HR: 0830h
AN: NG41B-0061 [PDF]
TI: Mean-field studies of a slider-block model with noise
AU: * Morein, G
EM: glebmorein@yahoo.com
AF: Center for Computational Science and Engineering, University of California
One Shields Ave, Davis, CA 95616 United States
AU: Rundle, J
EM: jbrundle@ucdavis.edu
AF: Center for Computational Science and Engineering, University of California
One Shields Ave, Davis, CA 95616 United States
AU: Klein, W
EM: klein@buphy.bu.edu
AF: Department of Physics, Boston University
590 Commonwealth Ave, Boston, MA 02215 United States
AB:
We have studied a simple model of earthquake faults based on the cellular automaton version of the slider-block model. The
model is represented by the two-dimensional array of massless blocks connected by springs to its neighbors and the loader
plate. Stress is introduced to the system by moving the loader plate with infinitesimally low velocity and stress is
dissipated by the toppling sites. The residual value of the toppled site is a random variable with prescribed noise
amplitude. The model described is one of the variants of the Rundle-Jackson-Brown (RJB) model. We conduct systematic studies
of noise dependence of our model in mean and near mean-field. In mean-field every site interacts with all other sites of the
grid, that is the system has infinite range of interaction, while in the near mean-field case the range of interaction is
large but final. Theoretical and numerical results presented here show that the distribution of avalanches in this model
exhibits strong deviations from the expected simple power law distribution. The value of the noise parameter effectively
restricts the evolution of the system in the phase-space, controlling the transition from exact periodic to totally chaotic
behavior. Exact, scaling and numerical results are shown and possible relations to real earthquakes are discussed.
DE: 3210 Modeling
DE: 3220 Nonlinear dynamics
DE: 3230 Numerical solutions
DE: 3240 Chaos
DE: 7209 Earthquake dynamics and mechanics
SC: Nonlinear Geophysics [NG]
MN: 2003 Fall Meeting