Maximum size and magnitude of injection-induced slow slip events

Fuente: arXiv
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Autores principales: Sáez, Alexis, Passelègue, François, Lecampion, Brice
Formato: Preprint
Publicado: 2024
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author Sáez, Alexis
Passelègue, François
Lecampion, Brice
author_facet Sáez, Alexis
Passelègue, François
Lecampion, Brice
contents Fluid injections can induce aseismic slip, resulting in stress changes that may propagate faster than pore pressure diffusion, potentially triggering seismicity at significant distances from injection wells. Constraining the maximum extent of these aseismic ruptures is thus important for better delineating the influence zone of injections concerning their seismic hazard. Here we derive a scaling relation based on rupture physics for the maximum size of aseismic ruptures, accounting for fluid injections with arbitrary flow rate histories. Moreover, based on mounting evidence that the moment release during these operations is often predominantly aseismic, we derive a scaling relation for the maximum magnitude of aseismic slip events. Our theoretical predictions are consistent with observations over a broad spectrum of event sizes, from laboratory to real-world cases, indicating that fault-zone storativity, background stress state, and injected fluid volume are key determinants of the maximum size and magnitude of injection-induced slow slip events.
format Preprint
id arxiv_https___arxiv_org_abs_2409_03330
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Maximum size and magnitude of injection-induced slow slip events
Sáez, Alexis
Passelègue, François
Lecampion, Brice
Geophysics
Fluid Dynamics
Fluid injections can induce aseismic slip, resulting in stress changes that may propagate faster than pore pressure diffusion, potentially triggering seismicity at significant distances from injection wells. Constraining the maximum extent of these aseismic ruptures is thus important for better delineating the influence zone of injections concerning their seismic hazard. Here we derive a scaling relation based on rupture physics for the maximum size of aseismic ruptures, accounting for fluid injections with arbitrary flow rate histories. Moreover, based on mounting evidence that the moment release during these operations is often predominantly aseismic, we derive a scaling relation for the maximum magnitude of aseismic slip events. Our theoretical predictions are consistent with observations over a broad spectrum of event sizes, from laboratory to real-world cases, indicating that fault-zone storativity, background stress state, and injected fluid volume are key determinants of the maximum size and magnitude of injection-induced slow slip events.
title Maximum size and magnitude of injection-induced slow slip events
topic Geophysics
Fluid Dynamics
url https://arxiv.org/abs/2409.03330