Diffusion in mesoscopic lattice models of amorphous plasticity
Abstract
We present results on tagged particle diffusion in a meso-scale lattice model for sheared amorphous material in athermal quasi-static conditions. We find a short time diffusive regime and a long time diffusive regime whose diffusion coefficients depend on system size in dramatically different ways. At short time, we find that the diffusion coefficient, , scales roughly linearly with system length, . This short time behavior is consistent with particle-based simulations. The long-time diffusion coefficient scales like , close to previous studies which found . Furthermore, we show that the near-field details of the interaction kernel do not affect the short time behavior, but qualitatively and dramatically affect the long time behavior, potentially causing a saturation of the mean-squared displacement at long times. Our finding of a short time scaling resolves a long standing puzzle about the disagreement between the diffusion coefficient measured in particle-based models and meso-scale lattice models of amorphous plasticity.
Cite
@article{arxiv.1803.06009,
title = {Diffusion in mesoscopic lattice models of amorphous plasticity},
author = {Botond Tyukodi and Craig E Maloney and Damien Vandembroucq},
journal= {arXiv preprint arXiv:1803.06009},
year = {2018}
}
Comments
5 pages, 5 figures, Supplementary Information