Structuro-elasto-plasticity (StEP) model for plasticity in disordered solids

ORAL

Abstract

Disordered solids all yield at a common shear strain of about 3%, but the behavior beyond yield is different for different systems and for systems with different histories. Foams can deform indefinitely without fracturing, many systems exhibit crackling noise or avalanche behavior, and still others exhibit shear banding and brittle fracture. A phenomenological model capable of capturing and predicting these behaviors from microscopic properties and interactions has long been sought. We previously studied avalanches in an athermal, jammed packing of Hertzian particles that is sheared quasistatically, and disentangled the interplay between rearrangements, strain, and softness, a machine-learned structural descriptor that predicts the propensity of a particle to rearrange. We now use those microscopic results to construct a coarse-grained structuro-elasto-plasticity (StEP) model and explore its behavior.

*This work was supported by U.S. DOE Basic Energy Sciences via DE-FG02-05ER46199, the UPenn MRSEC NSF-DMR-1720530 and the Simons Foundation for the Cracking the Glass Problem Collaboration Award #454945 to AJL.

Presenters

  • Ge Zhang

    • University of Pennsylvania

Authors

  • Ge Zhang

    • University of Pennsylvania
  • Hongyi Xiao

    • University of Pennsylvania
  • Robert Ivancic

    • University of Pennsylvania
    • National Institute of Standards and Technology
  • Entao Yang

    • University of Pennsylvania
    • Department of Chemical and Biomolecular Engineering, University of Pennsylvania
  • Robert Riggleman

    • University of Pennsylvania
    • Chemical and Biomolecular Engineering, University of Pennsylvania
    • Department of Chemical and Biomolecular Engineering, University of Pennsylvania
  • Douglas J Durian

    • University of Pennsylvania
  • Andrea Liu

    • University of Pennsylvania
    • Department of Physics and Astronomy, University of Pennsylvania