4.6 Article

Subduction earthquake sequences in a non-linear visco-elasto-plastic megathrust

期刊

GEOPHYSICAL JOURNAL INTERNATIONAL
卷 229, 期 2, 页码 1098-1121

出版社

OXFORD UNIV PRESS
DOI: 10.1093/gji/ggab521

关键词

Earthquake dynamics; Numerical modelling; Seismicity and tectonics; Subduction zone processes; Rheology and friction of fault zones

资金

  1. Swiss National Science Foundation (SNSF) [P2EZP2 184307, P400P2 199295]
  2. United States Geological Survey (USGS) Earthquake Hazard Program [GP21AP10037]
  3. Cecil & Sally Drinkward postdoctoral fellowship of the Department of Mechanical and Civil Engineering at the California Institute of Technology
  4. Swiss National Science Foundation (SNF) [P400P2_199295, P2EZP2_184307] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

We present a 2-D thermomechanical computational framework for simulating earthquake sequences in a non-linear visco-elasto-plastic compressible medium. The method incorporates an adaptive time-stepping and an invariant formulation of the classical friction law, allowing for the analysis of earthquake sequences and the exploration of their physical connections.
We present a 2-D thermomechanical computational framework for simulating earthquake sequences in a non-linear visco-elasto-plastic compressible medium. The method is developed for a plane-strain problem and incorporates an invariant formulation of the classical rate- and state-dependent friction law and an adaptive time-stepping, which allows the time step to vary by many orders of magnitude during a simulation. Long-term tectonic convergence is imposed by displacing a boundary at a constant rate, whereas temperature-dependent viscosity is solved using a rapidly converging Newton-Raphson scheme. The 2-D volume is discretized using finite differences on a fully staggered grid and marker-in-cell techniques. An adaptive free-surface approximation is used to modulate the air viscosity with the time step, which allows stresses to vanish on the free surface during the propagation of fast slipping events. We present a set of increasingly complex models in which we investigate how inertia, radiation damping, thermally activated non-linear rheology and off-megathrust splay-fault events affect sequences of seismic and aseismic slip on a simplified subduction megathrust. The new method provides a unique computational framework to analyse earthquake sequences and to connect forearc deformation with the dynamic properties of the megathrust, thus providing a physical link between observations spanning from slow interseismic strain accumulation to localized coseismic slip of individual earthquakes and post-seismic viscoelastic relaxation.

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