IP Library Granted Patent US 7,009,707
Granted Patent B2
US 7,009,707 · App. 10/114,992 · Granted Mar 7, 2006

Apparatus and method of sensing fluid flow using sensing means coupled to an axial coil spring

Assignee: THALES Underwater Systems UK Limited
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Quick Facts
Patent No.
US 7,009,707
App. No.
10/114,992
Granted
Mar 7, 2006
Kind
B2
Abstract

An apparatus and method of sensing fluid flow are provided to measure fluid flow rates in production tubing, pipelines, open wells and tunnels. The proposed invention takes advantage of a sensor with processing means to interpret the fluid flow rate, the sensor being responsive to the mechanical perturbations of the sensor itself arising from the impingement of turbulent fluid flow on the sensor. In operation, the sensor is mounted in the fluid flow such that the fluid flows through an aperture in the sensor and/or around the outside surface of the sensor. The sensor of the invention bears definite advantage over known sensors and it is particularly suited to downhole oil and gas applications. Preferably, the invention employs fiber optic sensing techniques which are amenable to multiplexing a plurality of the sensors with long down leads. Such an arrangement is robust to withstand the high temperature and pressure environment. Advantageously, the invention allows non-intrusive measurement of fluid flow in production pipes and measurement of differential fluid flows along perforated casing or open well sections in the pay zone.

Claims (69)

1. A fluid flow sensing apparatus for measuring a fluid flow rate, the apparatus comprising:

fluid flow sensing means for sensing perturbations associated with the apparatus, said perturbations being produced by broadband energy in the turbulent fluid flow impinging on said apparatus;

means for deriving a signal response representative of the sensed perturbations;

processing means for processing the derived signal response to provide measurement of the fluid flow rate at a predetermined location; and

an axial coil spring to which the sensing means is coupled, enabling the sensing means to be mounted in the fluid flow and to be vibrated over a range of frequencies about a resonant frequency, in dependence upon the impingement of the turbulent fluid flow on the apparatus.

2. An apparatus as claimed in claim 1 , wherein the fluid flow sensing means comprises a sensor device having a body member with an aperture, the sensor device being adapted and arranged to permit the passage of the fluid flow through the aperture and/or around the outside surface of the body member.

3. An apparatus as claimed in claim 2 , wherein a predetermined axis is defined in relation to the body member of the sensor device such that, in use, the sensor device is perturbed along said predetermined axial direction.

4. An apparatus as claimed in claim 2 , wherein the signal response is adapted to be processed to provide measurements of displacement and/or time derivatives of displacement of said sensor device.

5. An apparatus as claimed in claim 4 , wherein said measurements are further processed and calibrated to provide a direct interpretation of the fluid flow rate such that, in use, the apparatus operates as a fluid flow meter.

6. An apparatus as claimed in claim 4 , wherein said measurements are representative of the broadband energy in the turbulent flow of the fluid, such flow producing an at-resonance excitation of the sensor device.

7. An apparatus as claimed in claim 6 , wherein the signal response is adapted to be calibrated to record the at-resonance excitation condition as a function of fluid flow rate.

8. An apparatus as claimed in claim 4 , wherein said measurements are representative of the broadband energy in the turbulent flow of the fluid, such flow producing an off-resonance excitation of the sensor device.

9. An apparatus as claimed in claim 8 , wherein the signal response is adapted to be calibrated to record the off-resonance excitation condition as a function of fluid flow rate.

10. An apparatus as claimed in claim 1 , wherein the spring comprises a hollow spring which is adapted and arranged to accommodate signal carrying means so as to permit the transmission of the signal response from the sensor device to the processing means.

11. An apparatus as claimed in claim 1 , wherein the spring is adapted and arranged to provide a resonance condition of said apparatus.

12. A fibre optic sensing system comprising a fluid flow sensing apparatus as claimed in claim 1 .

13. A system as claimed in claim 12 , wherein the fluid flow sensing means comprises one or more fibre optic sensors including fibre optic sensing coil means which is arranged to form part of an optical time domain reflectometric interferometer.

14. A system as claimed in claim 13 , further comprising time multiplex means to time multiplex a plurality of said fibre optic sensors onto one optical fibre such that, in use of the system, fluid flow gradients can be measured along an array of said sensors.

15. A system as claimed in claim 14 , further comprising optical frequency multiplex means to optically frequency multiplex a plurality of said fibre optic sensors onto one optical fibre such that, in use of the system, fluid flow gradients can be measured along an array of said sensors.

16. A system as claimed in claim 15 , wherein means are provided for combining time multiplex means and optical frequency multiplex means enabling arrays of said fibre optic sensors to be employed.

17. A system as claimed in claim 16 , wherein the arrays of the fibre optic sensors are adapted and arranged to be multiplexed with downhole fibre optic gauges and/or sensors on the same optical fibre.

18. A fibre optic sensing system as claimed in claim 12 , further comprising mechanical filter means for removing interfering vibration, which filter means comprises two sensing devices coupled together by spring means, enabling the two sensing devices to be mounted in the fluid flow and to be vibrated over a predetermined range of frequencies.

19. A fibre optic sensing system as claimed in claim 18 , wherein the predetermined range of frequencies comprises a first principal axial resonance frequency and a second principal axial resonance frequency, a lower of said first and second resonance frequencies being associated with an in-phase movement of masses of the two sensing devices and a higher of said first and second resonance frequencies being associated with an out-of phase movement of the masses of the two sensing devices.

20. A fibre optic sensing system as claimed in claim 19 , wherein the lower of said first and second resonance frequencies is generated by impingement of the turbulent flow on the system and by the excitation attributed to interfering vibration.

21. A fibre optic sensing system as claimed in claim 20 , wherein the interfering vibration is a vibration of mounting means onto which the spring means is attached.

22. A fibre optic sensing system as claimed in claim 19 , wherein the higher of said first and second resonance frequencies is generated by the impingement of the turbulent flow on the system.

23. A fibre optic sensing system as claimed in any of claims 19 to 22 , wherein the signal response is adapted to be processed such that the out-of-phase higher resonant frequency response is calibrated to provide a direct interpretation of the fluid flow rate such that, in use, the system operates as a fluid flow meter insensitive to interfering vibration.

24. A fibre optic sensing system as claimed in claim 23 , wherein the fluid flow meter is insensitive to the vibration of the mount onto which the system is attached.

25. A fibre optic sensing system as claimed in claim 18 having a remote sensing capability of remotely sensing oil, water and gas flow rates at a plurality of predetermined locations in pipelines, production tubing, wells, open case wells, injection wells and tunnels.

26. A fibre optic sensing system as claimed in claim 12 having a capability to permit the sensor to be installed in various types of production pipe such that, in use, the sensor does not interfere with the operation of production logging tools.

27. A fluid flow sensing apparatus as claimed in claim 1 further comprising mechanical filter means for removing interfering vibration, which filter means comprises two sensing devices coupled together by spring means, enabling the two sensing devices to be mounted in the fluid flow and to be vibrated over a predetermined range of frequencies.

28. A fluid flow sensing apparatus as claimed in claim 27 , wherein the predetermined range of frequencies comprises a first principal axial resonance frequency and a second principal axial resonance frequency, a lower of said first and second resonance frequencies being associated with an in-phase movement of masses of the two sensing devices and a higher of said first and second resonance frequencies being associated with an out-of phase movement of the masses of the two sensing devices.

29. A fluid flow sensing apparatus as claimed in claim 28 , wherein the lower of said first and second resonance frequencies is generated by impingement of the turbulent flow on the apparatus and by the excitation attributed to interfering vibration.

30. A fluid flow sensing apparatus as claimed in claim 29 , wherein the interfering vibration is a vibration of mounting means onto which the spring means is attached.

31. A fluid flow sensing apparatus as claimed in claim 28 , wherein the higher of said first and second resonance frequencies is generated by the impingement of the turbulent flow on the apparatus.

32. A fluid flow sensing apparatus as claimed in any of claims 28 to 31 , wherein the signal response is adapted to be processed such that the out-of-phase higher resonant frequency response is calibrated to provide a direct interpretation of the fluid flow rate such that, in use, the apparatus operates as a fluid flow meter insensitive to interfering vibration.

33. A fluid flow sensing apparatus as claimed in claim 32 , wherein the fluid flow meter is insensitive to the vibration of the mount onto which the apparatus is attached.

34. A fluid flow sensing apparatus as claimed in claim 1 having a remote sensing capability of remotely sensing oil, water and gas flow rates at a plurality of predetermined locations in pipelines, production tubing, wells, open case wells, injection wells and tunnels.

35. A fluid flow sensing apparatus as claimed in claim 1 having a capability to permit the sensor to be installed in various types of production pipe such that, in use, the sensor does not interfere with the operation of production logging tools.

36. A method of measuring a fluid flow rate, the method comprising:

sensing perturbations associated with a fluid flow sensing apparatus as claimed in claim 1 , said perturbations being produced by the broadband energy in the turbulent fluid flow impinging on said apparatus;

deriving a signal response representative of the sensed perturbations; and

processing the derived signal response to provide measurement of the fluid flow rate at a predetermined location.

37. A method as claimed in claim 36 , wherein the sensing is carried out optically by means of a fibre optic sensing coil.

38. A method as claimed in claim 36 or claim 37 , further comprising mechanically filtering the signal response enabling an interference-vibration free measurement of the fluid flow rate to be provided at said predetermined location.

39. A computer program which when loaded into a computer will enable the computer to operate with a fluid flow sensing apparatus as claimed in claim 1 such as to enable the signal response to be derived and/or processed.

40. A fluid flow sensing apparatus for measuring a fluid flow rate, the apparatus comprising:

a fluid flow sensor configured to sense perturbations associated with the apparatus, said perturbations being produced by broadband energy in the turbulent fluid flow impinging on said apparatus;

a device configured to derive a signal response representative of the sensed perturbations;

a processor configured to process the derived signal response to provide measurement of the fluid flow rate at a predetermined location; and

an axial coil spring to which the sensor is coupled, enabling the sensor to be mounted in the fluid flow and to be vibrated over a range of frequencies about a resonant frequency, in dependence upon the impingement of the turbulent fluid flow on the apparatus.

41. A fibre optic sensing system comprising a fluid flow sensing apparatus comprising:

a fluid flow sensor configured to sense perturbations associated with the apparatus, said perturbations being produced by broadband energy in the turbulent fluid flow impinging on said apparatus;

a device configured to derive a signal response representative of the sensed perturbations;

a processor configured to process the derived signal response to provide measurement of the fluid flow rate at a predetermined location; and

an axial coil spring to which the sensor is coupled, enabling the sensor to be mounted in the fluid flow and to be vibrated over a range of frequencies about a resonant frequency, in dependence upon the impingement of the turbulent fluid flow on the apparatus.

42. A method of measuring a fluid flow rate, the method comprising:

sensing perturbations associated with a fluid flow sensing apparatus comprising:

a fluid flow sensor configured to sense perturbations associated with the apparatus, said perturbations being produced by broadband energy in the turbulent fluid flow impinging on said apparatus;

a device configured to derive a signal response representative of the sensed perturbations;

a processor configured to process the derived signal response to provide measurement of the fluid flow rate at a predetermined location; and

an axial coil spring to which the sensor is coupled, enabling the sensor to be mounted in the fluid flow and to be vibrated over a range of frequencies about a resonant frequency, in dependence upon the impingement of the turbulent fluid flow on the apparatus;

deriving a signal response representative of the sensed perturbations; and

processing the derived signal response to provide measurement of the fluid flow rate at a predetermined location.

43. A computer program which when loaded into a computer will enable the computer to operate with a fluid flow sensing apparatus for enabling a signal response to be derived and/or processed, said apparatus comprising:

a fluid flow sensor configured to sense perturbations associated with the apparatus, said perturbations being produced by broadband energy in the turbulent fluid flow impinging on said apparatus;

a device configured to derive a signal response representative of the sensed perturbations;

a processor configured to process the derived signal response to provide measurement of the fluid flow rate at a predetermined location; and

an axial coil spring to which the sensor is coupled, enabling the sensor to be mounted in the fluid flow and to be vibrated over a range of frequencies about a resonant frequency, in dependence upon the impingement of the turbulent fluid flow on the apparatus.

Assignments (5)
CHANGE OF NAME Recorded Aug 1, 2016
From: THALES PLC
To: THALES UK PLC
Reel/Frame 039301/0710 →
CHANGE OF NAME Recorded Aug 1, 2016
From: THALES UK PLC
To: THALES HOLDINGS UK PLC
Reel/Frame 039301/0719 →
NUNC PRO TUNC ASSIGNMENT Recorded Aug 1, 2016
From: THALES UNDERWATER SYSTEMS LIMITED
To: THALES PLC
Reel/Frame 039515/0936 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S NAME PREVIOUSLY RECORDED ON REEL 013068 FRAME 0049. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jul 8, 2016
From: BERESFORD, JOHN MICHAEL; COLLISTER, CHRISTOPHER JOHN
To: THALES UNDERWATER SYSTEMS LIMITED
Reel/Frame 039312/0060 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 8, 2002
From: BERESFORD, JOHN MICHAEL; COLLISTER, CHRISTOPHER JOHN
To: THALES UNDERWATER SYSTEMS UK LIMITED
Reel/Frame 013068/0049 →
Priority Claims (3)
EP 01303278 · Apr 6, 2001 · regional
GB 0108739 · Apr 6, 2001 · national
GB 0200139 · Jan 4, 2002 · national
Continuity (1)
Related Publication 20020174728A1 · Nov 28, 2002