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Machine learning reveals strain-rate-dependent predictability of discrete dislocation plasticity

Materials Science 2022-06-03 v2 Computational Physics

Abstract

Predicting the behaviour of complex systems is one of the main goals of science. An important example is plastic deformation of micron-scale crystals, a process mediated by collective dynamics of dislocations, manifested as broadly distributed strain bursts and significant sample-to-sample variations in the response to applied loading. Here, by combining large-scale discrete dislocation dynamics simulations and machine learning, we study the problem of predicting the fluctuating stress-strain curves of individual small single crystals subject to strain-controlled loading using features of the initial dislocation configurations as input. Our results reveal an intriguing rate dependence of deformation predictability: For small strains predictability improves with increasing strain rate, while for larger strains the predictability vs strain rate relation becomes non-monotonic. We show that for small strains the rate-dependence of deformation predictability can be captured by considering the fraction of dislocations moving against the direction imposed by the external stress, serving as a measure of strain-rate-dependent complexity of the dislocation dynamics. The non-monotonic predictability vs strain rate relation for large strains is argued to be related to a transition from fluctuating to smooth plastic flow when strain rate is increased.

Keywords

Cite

@article{arxiv.2111.07362,
  title  = {Machine learning reveals strain-rate-dependent predictability of discrete dislocation plasticity},
  author = {Marcin Mińkowski and David Kurunczi-Papp and Lasse Laurson},
  journal= {arXiv preprint arXiv:2111.07362},
  year   = {2022}
}
R2 v1 2026-06-24T07:37:49.852Z