Rupture Dynamics of Cascading Earthquakes in a Multiscale Fracture Network

Author:

Palgunadi Kadek Hendrawan1ORCID,Gabriel Alice‐Agnes23ORCID,Garagash Dmitry Igor4ORCID,Ulrich Thomas3ORCID,Mai Paul Martin1ORCID

Affiliation:

1. Physical Science and Engineering King Abdullah University of Science and Technology Thuwal Saudi Arabia

2. Institute of Geophysics and Planetary Physics Scripps Institution of Oceanography University of California San Diego CA USA

3. Department of Earth and Environmental Sciences, Geophysics Ludwig‐Maximilians‐Universität München Munich Germany

4. Department of Civil and Resource Engineering Dalhousie University Halifax Nova Scotia Canada

Abstract

AbstractFault‐damage zones comprise multiscale fracture networks that may slip dynamically and interact with the main fault during earthquake rupture. Using 3D dynamic rupture simulations and scale‐dependent fracture energy, we examine dynamic interactions of more than 800 intersecting multiscale fractures surrounding a listric fault, emulating a major listric fault and its damage zone. We investigate 10 distinct orientations of maximum horizontal stress, probing the conditions necessary for sustained slip within the fracture network or activating the main fault. Additionally, we assess the feasibility of nucleating dynamic rupture earthquake cascades from a distant fracture and investigate the sensitivity of fracture network cascading rupture to the effective normal stress level. We model either pure cascades or main fault rupture with limited off‐fault slip. We find that cascading ruptures within the fracture network are dynamically feasible under certain conditions, including: (a) the fracture energy scales with fracture and fault size, (b) favorable relative pre‐stress of fractures within the ambient stress field, and (c) close proximity of fractures. We find that cascading rupture within the fracture network discourages rupture on the main fault. Our simulations suggest that fractures with favorable relative pre‐stress, embedded within a fault damage zone, may lead to cascading earthquake rupture that shadows main fault slip. We find that such off‐fault events may reach moment magnitudes up to Mw ≈ 5.5, comparable to magnitudes that can be otherwise hosted by the main fault. Our findings offer insights into physical processes governing cascading earthquake dynamic rupture within multiscale fracture networks.

Funder

King Abdullah University of Science and Technology

Directorate for Geosciences

National Aeronautics and Space Administration

National Science Foundation

Southern California Earthquake Center

Publisher

American Geophysical Union (AGU)

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