IP Library Granted Patent US 9,422,808
Granted Patent B2
US 9,422,808 · App. 14/818,928 · Granted Aug 23, 2016

Reliable downhole data transmission system

Inventor: Manfred G. Prammer (Downingtown, PA)
Assignee: Martin Scientific, LLC
E21B47/122E21B17/003E21B17/028E21B47/06E21B47/065E21B49/00G01V11/002
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Quick Facts
Patent No.
US 9,422,808
App. No.
14/818,928
Granted
Aug 23, 2016
Kind
B2
Abstract

A downhole signal transmission system provides electric radiofrequency signals that are coupled to electrically conductive or non-conductive fluids through electrical insulators. A plurality of signal repeaters are tuned to the frequencies of the radiofrequency signals, and a plurality of transmission lines terminated by resonance circuits are also provided such that the terminating resonance circuits resonate on the frequencies of the electric radiofrequency signals. The plurality of signal repeaters and plurality of transmission elements are arranged to be redundant such that a failure of one or more of the signal repeaters or a failure of one or more of the transmission elements does not substantially affect the operation of the data transmission system. The signal repeaters and transmission elements also are arranged such that a failure of any of the signal repeaters or a failure of any of the transmission elements is communicated to the surface.

Claims (49)

1. A downhole signal transmission system for providing communications along a string of downhole components comprising a plurality of interconnected downhole components having rotary connections, comprising:

a plurality of signal repeaters spaced along said string of downhole components, said signal repeaters being receptive to radiofrequency signals having information modulated thereon, and

a concentric repeater housing arranged concentrically around the inner periphery of one of said interconnected downhole components, the repeater housing holding electronic components,

wherein at least one of said rotary connections is adapted to accept said repeater housing, and

wherein said repeater housing is under compressional force when said adapted rotary connection is in a tightened state.

2. A downhole signal transmission system as in claim 1 , wherein said adapted rotary connection is of the single-shouldered type.

3. A downhole signal transmission system as in claim 1 , wherein said adapted rotary connection is of the double-shouldered type.

4. A downhole signal transmission system as in claim 1 , wherein said downhole components comprise one or more of the following: pipe joints, pup joints, drill collars, heavyweight pipe, jars, kellys, subs, saver subs, crossover subs, instrumentation subs, sensor subs, interface subs, communication subs and/or checkout boxes.

5. A downhole signal transmission system as in claim 1 , wherein the frequencies of said radiofrequency signals are in a range from 1 MHz to 1 GHz.

6. A downhole signal transmission system as in claim 1 , wherein stopping action provided by said repeater housing and said compressional force keeps said adapted rotary connection from being over-torqued.

7. A downhole signal transmission system as in claim 1 , wherein said signal repeaters are arranged in said string of downhole components whereby a failure of one or more of said signal repeaters does not inhibit the transmission of said radiofrequency signals through said string of downhole components.

8. A downhole signal transmission system as in claim 7 , wherein the number of said signal repeaters is substantially larger than the number of signal repeaters necessary to receive and transmit data.

9. A downhole signal transmission system as in claim 1 , wherein said radiofrequency signals are modulated with said information using on-off keying.

10. A downhole signal transmission system as in claim 1 , wherein said information is transmitted in packets.

11. A downhole signal transmission system as in claim 1 , wherein said information is transmitted in bursts.

12. A downhole signal transmission system as in claim 1 , wherein said radiofrequency signals are modulated with information identifying a particular downhole component and information regarding said particular downhole component is communicated along said string of downhole components using said plurality of signal repeaters.

13. A downhole signal transmission system as in claim 1 , wherein said radiofrequency signals are modulated with information identifying a particular signal repeater and information regarding said particular signal repeater is communicated along said string of downhole components using said plurality of signal repeaters.

14. A downhole signal transmission system as in claim 1 , further comprising a sensor that communicates with at least one of said signal repeaters.

15. A downhole signal transmission system as in claim 14 , wherein said sensor comprises at least one of the following: an accelerometer, a temperature sensor, a pressure sensor, a geophone, an acoustic sensor and an electric current sensor.

16. A downhole signal transmission system as in claim 14 , wherein said sensor investigates properties of a formation adjacent the borehole.

17. A downhole signal transmission system as in claim 14 , wherein said sensor investigates properties of an outer borehole annulus.

18. A downhole signal transmission system as in claim 14 , wherein said radiofrequency signals are modulated with information identifying a particular sensor and information regarding said particular sensor is communicated along said string of downhole components using said plurality of signal repeaters.

19. A downhole signal transmission system as in claim 1 , further comprising a sensor downhole component with at least one sensor, said sensor downhole component being connected in said string of downhole components so as to enable communications of sensor signals along said string of downhole components using said plurality of signal repeaters.

20. A downhole signal transmission system as in claim 19 , wherein said sensor comprises at least one of the following: an accelerometer, a temperature sensor, a pressure sensor, a geophone, an acoustic sensor and an electric current sensor.

21. A downhole signal transmission system as in claim 19 , wherein said sensor investigates properties of a formation adjacent the borehole.

22. A downhole signal transmission system as in claim 19 , wherein said sensor investigates properties of an outer borehole annulus.

23. A downhole signal transmission system as in claim 1 , further comprising an in-line instrument sub that is connected between respective downhole components in said string of downhole components and configured to gather data along the borehole and/or to transmit stimuli that can be received along the string of downhole components by at least one sensor.

24. A method of providing communications along a drill string of downhole components comprising a plurality of interconnected downhole components having rotary connections, comprising the steps of:

generating radiofrequency signals having information modulated thereon;

providing a plurality of signal repeaters spaced along said drill string of downhole components, said signal repeaters being receptive to said radiofrequency signals;

providing a concentric repeater housing arranged concentrically around the inner periphery of one of said interconnected downhole components, the repeater housing holding electronic components; and

tightening at least one of said rotary connections to said repeater housing such that said repeater housing is under compressional force when the at least one rotary connection is in a tightened state.

25. A method as in claim 24 , wherein the frequencies of said radiofrequency signals are in a range from 1 MHz to 1 GHz.

26. A method as in claim 24 , further comprising keeping said rotary connection with said repeater housing from being over-torqued by providing stopping action from said repeater housing and said compressional force.

27. A method as in claim 24 , further comprising arranging said signal repeaters in said string of downhole components whereby a failure of one or more of said signal repeaters does not inhibit the transmission of said radiofrequency signals through said string of downhole components.

28. A method as in claim 27 , wherein the number of said signal repeaters is substantially larger than the number of signal repeaters necessary to receive and transmit data.

29. A method as in claim 24 , wherein generating said radiofrequency signals includes modulating said radiofrequency signals with said information using on-off keying.

30. A method as in claim 24 , further comprising transmitting said information in packets.

31. A method as in claim 24 , further comprising transmitting said information in bursts.

32. A method as in claim 24 , wherein generating said radiofrequency signals comprises modulating said radiofrequency signals with information identifying a particular downhole component and communicating information regarding said particular downhole component along said string of downhole components using said plurality of signal repeaters.

33. A method as in claim 24 , wherein generating said radiofrequency signals comprises modulating said radiofrequency signals with information identifying a particular signal repeater and communicating information regarding said particular signal repeater along said string of downhole components using said plurality of signal repeaters.

34. A method as in claim 24 , further comprising providing a sensor that communicates with at least one of said signal repeaters.

35. A method as in claim 34 , wherein said sensor comprises at least one of the following: an accelerometer, a temperature sensor, a pressure sensor, a geophone, an acoustic sensor and an electric current sensor, further comprising investigating properties of a formation adjacent the borehole with said sensor.

36. A method as in claim 34 , wherein said sensor comprises at least one of the following: an accelerometer, a temperature sensor, a pressure sensor, a geophone, an acoustic sensor and an electric current sensor, further comprising investigating properties of an outer borehole annulus with said sensor.

37. A method as in claim 34 , wherein generating said radiofrequency signals comprises modulating said radiofrequency signals with information identifying a particular sensor and communicating information regarding said particular sensor along said string of downhole components using said plurality of signal repeaters.

38. A method as in claim 24 , wherein said drill string of downhole components includes a sensor downhole component with at least one sensor, further comprising connecting said sensor downhole component in said string of downhole components so as to enable communications of sensor signals along said string of downhole components using said plurality of signal repeaters.

39. A method as in claim 38 , wherein said sensor comprises at least one of the following: an accelerometer, a temperature sensor, a pressure sensor, a geophone, an acoustic sensor and an electric current sensor, further comprising investigating properties of a formation adjacent the borehole with said sensor.

40. A method as in claim 38 , wherein said sensor comprises at least one of the following: an accelerometer, a temperature sensor, a pressure sensor, a geophone, an acoustic sensor and an electric current sensor, further comprising investigating properties of an outer borehole annulus with said sensor.

41. A method as in claim 24 , wherein said drill string of downhole components includes an in-line instrument sub that is connected between respective downhole components in said string of downhole components, further comprising said in-line instrument sub gathering data along a borehole and/or transmitting stimuli that can be received along the string of downhole components by at least one sensor.

Assignments (7)
CORRECTIVE ASSIGNMENT TO CORRECT THE NAME OF THE ASSIGNEE ON PAGE 2 ABOVE SIGNATURE PREVIOUSLY RECORDED AT REEL: 048093 FRAME: 0118. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Apr 25, 2019
From: BHGE VENTURES & GROWTH, LLC
To: NEXTSTREAM WIRED PIPE, LLC
Reel/Frame 049008/0318 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 5, 2019
From: BAKER HUGHES, A GE COMPANY, LLC
To: BAKER HUGHES OILFIELD OPERATIONS LLC
Reel/Frame 048504/0382 →
CHANGE OF NAME Recorded Feb 15, 2019
From: BAKER HUGHES INCORPORATED
To: BAKER HUGHES, A GE COMPANY, LLC
Reel/Frame 048356/0318 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 22, 2019
From: BHGE VENTURES & GROWTH, LLC
To: NEXTSTREAM WIRED PIPE, LLC
Reel/Frame 048093/0118 →
NUNC PRO TUNC ASSIGNMENT Recorded Dec 14, 2018
From: BAKER HUGHES OILFIELD OPERATIONS LLC
To: BHGE VENTURES & GROWTH LLC
Reel/Frame 047778/0861 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 24, 2018
From: PRAMMER, MANFRED G.
To: MARTIN SCIENTIFIC LLC
Reel/Frame 046948/0459 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 19, 2017
From: MARTIN SCIENTIFIC LLC
To: BAKER HUGHES INCORPORATED
Reel/Frame 042052/0057 →
Continuity (6)
Continuation 14193556 · Feb 28, 2014
Continuation 13546059 · Jul 11, 2012
Continuation 12470842 · May 22, 2009
Provisional Application 61206550 · Feb 2, 2009
Provisional Application 61128582 · May 23, 2008
Related Publication 20150337651A1 · Nov 26, 2015