English

Origin of the Bauschinger Effect in Amorphous Solids

Materials Science 2020-05-27 v2

Abstract

We study the structural origin of the Bauschinger effect by accessing numerically the local plastic thresholds in the steady state flow of a two-dimensional model glass under athermal quasistatic deformation. More specifically, we compute the local residual strength, Δτc\Delta\tau^{c}, for arbitrary loading orientations and find that plastic deformation generically induces material polarization, i.e., a forward-backward asymmetry in the Δτc\Delta\tau^{c} distribution. In steady plastic flow, local packings are on average closer to forward (rather than backward) instabilities, due to the stress-induced bias of barriers. However, presumably due to mechanical noise, a significant fraction of zones lie close to reverse (backward) yielding, as the distribution of Δτc\Delta\tau^{c} for reverse shearing extends quasilinearly down to zero local residual strength. By constructing an elementary model of the early plastic response, we then show that unloading causes reverse plasticity of a growing amplitude, i.e., reverse softening, while it shifts away forward-yielding barriers. This result in an inversion of polarization in the low-Δτc\Delta\tau^{c} region and, consequently, in the Bauschinger effect. This scenario is quite generic, which explains the pervasiveness of the effect.

Keywords

Cite

@article{arxiv.1906.09818,
  title  = {Origin of the Bauschinger Effect in Amorphous Solids},
  author = {Sylvain Patinet and Armand Barbot and Matthias Lerbinger and Damien Vandembroucq and Anaël Lemaître},
  journal= {arXiv preprint arXiv:1906.09818},
  year   = {2020}
}
R2 v1 2026-06-23T10:01:40.065Z