Local yield stress statistics in model amorphous solids
Armand Barbot, Matthias Lerbinger, Anier Hernandez-Garcia, Reinaldo, Garcia-Garcia, Michael L. Falk, Damien Vandembroucq, Sylvain Patinet

TL;DR
This paper develops a method to measure local yield stresses in amorphous solids, revealing how these stresses depend on quench protocols, correlate with plastic activity, and vary with shear orientation, aiding the development of physical plasticity models.
Contribution
It extends a previous technique to compute local yield stresses at the atomic scale in 2D Lennard-Jones glasses, linking local stress distributions to plastic activity and shear transformations.
Findings
Plastic activity correlates with low local yield stresses.
More relaxed glasses have higher local yield stress thresholds.
Stress drops follow exponential distributions.
Abstract
We develop and extend a method presented in [S. Patinet, D. Vandembroucq, and M. L. Falk, Phys. Rev. Lett., 117, 045501 (2016)] to compute the local yield stresses at the atomic scale in model two-dimensional Lennard-Jones glasses produced via differing quench protocols. This technique allows us to sample the plastic rearrangements in a non-perturbative manner for different loading directions on a well-controlled length scale. Plastic activity upon shearing correlates strongly with the locations of low yield stresses in the quenched states. This correlation is higher in more structurally relaxed systems. The distribution of local yield stresses is also shown to strongly depend on the quench protocol: the more relaxed the glass, the higher the local plastic thresholds. Analysis of the magnitude of local plastic relaxations reveals that stress drops follow exponential distributions,…
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Taxonomy
TopicsMaterial Dynamics and Properties · Metallic Glasses and Amorphous Alloys · Glass properties and applications
