned exteriorly around the tubular member, the sand control screen having a filter medium section defining a first annular region with the tubular member and a housing section defining a second annular region with the tubular member adjacent to the fluid passageway; flowing fluid through the sand control screen and the fluid passageway; applying a pressure from a pressure source to a sealing member positioned within the second annular region; and operating the sealing member from a nonsealing position to a sealing position such that fluid flow through the fluid passageway is prevented.
- 60. The method as recited in claim 59 wherein the step of applying a pressure from a pressure source to a sealing member positioned within the second annular region further comprises applying the pressure to a sliding sleeve.
- 61. The method as recited in claim 59 wherein the step of applying a pressure from a pressure source to a sealing member positioned within the second annular region further comprises applying the pressure to an expandable bladder.
- 62. The method as recited in claim 59 wherein the step of applying a pressure from a pressure source to a sealing member positioned within the second annular region further comprises:
applying the pressure into a first chamber defined between a cylinder and the housing section; shifting a piston positioned within the cylinder and the housing section between the first chamber and a second chamber; and forcing fluid from the second chamber into an expandable bladder.
- 63. The method as recited in claim 59 wherein the step of applying a pressure from a pressure source to a sealing member positioned within the second annular region further comprises:
applying the pressure into a first chamber defined between a piston, the tubular member and the housing section; shifting the piston such that the volume of a second chamber defined between the piston and the housing section and that is in fluid isolation from the pressure source is reduced.
- 64. The method as recited in claim 59 wherein the step of applying a hydraulic pressure to a sealing member positioned within the second annular region further comprises applying a hydraulic pressure from a hydraulic control line extending from a surface location to the sand control screen and passing the hydraulic control line through the first annular region to extend the hydraulic control line downhole of the sand control screen.
- 65. The method as recited in claim 59 wherein the step of applying a hydraulic pressure to a sealing member positioned within the second annular region further comprises applying a hydraulic pressure from an annular region between the sand control screen and the wellbore.
- 66. The method as recited in claim 59 wherein the step of applying a hydraulic pressure to a sealing member positioned within the second annular region further comprises operating a valve positioned within a fluid communication path between the hydraulic pressure source and the sealing member to selectively permit fluid communication between the hydraulic pressure source and the sealing member.
- 67. The method as recited in claim 66 wherein the step of operating the valve further comprises melting a eutectic valve.
- 68. The method as recited in claim 59 further comprising the step of sensing at least one downhole parameter selected from the group comprising temperature, pressure and fluid composition with a sensor positioned on the fluid flow control device.
- 69. The method as recited in claim 59 further comprising the step of extending an energy conductor from a surface location to the sand control screen, passing the energy conductor through the first annular region and extending the energy conductor downhole of the sand control screen.
- 70. The method as recited in claim 69 further comprising the step of conducting electricity through the energy conductor.
- 71. The method as recited in claim 69 further comprising the step of conducting light energy through the energy conductor.
- 72. The method as recited in claim 69 further comprising the step of sending information relating to at least one downhole parameter selected from the group comprising temperature and pressure to the surface location from a location proximate the sand control screen via the energy conductor.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This is a continuation-in-part application of co-pending application Ser. No. 10/227,935, entitled Fluid Flow Control Device and Method for Use of Same, filed on Aug. 26, 2002.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10227935 |
Aug 2002 |
US |
Child |
10445818 |
May 2003 |
US |