Advanced downhole waveform interpretation

US10102315B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10102315-B2
Application numberUS-201514962368-A
CountryUS
Kind codeB2
Filing dateDec 8, 2015
Priority dateDec 8, 2014
Publication dateOct 16, 2018
Grant dateOct 16, 2018

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Abstract

Official abstract text for this publication.

Systems and methods process a measured ultrasonic response waveform to determine a well casing thickness and an acoustic impedance of a sealing medium surrounding the well casing. An array of simulated response waveforms corresponding to a set of candidate acoustic impedances for the sealing medium surrounding the well casing and a set of candidate well casing thicknesses is generated. A simulated response waveform from the array of simulated response waveforms is identified that best matches the measured response waveform so as to determine the sealing medium acoustic impedance.

First claim

Opening claim text (preview).

What is claimed is: 1. A computer-implemented method of processing a measured ultrasonic response waveform to determine a thickness of a well casing thickness and an acoustic impedance of a sealing medium in an annulus surrounding the well casing, the method comprising: transmitting an ultrasonic signal from an ultrasonic inspection tool toward the well casing from within the well casing; generating, via an ultrasonic transducer, a measured response waveform resulting from the transmitted ultrasonic signal, wherein the ultrasonic inspection tool comprises the ultrasonic transducer; processing the measured response waveform to determine an arrival time for a first reflection from the well casing; generating a plurality of simulated response waveforms corresponding to the arrival time, a set of candidate acoustic impedances for the sealing medium in the annulus, a set of candidate well casing thicknesses, a set of candidate annulus thicknesses, and a set of candidate acoustic impedances for a ground formation surrounding the annulus; identifying a best-fit simulated response waveform from the plurality of simulated response waveforms that best matches the measured response waveform so as to identify a best fit well casing thickness of the set of candidate well casing thicknesses, a best-fit sealing medium acoustic impedance of the set of candidate acoustic impedances for the medium in the annulus, a best-fit annulus thickness of the set of candidate annulus thicknesses, and a best-fit acoustic impedance for the ground formation surrounding the annulus of the set of candidate acoustic impedances for the ground formation surrounding the annulus associated with the best-fit simulated response waveform; and outputting the best fit sealing medium acoustic impedance to a user via an output device. 2. The computer-implemented method of claim 1 , further comprising: processing a portion of the measured response waveform to determine an approximate thickness of the well casing; and selecting the set of candidate well casing thicknesses based on the approximate thickness of the well casing. 3. The computer-implemented method of claim 1 , further comprising processing a portion of the measured response waveform to determine a transducer impulse response for an ultrasonic transducer used to generate the measured response waveform, and wherein each of the plurality of simulated response waveforms is based on the transducer impulse response. 4. The computer-implemented method of claim 3 , wherein generating each of the plurality of simulated response waveforms comprises: calculating amplitudes for simulated echo waves returning to the ultrasonic transducer from the well casing and an interface between the sealing medium in the annulus and the ground formation surrounding the annulus; generating corrected amplitudes and pulse shapes for the simulated echo waves by correcting the amplitudes and pulse shapes for the simulated echo waves to account for multi-dimensional propagation effects including diffraction, refraction, and resulting beam size at a transducer plane of the ultrasonic transducer; generating a first simulated waveform based on the corrected amplitudes and pulse shapes; and convolving the first simulated waveform with the transducer impulse response to generate the respective simulated response waveform. 5. The computer-implemented method of claim 3 , further comprising: calculating a differential signal between the measured response waveform and the best-fit simulated response waveform; calculating a corrected transducer impulse response for the ultrasonic transducer by correcting the transducer impulse response based on the differential signal; generating a second-iteration plurality of simulated response waveforms based on the corrected transducer impulse response and corresponding to the arrival time, a second-iteration set of candidate acoustic impedances for the sealing medium surrounding the well casing, a second-iteration set of candidate well casing thicknesses, a second-iteration set of candidate annulus thicknesses, and a second-iteration set of candidate acoustic impedances for the ground formation surrounding the annulus; and identifying a second-iteration best-fit simulated response waveform from the second-iteration plurality of simulated response waveforms that best matches the measured response waveform so as to identify a second-iteration best-fit well casing thickness of the second-iteration set of candidate well casing thicknesses, a second-iteration best-fit sealing medium acoustic impedance of the second-iteration set of candidate acoustic impedances for the sealing medium surrounding the well casing, a second-iteration best-fit annulus thickness of the second-iteration set of candidate annulus thicknesses, and a second-iteration best-fit acoustic impedance for the ground formation surrounding the annulus of the second-iteration set of candidate acoustic impedances for the ground formation surrounding the annulus associated with the second-iteration best-fit simulated response waveform. 6. The computer-implemented method of claim 5 , wherein generating each of the second-iteration plurality of simulated response waveforms comprises convolving a simulated response waveform with the corrected transducer impulse response to generate the respective simulated response waveform of the second-iteration plurality of simulated response waveforms. 7. The computer-implemented method of claim 1 , wherein each of the plurality of simulated response waveforms is based on reflection of the ultrasonic signal from an inner surface of the well casing, reflection of the ultrasonic signal from an interface between the well casing and the sealing medium in the annulus, reflection of the ultrasonic signal from an interface between the sealing medium in the annulus and the ground formation surrounding the annulus, and multiple reverberations of the ultrasonic signal within the well casing. 8. The computer-implemented method of claim 1 , further comprising generating a confidence value based on deviation between the best-fit simulated response waveform and the measured response waveform. 9. The computer-implemented method of claim 8 , further comprising analyzing the best-fit well casing thickness, the best-fit sealing medium acoustic impedance, and the confidence value in combination to produce a final confidence value indicative of whether the actual sealing medium acoustic impedance is within a designated range. 10. The computer-implemented method of claim 8 , further comprising calculating the best-fit well casing thickness, the best-fit sealing medium acoustic impedance, and the final confidence value for a plurality of depths and a plurality of azimuth angles. 11. A system for processing a measured ultrasonic response waveform to determine a thickness of a well casing and an acoustic impedance of a sealing medium in an annulus surrounding the well casing, the system comprising: an ultrasonic inspection tool that transmits an ultrasonic signal toward the well casing from within the well casing, the ultrasonic inspection tool comprising an ultrasonic transducer that generates a measured response waveform resulting from the transmitted ultrasonic signal; an output device; a processor; a tangible memory storing non-transient instructions executable by the processor to cause the processor to: process a measured response waveform resulting from an ultrasonic signal transmitted toward the well casing from within the well casing to determine an arrival time for a first reflection from the well casing; generate a plurality of simulated response waveforms corresponding to the arrival time, a s

Assignees

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Classifications

  • Monitoring or checking of cementation quality or level · CPC title

  • using radiant means, e.g. acoustic, radioactive or electromagnetic · CPC title

  • Analysing data · CPC title

  • G01V1/282Primary

    Application of seismic models, synthetic seismograms · CPC title

  • G06F30/20Primary

    Design optimisation, verification or simulation (optimisation, verification or simulation of circuit designs G06F30/30) · CPC title

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What does patent US10102315B2 cover?
Systems and methods process a measured ultrasonic response waveform to determine a well casing thickness and an acoustic impedance of a sealing medium surrounding the well casing. An array of simulated response waveforms corresponding to a set of candidate acoustic impedances for the sealing medium surrounding the well casing and a set of candidate well casing thicknesses is generated. A simula…
Who is the assignee on this patent?
Univ Washington, Bp Corp North America Inc
What technology area does this patent fall under?
Primary CPC classification G01V1/282. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Oct 16 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).