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Multiphase extension of plasticity model for high energy density conditions

ORAL

Abstract

We recently demonstrated that continuum-level plasticity can be described well for polycrystalline materials in the high energy density (HED) regime, using a single dislocation density and single mobility mechanism calibrated from electronic structure theory, with a single empirical parameter related to the Peierls barrier. We used the atom-in-jellium model for efficiency and wide-ranging predictions, but this model is restricted to elements, is relatively inaccurate at low pressures, and cannot account for polymorphism. Here we extend the calibration of the plasticity model to multiple phases, using multi-ion electronic structure calculations that are more accurate at low pressure and are not limited to elements. A separate calibration of the Peierls barrier parameter is needed for each phase. We demonstrate the calibration and predicted strength behavior for several materials of current interest in HED studies.

Presenters

  • Damian C Swift

    Lawrence Livermore National Laboratory, Lawrence Livermore Natl Lab

Authors

  • Damian C Swift

    Lawrence Livermore National Laboratory, Lawrence Livermore Natl Lab

  • Kazem Alidoost

    Lawrence Livermore Natl Lab, Lawrence Livermore National Laboratory

  • Ryan Austin

    Lawrence Livermore National Laboratory, Lawrence Livermore Natl Lab

  • Tom Lockard

    Lawrence Livermore Natl Lab, Lawrence Livermore National Laboratory

  • Sebastien Hamel

    Lawrence Livermore Natl Lab

  • Christine J Wu

    Lawrence Livermore Natl Lab

  • John E Klepeis

    Lawrence Livermore Natl Lab

  • Philip A Sterne

    Lawrence Livermore Natl Lab

  • James M McNaney

    Lawrence Livermore Natl Lab, Lawrence Livermore National Laboratory