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Characterizing hydraulic fracture formation during enhanced geothermal system experiments using coda waves

Kaushik Pradhan, Parker Sprinkle, Julien Chaput and Hunter Knox
Characterizing hydraulic fracture formation during enhanced geothermal system experiments using coda waves (in Near-surface geophysics in the energy transition, Chester J. Weiss (prefacer))
Leading Edge (Tulsa, OK) (March 2025) 44 (3): 163-169

Abstract

Seismic waves are valuable for detecting structural variations in the subsurface and can be used to investigate enhanced geothermal systems (EGS). Classic methods, like seismic reflection, struggle to resolve these effects when the perturbations are confined to small volumes of rock, thus requiring other methods. Multiply scattered waves are better suited to resolving small structural changes due to their cumulative sensitivity acquired by their longer propagation times within the medium. With the growing focus on renewable energy production, an improved characterization of fracture network geometry created during EGS stimulations is crucial. In this study, we leverage coda from waveforms generated by a continuous active seismic source to investigate fracture development during the EGS Collab Experiment 1 at the Sanford Underground Research Facility (SURF). By measuring waveform decorrelation, we use scattering cross-section density as a proxy for the induced hydraulic fractures. Our approach implements a genetic algorithm to invert for scattering distributions, posing the problem as a nonlinear optimization. We also constrain the scattering perturbations to plane structures, enforcing realistic sparsity in fracture patterns that is otherwise poorly resolved in linearized approaches. Results from synthetic examples demonstrate the effectiveness of this approach in recovering scattering density, highlighting its potential to complement methods that utilize induced seismicity for improving characterization of fracture networks in enhanced geothermal reservoirs.


ISSN: 1070-485X
EISSN: 1938-3789
Serial Title: Leading Edge (Tulsa, OK)
Serial Volume: 44
Serial Issue: 3
Title: Characterizing hydraulic fracture formation during enhanced geothermal system experiments using coda waves
Title: Near-surface geophysics in the energy transition
Author(s): Pradhan, KaushikSprinkle, ParkerChaput, JulienKnox, Hunter
Author(s): Weiss, Chester J.prefacer
Affiliation: University of Texas at El Paso, Department of Earth, Environmental, and Resource Sciences, El Paso, TX, United States
Affiliation: Sandia National Laboratories, Geophysics Department, Albuquerque, NM, United States
Affiliation: EGS Collab TeamUnited States
Pages: 163-169
Published: 202503
Text Language: English
Publisher: Society of Exploration Geophysicists, Tulsa, OK, United States
References: 39
Accession Number: 2025-034068
Categories: Applied geophysicsEconomic geology, geology of energy sources
Document Type: Serial
Bibliographic Level: Analytic
Illustration Description: illus.
Secondary Affiliation: Pacific Northwest National Laboratory, USA, United States
Country of Publication: United States
Secondary Affiliation: GeoRef, Copyright 2025, American Geosciences Institute. Reference includes data from GeoScienceWorld, Alexandria, VA, United States. Reference includes data supplied by Society of Exploration Geophysicists, Tulsa, OK, United States
Update Code: 2025

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