Title of article :
Simulation of the Influence of Rate- and State-dependent Friction on the Macroscopic Behavior of Complex Fault Zones with the Lattice Solid Model
Author/Authors :
Donato S. Abe، نويسنده , , J. H. Dieterich، نويسنده , , P. Mora، نويسنده , , D. Place ، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2002
Abstract :
In order to understand the earthquake nucleation process, we need to understand the
effective frictional behavior of faults with complex geometry and fault gouge zones. One important aspect
of this is the interaction between the friction law governing the behavior of the fault on the microscopic
level and the resulting macroscopic behavior of the fault zone. Numerical simulations offer a possibility to
investigate the behavior of faults on many different scales and thus provide a means to gain insight into
fault zone dynamics on scales which are not accessible to laboratory experiments. Numerical experiments
have been performed to investigate the influence of the geometric configuration of faults with a rate- and
state-dependent friction at the particle contacts on the effective frictional behavior of these faults. The
numerical experiments are designed to be similar to laboratory experiments by DIETERICH and KILGORE
(1994) in which a slide-hold-slide cycle was performed between two blocks of material and the resulting
peak friction was plotted vs. holding time. Simulations with a flat fault without a fault gouge have been
performed to verify the implementation. These have shown close agreement with comparable laboratory
experiments. The simulations performed with a fault containing fault gouge have demonstrated a strong
dependence of the critical slip distance Dc on the roughness of the fault surfaces and are in qualitative
agreement with laboratory experiments.
Keywords :
Friction , lattice solid model.
Journal title :
Pure and Applied Geophysics
Journal title :
Pure and Applied Geophysics