Fault roughness controls injection-induced seismicity

Author:

Wang Lei1ORCID,Kwiatek Grzegorz1,Renard François234ORCID,Guérin-Marthe Simon15ORCID,Rybacki Erik1ORCID,Bohnhoff Marco16ORCID,Naumann Michael1ORCID,Dresen Georg17

Affiliation:

1. Helmholtz Centre Potsdam, GFZ German Research Centre for Geosciences, Geomechanics and Scientific Drilling, Potsdam 14473, Germany

2. The Njord Centre, Department of Geosciences, University of Oslo, Oslo 0316, Norway

3. The Njord Centre, Department of Physics, University of Oslo, Oslo 0316, Norway

4. ISTerre, Université Grenoble Alpes, Grenoble INP, Université Savoie Mont Blanc, CNRS, IRD, Université Gustave Eiffel, Grenoble 38000, France

5. Laboratory of Experimental Rock Mechanics, Civil Engineering Institute, École Polytechnique Fédérale de Lausanne, Lausanne 1015, Switzerland

6. Department of Earth Sciences, Free University Berlin, Berlin 12249, Germany

7. Institute of Earth and Environmental Science, University of Potsdam, Potsdam 14469, Germany

Abstract

Surface roughness ubiquitously prevails in natural faults across various length scales. Despite extensive studies highlighting the important role of fault geometry in the dynamics of tectonic earthquakes, whether and how fault roughness affects fluid-induced seismicity remains elusive. Here, we investigate the effects of fault geometry and stress heterogeneity on fluid-induced fault slip and associated seismicity characteristics using laboratory experiments and numerical modeling. We perform fluid injection experiments on quartz-rich sandstone samples containing either a smooth or a rough fault. We find that geometrical roughness slows down injection-induced fault slip and reduces macroscopic slip velocities and fault slip-weakening rates. Stress heterogeneity and roughness control hypocenter distribution, frequency–magnitude characteristics, and source mechanisms of injection-induced acoustic emissions (AEs) (analogous to natural seismicity). In contrast to smooth faults where injection-induced AEs are uniformly distributed, slip on rough faults produces spatially localized AEs with pronounced non-double-couple source mechanisms. We demonstrate that these clustered AEs occur around highly stressed asperities where induced local slip rates are higher, accompanied by lower Gutenberg–Richter b -values. Our findings suggest that real-time monitoring of induced microseismicity during fluid injection may allow identifying progressive localization of seismic activity and improve forecasting of runaway events.

Funder

Bundesministerium für Bildung und Forschung

Publisher

Proceedings of the National Academy of Sciences

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