Mean field description of aging linear response in athermal amorphous solids
Abstract
We study the linear response to strain in a mean field elastoplastic model for athermal amorphous solids, incorporating the power-law mechanical noise spectrum arising from plastic events. In the "jammed" regime of the model, where the plastic activity exhibits a non-trivial slow relaxation referred to as aging, we find that the stress relaxes incompletely to an age-dependent plateau, on a timescale which grows with material age. We determine the scaling behaviour of this aging linear response analytically, finding that key scaling exponents are universal and independent of the noise exponent . For , we find simple aging, where the stress relaxation timescale scales linearly with the age of the material. At , which corresponds to interactions mediated by the physical elastic propagator, we find instead a scaling arising from the stretched exponential decay of the plastic activity. We compare these predictions with measurements of the linear response in computer simulations of a model jammed system of repulsive soft athermal particles, during its slow dissipative relaxation towards mechanical equilibrium, and find good agreement with the theory.
Keywords
Cite
@article{arxiv.2202.04387,
title = {Mean field description of aging linear response in athermal amorphous solids},
author = {Jack T. Parley and Rituparno Mandal and Peter Sollich},
journal= {arXiv preprint arXiv:2202.04387},
year = {2022}
}
Comments
20 pages, 24 figures (version accepted for publication in Phys. Rev. Materials)