IP Library › Granted Patent US 10,359,536
Granted Patent B2
US 10,359,536 · App. 14/907,921 · Granted Jul 23, 2019

Surface calibration of a wellbore resistivity logging tool

Inventor: Burkay Donderici (Houston, TX)
Assignee: Halliburton Energy Services Inc.
G01V3/28G01V13/00
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Quick Facts
Patent No.
US 10,359,536
App. No.
14/907,921
Granted
Jul 23, 2019
Kind
B2
Abstract

Surface calibration of a resistivity logging tool is accomplished using a variety of methods in which separate external loop transmitters and receivers are utilized for calibration.

Claims (95)

1. A method for surface calibration of a wellbore logging tool, the method comprising: positioning a loop transmitter adjacent to a receiver of a logging tool;

positioning a loop receiver adjacent to a transmitter of the logging tool, the loop transmitter being separate from the loop receiver;

transmitting a first signal using the loop transmitter;

measuring the first signal using the receiver of the logging tool;

transmitting a second signal using the transmitter of the logging tool;

measuring the second signal using the loop receiver;

simulating a third and fourth signal;

comparing the measured first signal to the simulated third signal;

comparing the measured second signal to the simulated fourth signal;

calculating calibration coefficients for the logging tool based upon the comparison of the measured first signal and the simulated third signal and the comparison of the measured second signal and the simulated fourth signal; and

calibrating the logging tool using the calibration coefficients.

2. A method as defined in claim 1 , wherein calculating the calibration coefficients further comprises:

calculating calibration coefficients for the receiver of the logging tool based upon the comparison of the measured first signal and simulated third signal; and

calculating calibration coefficients for the transmitter of the logging tool based upon the comparison of the measured second signal and simulated fourth signal.

3. A method as defined in claim 1 , wherein calibrating the logging tool further comprises:

deploying the logging tool downhole;

obtaining a fifth signal representative of a formation characteristic using the receiver of the logging tool; and

calibrating the fifth signal using the calibration coefficients.

4. A method as defined in claim 3 , wherein calibrating the fifth signal further comprises:

combining the calibration coefficients of the transmitter with the calibration coefficients of the receiver; and

utilizing the combined calibration coefficients to calibrate the fifth signal.

5. A method as defined in claim 1 , wherein the measured first and second signals are calibrated.

6. A method as defined in claim 2 , wherein calculating calibration coefficients for the receiver of the logging tool further comprises:

selecting a transmitter loop configuration corresponding to at least one of:

a position of the transmitter loop along the logging tool;

a tilt angle of the transmitter loop; or

an azimuthal angle of the transmitter loop, wherein the measured first signal is obtained using the selected transmitter loop configuration;

selecting a receiver configuration corresponding to at least one of:

a gain of the receiver;

a position of the receiver along the logging tool;

a tilt angle of the receiver; or

an azimuthal angle of the receiver, wherein the third signal is simulated using the selected receiver configuration; and

determining the receiver configuration that minimizes a mismatch between the measured first signal and simulated third signal, the determined receiver configuration being the calibration coefficients for the receiver.

7. A method as defined in claim 2 , wherein calculating calibration coefficients for the transmitter of the logging tool further comprises:

selecting a receiver loop configuration corresponding to at least one of:

a position of the receiver loop along the logging tool;

a tilt angle of the receiver loop; or

an azimuthal angle of the receiver loop, wherein the measured second signal is obtained using the selected receiver loop configuration;

selecting a transmitter configuration corresponding to at least one of:

a gain of the transmitter;

a position of the transmitter along the logging tool;

a tilt angle of the transmitter; or

an azimuthal angle of the transmitter, wherein the fourth signal is simulated using the selected transmitter configuration; and

determining the transmitter configuration that minimizes a mismatch between the measured second signal and simulated fourth signal, the determined transmitter configuration being the calibration coefficients for the transmitter.

8. A method as defined in claim 6 or 7 , further comprising:

deploying the logging tool downhole;

obtaining a fifth signal representative of a real formation characteristic using the receiver of the logging tool;

simulating the logging tool using simulated formation characteristics and the determined transmitter and receiver configurations that minimize the mismatches to thereby obtain a simulated sixth signal; and

determining the simulated formation characteristics that minimize a mismatch between the fifth signal and the simulated sixth signal.

9. A method as defined in claim 6 or 7 , further comprising:

determining an intended transmitter configuration for the transmitter of the logging tool, the intended transmitter configuration comprising at least one of:

a gain of the transmitter;

a position of the transmitter along the logging tool;

a tilt angle of the transmitter; or

an azimuthal angle of the transmitter;

determining an intended receiver configuration for the receiver of the logging tool, the intended receiver configuration comprising at least one of:

a gain of the receiver;

a position of the receiver along the logging tool;

a tilt angle of the receiver; or

an azimuthal angle of the receiver;

mapping the intended transmitter and receiver configurations to the determined transmitter and receiver configurations that minimize the mismatches;

deploying the logging tool downhole;

obtaining a fifth signal representative of a real formation characteristic using the receiver of the logging tool;

simulating the logging tool using simulated formation characteristics and the determined transmitter and receiver configurations that minimize the mismatches to thereby obtain a simulated sixth signal; and

determining the simulated formation characteristics that minimize a mismatch between the fifth signal and the simulated sixth signal.

10. A method for surface calibration of a wellbore logging tool, the method comprising:

positioning a loop transmitter and a loop receiver along a logging tool at a surface location, wherein:

the loop transmitter and loop receiver are separate from the logging tool; and

the loop transmitter is separate from the loop receiver;

activating a logging tool receiver and logging tool transmitter that are each integrated into a body of the logging tool;

transmitting signals using the loop transmitter and the logging tool transmitter;

measuring the transmitted signals using the loop receiver and the logging tool receiver;

comparing the measured signals with simulated signals;

calculating calibration coefficients for the logging tool based upon the comparison; and

calibrating the logging tool using the calibration coefficients.

11. A method as defined in claim 10 , wherein calculating the calibration coefficients further comprises:

calculating logging tool transmitter calibration coefficients based upon the comparison; and

calculating logging tool receiver calibration coefficients based upon the comparison.

12. A method as defined in claim 10 , further comprising:

deploying the logging tool downhole;

obtaining a signal representative of a real formation characteristic using the logging tool; and

calibrating the obtained signal using the calibration coefficients.

13. A method as defined in claim 10 , wherein the simulated signals are simulated using at least one of a logging tool receiver configuration or a logging tool transmitter configuration.

14. A method as defined in claim 13 , wherein the logging tool receiver and transmitter configurations comprise at least one of:

a gain of the transmitter or receiver;

a position of the transmitter or receiver along the logging tool;

a tilt angle of the transmitter or receiver; or

an azimuthal angle of the transmitter or receiver.

15. A method as defined in claim 1 , further comprising:

heating the logging tool; and

calculating the calibration coefficients as a function of temperature.

16. A method as defined in claim 1 , wherein the logging tool is a deep resistivity logging tool.

17. A method as defined in claim 1 , wherein the logging tool forms part of a logging while drilling or wireline assembly.

18. A system comprising processing circuitry to implement any one of the methods of claims 1 - 17 .

19. A non-transitory computer-program product comprising instructions which, when executed by at least one processor, causes the processor to perform any one of the methods of claims 1 - 17 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2016
From: DONDERICI, BURKAY
To: HALLIBURTON ENERGY SERVICES INC.
Reel/Frame 037599/0055 →
Continuity (1)
Related Publication 20160170068A1 · Jun 16, 2016