Claims
- 1. A method of operating a downhole device in a petroleum well having a borehole and a piping structure positioned within the borehole, comprising the steps of:
delivering a time varying current along the piping structure to a downhole location; pressurizing a hydraulic fluid using the time varying current at the downhole location; and operating the downhole device using the pressurized hydraulic fluid.
- 2. The method according to claim 1, including the steps of:
operating a motor at the downhole location; and driving a pump with said motor to pressurize the hydraulic fluid.
- 3. The method according to claim I wherein the delivering step further comprising:
impeding the time-varying current on the piping structure to define a conductive section; and routing the time varying current along the conductive section of the piping structure.
- 4. The method according to claim 2 wherein the step of operating the downhole device further comprises the steps of:
providing an actuator operably connected to the downhole device and hydraulically connected to the pump; and selectively driving the actuator with the pressurized hydraulic fluid such that the downhole device is actuated.
- 5. The method according to claim 4 wherein the step of selectively driving further comprises
providing a pilot valve hydraulically connected between the pump and the actuator; and adjusting the pilot valve to selectively drive the actuator.
- 6. The method according to claim 1 further comprising the step of:
storing hydraulic fluid in a reservoir; and drawing hydraulic fluid from the reservoir.
- 7. The method according to claim 1 further comprising the steps of:
collecting pressurized hydraulic fluid in an accumulator; and selectively releasing pressurized hydraulic fluid from the accumulator to operate the downhole device.
- 8. The method according to claim 1 further comprising:
collecting pressurized hydraulic fluid in an accumulator; providing an actuator operably connected to the downhole device and hydraulically connected to the accumulator; and selectively releasing pressurized hydraulic fluid from the accumulator to drive the actuator, thereby operating the downhole device.
- 9. The method according to claim 8 wherein the step of selectively releasing further comprises:
providing a pilot valve hydraulically connected between the accumulator and the actuator; and adjusting the pilot valve to selectively drive the actuator.
- 10. The method according to claim 1 further comprising the steps of:
impeding the time varying current on the piping structure; routing the time varying current along the piping structure to the downhole location; providing an actuator operably connected to the downhole device and hydraulically connected to a pump; and selectively operating a pilot valve hydraulically connected between the pump and the actuator to drive the actuator, thereby operating the downhole device.
- 11. The method according to claim 10 wherein the downhole device is a main valve and the actuator opens and closes the main valve.
- 12. The method according to claim 1 further comprising the steps of:
impeding the time varying current on the piping structure; routing the time varying current along the piping structure; collecting pressurized hydraulic fluid in an accumulator; providing an actuator operably connected to the downhole device and hydraulically connected to the accumulator; and selectively operating a pilot valve hydraulically connected between the accumulator an, the actuator to drive the actuator, thereby operating the downhole device.
- 13. The method according to claim 12 wherein the downhole device is a main valve and the actuator opens and closes the main valve.
- 14. A petroleum well having a borehole and a piping structure positioned within the borehole comprising:
a communications system operably associated with the piping structure for transmitting a time varying signal along the piping structure; and a hydraulic system electrically connected to the piping structure and configured for connection to a downhole device, wherein the hydraulic system is configured to receive power from said time varying signal and to operate the downhole device
- 15. The petroleum well of claim 14 wherein the time varying signal includes a communications signal to selectively operate the downhole device.
- 16. The petroleum well of claim 14 wherein the communication system further comprises:
an impedance device positioned around the piping structure to define a conducting portion; and wherein the time varying current is passed along the conducting portion of the piping structure.
- 17. The petroleum well of claim 14 wherein the downhole device is a downhole emergency shutoff valve.
- 18. The petroleum well of claim 14 wherein the hydraulic system further comprises:
a motor for receiving the time varying current from the piping structure; a pump for selectively pressurizing a hydraulic fluid, the pump being operably connected to and driven by the motor; an actuator hydraulically connected to the pump and operably connected to the downhole device; and wherein the pressurized hydraulic fluid is used to drive the actuator, thereby operating the downhole device.
- 19. The petroleum well of claim 14 wherein the hydraulic system further comprises:
a motor for receiving the time varying current from the piping structure; a pump for selectively pressurizing a hydraulic fluid, the pump being operably connected to and driven by the motor; a pilot valve hydraulically connected to the pump; an actuator hydraulically connected to the pilot valve and operably connected to the downhole device; and wherein the pilot valve selectively routes pressurized hydraulic fluid to the actuator, thereby driving the actuator and operating the downhole device.
- 20. The petroleum well of claim 19, wherein the downhole device is a valve.
- 21. The petroleum well of claim 14 wherein the hydraulic system further comprises:
a motor for receiving the time varying current from the piping structure; a pump for selectively pressurizing a hydraulic fluid, the pump being operably connected to and driven by the motor; an accumulator hydraulically connected to the pump for collecting pressurized hydraulic fluid; an actuator hydraulically connected to the accumulator and operably connected to the downhole device; and wherein the pressurized hydraulic fluid supplied by the accumulator drives the actuator thereby operating the downhole device.
- 22. The petroleum well of claim 14 wherein the hydraulic system further comprises:
a motor for receiving the time varying current from the piping structure; a pump for selectively pressurizing a hydraulic fluid, the pump being operably connected to and driven by the motor; an accumulator hydraulically connected to the pump for collecting pressurized hydraulic fluid; a pilot valve hydraulically connected to the accumulator; an actuator hydraulically connected to the pilot valve and operably connected to the downhole device; and wherein the pilot valve selectively routes pressurized hydraulic fluid to the actuator, thereby driving the actuator and operating the downhole device.
- 23. A hydraulic actuation system comprising:
a motor configured to receive a time varying signal delivered along a piping structure; a pump for pressurizing a hydraulic fluid, the pump being operably connected to and being driven by the motor; and an actuator hydraulically connected to the pump and configured for operable attachment to a target device, wherein the actuator is selectively driven by the pressurized hydraulic fluid, thereby operating the target device.
- 24. The hydraulic actuation system according to claim 23, including:
an impedance device positioned around the piping structure to define a conducting portion; and wherein the time varying current is passed along the conducting portion of the piping structure.
- 25. The hydraulic actuation system according to claim 23, wherein the time varying signal includes a communications signal to selectively operate said target device
- 26. The hydraulic actuation system according to claim 23 further comprising:
a pilot valve hydraulically connected between the pump and the actuator; and wherein the pilot valve selectively routes pressurized hydraulic fluid to the actuator.
- 27. The hydraulic actuation system according to claim 23 further comprising an accumulator hydraulically connected to the pump for collecting pressurized hydraulic fluid.
- 28. The hydraulic actuation system according to claim 23 further comprising:
an accumulator hydraulically connected to the pump for collecting pressurized hydraulic fluid; and a pilot valve hydraulically connected between the accumulator and the actuator, wherein the pilot valve selectively routes pressurized hydraulic fluid to the actuator
- 29. The hydraulic actuation system according to claim 23 further comprising:
an accumulator hydraulically connected to the pump for collecting pressurized hydraulic fluid; a pilot valve hydraulically connected between the accumulator and the actuator, wherein the pilot valve selectively routes pressurized hydraulic fluid to the actuator; wherein an electrically insulating joint is positioned on the pipe member; wherein an induction choke is positioned around the pipe member; and wherein the time varying current is routed along the pipe member between the electrically insulating joint and the induction choke.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application claims the benefit of the following U.S. Provisional Applications, all of which are hereby incorporated by reference:
1COMMONLY OWNED AND PREVIOUSLY FILEDU.S. PROVISIONAL PATENT APPLICATIONST&K#Ser. No.TitleFiling DateTH 159960/177,999Toroidal Choke InductorJan. 24, 2000for Wireless Communicationand ControlTH 160060/178,000Ferromagnetic Choke inJan. 24, 2000WellheadTH 160260/178,001Controllable Gas-Lift WellJan. 24, 2000and ValveTH 160360/177,883Permanent, Downhole,Jan. 24, 2000Wireless, Two-WayTelemetry Backbone UsingRedundant Repeater, SpreadSpectrum ArraysTH 166860/177,998Petroleum Well HavingJan. 24, 2000Downhole Sensors,Communication, and PowerTH 166960/177,997System and Method for FluidJan. 24, 2000Flow OptimizationTS 618560/181,322A Method and Apparatus forFeb. 9, 2000the Optimal Predistortion ofan Electromagnetic Signal ina Downhole CommunicationsSystemTH 1599x60/186,376Toroidal Choke Inductor forMar. 2, 2000Wireless Communication andControlTH 1600x60/186,380Ferromagnetic Choke inMar. 2, 2000WellheadTH 160160/186,505Reservoir Production ControlMar. 2, 2000from Intelligent Well DataTH 167160/186,504Tracer Injection in aMar. 2, 2000Production WellTH 167260/186,379Oilwell Casing ElectricalMar. 2, 2000Power Pick-Off PointsTH 167360/186,394Controllable Production WellMar. 2, 2000PackerTH 167460/186,382Use of Downhole HighMar. 2, 2000Pressure Gas in a Gas LiftWellTH 167560/186,503Wireless Smart Well CasingMar. 2, 2000TH 167760/186,527Method for Downhole PowerMar. 2, 2000Management UsingEnergization from DistributedBatteries or Capacitors withReconfigurable DischargeTH 167960/186,393Wireless Downhole WellMar. 2, 2000Interval Inflow and InjectionControlTH 168160/186,394Focused Through-CasingMar. 2, 2000Resistivity MeasurementTH 170460/186,531Downhole Rotary HydraulicMar. 2, 2000Pressure for Valve ActuationTH 170560/186,377Wireless DownholeMar. 2, 2000Measurement and Control ForOptimizing Gas Lift Welland Field PerformanceTH 172260/186,381Controlled DownholeMar. 2, 2000Chemical InjectionTH 172360/186,378Wireless Power andMar. 2, 2000Communications Cross-BarSwitch
[0002] The current application shares some specification and figures with the following commonly owned and concurrently filed applications, all of which are hereby incorporated by reference:
2COMMONLY OWNED AND CONCURRENTLY FILEDU.S. PATENT APPLICATIONSFilingT&K#Ser. No.TitleDateTH 1601US09/ Reservoir Production Controlfrom Intelligent Well DataTH 1671US09/ Tracer Injection in a Production WellTH 1672US09/ Oil Well Casing Electrical PowerPick-Off PointsTH 1673US09/ Controllable Production Well PackerTH 1674US09/Use of Downhole High Pressure Gasin a Gas-Lift WellTH 1675US09/ Wireless Smart Well CasingTH 1677US09/ Method for Dowuhole PowerManagement Using Energizationfrom Distributed Batteries orCapacitors with ReconfigurableDischargeTH 1679US09/ Wireless Downhole Well IntervalInflow and Injection ControlTH 1681US09/ Focused Through-Casing ResistivityMeasurementTH 1705US09/ Wireless Downhole Measurement andControl For Optimizing Gas Lift Welland Field PerformanceTH 1722US09/ Controlled Downhole ChemicalInjectionTH 1723US09/ Wireless Power and CommunicationsCross-Bar Switch
[0003] The current application shares some specification and figures with the following commonly owned and previously filed applications, all of which are hereby incorporated by reference:
3COMMONLY OWNED AND PREVIOUSLY FILEDU.S. PATENT APPLICATIONSFilingT&K#Ser. No.TitleDateTH 1599US09/ Choke Inductor for WirelessCommunication and ControlTH 1600US09/ Induction Choke for PowerDistribution in Piping StructureTH 1602US09/ Controllable Gas-Lift Well and ValveTH 1603US09/ Permanent Downhole, Wireless,Two-Way Telemetry Backbone UsingRedundant RepeaterTH 1668US09/ Petroleum Well Having DownholeSensors, Communication, and PowerTH 1669US09/ System and Method for Fluid FlowOptimizationTH 1783US09/ Downhole Motorized Flow ControlValveTS 6185US09/ A Method and Apparatus for theOptimal Predistortion of an ElectroMagnetic Signal in a DownholeCommunications System
[0004] The benefit of 35 U.S.C. § 120 is claimed for all of the above referenced commonly owned applications. The applications referenced in the tables above are referred to herein as the “Related Applications.”
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/06949 |
3/2/2001 |
WO |
|