Claims
- 1. A method of determining downhole fluid composition in an annulus, comprising:
measuring the in situ speed of sound of fluid inside a drillstring; measuring the in situ speed of sound of fluid in the annulus; comparing the speed of sound measurements; and determining fluid composition based on the comparison.
- 2. The method of claim 1, wherein the measurements are made with fluid circulation stopped.
- 3. The method of claim 1, wherein the measurements are made while drilling a formation.
- 4. The method of claim 1, further comprising detecting an influx of fluid or gases into the annulus based on fluid composition.
- 5. A method of measuring cuttings transport, the method comprising:
measuring a velocity profile of a fluid flow in a region around a drillstring; and applying the velocity profile to a cuttings transport model.
- 6. The method of claim 5, wherein measuring the velocity profile includes measuring an axial component of velocity;
- 7. The method of claim 5, wherein measuring the velocity profile includes measuring a radial component of velocity.
- 8. The method of claim 5, wherein measuring the velocity profile includes measuring a tangential component of velocity.
- 9. The method of claim 5, further comprising:
determining a density of the fluid; and determining a viscosity of the fluid.
- 10. A well control system that comprises:
a downhole acoustic sensor configured to determine a fluid flow velocity at a given position in the well; and a control mechanism configured to prevent the fluid flow velocity from exceeding a predetermined threshold.
- 11. The well control system of claim 10, wherein the sensor is packaged together with repeater circuitry at various locations along the drillstring.
- 12. The well control system of claim 10, further comprising:
one or more additional downhole acoustic sensors configured to determine a fluid flow velocity at corresponding positions in the well.
- 13. The well control system of claim 12, wherein the additional acoustic sensors are combined with repeater circuitry at various locations along the drillstring.
- 14. The well control system of claim 10, wherein the downhole acoustic sensor is configured to determine both axial and radial components of the fluid flow velocity.
- 15. A method of measuring a stress field in a formation, the method comprising:
passing a fluid flow velocity detector through a hole in the formation; determining position and orientation of fractures from fluid flow velocity measurements; and using the orientation of the fractures to identify a stress field orientation.
- 16. The method of claim 15, wherein the fluid flow velocity measurements include tangential and radial components of velocity.
- 17. A downhole fluid velocity profile detector that comprises:
a first acoustic transducer configured to transmit an acoustic signal in a radial direction; a second acoustic transducer axially spaced apart from the first acoustic transducer, and configured to receive reflections of the acoustic signal from reflectors in a fluid flow; and a controller configured to receive a signal from the second acoustic transducer and configured to determine an axial flow velocity as indicated by a Doppler shift of the acoustic signal reflections.
- 18. The profile detector of claim 17, wherein the transducer is packed together with at least one repeater circuit.
- 19. The profile detector of claim 18, wherein the transducer and repeater combination is located at various points along a drillsting.
- 20. The detector of claim 17, wherein the first acoustic transducer is further configured to receive reflections of the acoustic signal from reflectors in the fluid flow, and wherein the controller is configured to receive a signal from the first acoustic transducer and to determine a radial flow velocity as indicated by a Doppler shift of the acoustic signal reflections.
- 21. The detector of claim 17, further comprising:
a third acoustic transducer spaced azimuthally from the first acoustic transducer and configured to receive reflections of the acoustic signal from reflectors in the fluid flow, wherein the controller is configured to receive a signal from the third acoustic transducer and configured to determine a tangential flow velocity as indicated by a Doppler shift of the acoustic signal reflections.
- 22. A method of measuring downhole mud flow, comprising:
making an in situ speed of sound measurement of mud in an annulus; emitting an acoustic frequency signal in the annulus; receiving the emitted acoustic frequency signal from the annulus, wherein the received signal is Doppler shifted in frequency due to mud flow; demodulating the received Doppler shifted signal; and calculating downhole in situ mud flow velocity and direction from the demodulated Doppler shifted signal and the in situ speed of sound measurement of mud in the annulus.
- 23. The method of claim 21, further comprising automatically adjusting mud flow downhole based on in situ downhole mud flow velocity and direction measurements.
- 24. The method of claim 21, wherein velocity profiles in the annulus are measured.
- 25. The method of claim 23, further comprising:
determining a rheological characteristic of the fluid flow from the velocity profile.
- 26. The method of claim 24, wherein the Theological characteristic is yield stress.
- 27. The method of claim 25, wherein the velocity profiles include axial, radial, and tangential components of the velocity.
- 28. The method of claim 26, further comprising evaluating the hole cleaning properties based on the in situ downhole mud flow velocity and direction.
- 29. A method of detecting fluid types in an annulus, comprising:
measuring the downhole speed of sound of mud in the annulus; comparing the measured speed of sound to an expected value; and determining the fluid type based on the comparison.
- 30. A method of measuring fluid loss into a formation, comprising:
making an in situ speed of sound measurement of mud in an annulus; emitting an acoustic frequency signal in the annulus; receiving the emitted acoustic frequency signal from the annulus, wherein the received signal is Doppler shifted in frequency due to mud flow; demodulating the received signal; calculating downhole in situ mud flow velocity in the radial direction using the demodulated signal and the speed of sound measurement; and determining if mud flow is radially into the formation.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to commonly owned U.S. Pat. No. 6,378,357, issued Apr. 30, 2002, and entitled “Method of Fluid Rheology Characterization and Apparatus Therefor.” This reference is incorporated herein by reference. This application claims the benefit of a provisional application filed May 15, 2002, which is entitled “Acoustic Doppler Downhole Flow Measurements.”
Provisional Applications (1)
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Number |
Date |
Country |
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60380648 |
May 2002 |
US |