Bayesian full-waveform inversion of tube waves to estimate fracture aperture and compliance
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in: Solid earth : SE ; an interaktive open access journal of the European Geosciences Union, Jahrgang 11.2020, Nr. 2, 29.04.2020, S. 657-668.
Publikationen: Beitrag in Fachzeitschrift › Artikel › Forschung › (peer-reviewed)
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T1 - Bayesian full-waveform inversion of tube waves to estimate fracture aperture and compliance
AU - Hunziker, Jürg
AU - Greenwood, Andrew
AU - Minato, Shohei
AU - Barbosa, Nicolas Daniel
AU - Caspari, Eva
AU - Holliger, Klaus
PY - 2020/4/29
Y1 - 2020/4/29
N2 - The hydraulic and mechanical characterization of fractures is crucial for a wide range of pertinent applications, such as geothermal energy production, hydrocarbon exploration, CO2 sequestration, and nuclear waste disposal. Direct hydraulic and mechanical testing of individual fractures along boreholes does, however, tend to be slow and cumbersome. To alleviate this problem, we propose to estimate the effective hydraulic aperture and the mechanical compliance of isolated fractures intersecting a borehole through a Bayesian Markov chain Monte Carlo (MCMC) inversion of full-waveform tube-wave data recorded in a vertical seismic profiling (VSP) setting. The solution of the corresponding forward problem is based on a recently developed semi-analytical solution. This inversion approach has been tested for and verified on a wide range of synthetic scenarios. Here, we present the results of its application to observed hydrophone VSP data acquired along a borehole in the underground Grimsel Test Site in the central Swiss Alps. While the results are consistent with the corresponding evidence from televiewer data and exemplarily illustrate the advantages of using a computationally expensive stochastic, instead of a deterministic inversion approach, they also reveal the inherent limitation of the underlying semi-analytical forward solver.
AB - The hydraulic and mechanical characterization of fractures is crucial for a wide range of pertinent applications, such as geothermal energy production, hydrocarbon exploration, CO2 sequestration, and nuclear waste disposal. Direct hydraulic and mechanical testing of individual fractures along boreholes does, however, tend to be slow and cumbersome. To alleviate this problem, we propose to estimate the effective hydraulic aperture and the mechanical compliance of isolated fractures intersecting a borehole through a Bayesian Markov chain Monte Carlo (MCMC) inversion of full-waveform tube-wave data recorded in a vertical seismic profiling (VSP) setting. The solution of the corresponding forward problem is based on a recently developed semi-analytical solution. This inversion approach has been tested for and verified on a wide range of synthetic scenarios. Here, we present the results of its application to observed hydrophone VSP data acquired along a borehole in the underground Grimsel Test Site in the central Swiss Alps. While the results are consistent with the corresponding evidence from televiewer data and exemplarily illustrate the advantages of using a computationally expensive stochastic, instead of a deterministic inversion approach, they also reveal the inherent limitation of the underlying semi-analytical forward solver.
U2 - 10.5194/se-11-657-2020
DO - 10.5194/se-11-657-2020
M3 - Article
VL - 11.2020
SP - 657
EP - 668
JO - Solid earth : SE ; an interaktive open access journal of the European Geosciences Union
JF - Solid earth : SE ; an interaktive open access journal of the European Geosciences Union
SN - 1869-9510
IS - 2
ER -