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 |
|