Plate motion in sheared granular fault system
Ke Gao, Robert A. Guyer, Esteban Rougier, Paul A. Johnson

TL;DR
This study uses a combined finite-discrete element method to simulate sheared granular fault systems, revealing how normal load, shear velocity, and plate stiffness influence fault dynamics and gouge shear modulus.
Contribution
It introduces a 2D FDEM simulation approach to analyze fault gouge behavior under various loading conditions, providing new insights into fault mechanics.
Findings
Plate velocities are proportional to normal load.
Gouge shear modulus increases with normal load.
Shear velocity has minor influence on gouge shear modulus.
Abstract
Plate motion near the fault gouge layer, and the elastic interplay between the gouge layer and the plate under stick-slip conditions, is key to understanding the dynamics of sheared granular fault systems. Here, a two-dimensional implementation of the combined finite-discrete element method (FDEM), which merges the finite element method (FEM) and the discrete element method (DEM), is used to explicitly to simulate a sheared granular fault system. We focus on investigating the influence of normal load, driving shear velocity and plate stiffness on the velocities and displacements measured at locations on the upper and lower plates just adjacent to the gouge in the direction parallel to the shear direction (x direction). The simulations show that at slips the plate velocities are proportional to the normal load and may be inversely proportional to the square root of the plate's Young's…
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