Kinetic view on dynamic plasticity of crystalline solids

Fuente: arXiv
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Autores principales: Borodin, Elijah, Barroso, Afonso D. M., Jivkov, Andrey P.
Formato: Preprint
Publicado: 2024
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author Borodin, Elijah
Barroso, Afonso D. M.
Jivkov, Andrey P.
author_facet Borodin, Elijah
Barroso, Afonso D. M.
Jivkov, Andrey P.
contents Microstructural changes in solids, driven by energy flows, do not develop in a static continuous space, such as the space considered in conventional plasticity models. The applied forces create an evolving internal energy landscape, which is constrained by crystallography but has characteristic spatial and temporal scales that form dynamically. To describe this view, we replace a common model for the evolution of dislocation substructure in metals with the evolution of microscopic slips in a combinatorial structure referred to as a polytopal cell complex (PCC). The micro-slips are associated with the 2-cells (faces) of the PCC and are driven by the minimisation of a properly defined Lagrangian. The approach provides a comprehensive statistical and thermodynamic description of plastic flow development. It allows the investigation of energy levels associated with different slip systems and reveals the microscopic mechanisms that result in the phenomenon of strain rate sensitivity.
format Preprint
id arxiv_https___arxiv_org_abs_2412_14105
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Kinetic view on dynamic plasticity of crystalline solids
Borodin, Elijah
Barroso, Afonso D. M.
Jivkov, Andrey P.
Materials Science
Soft Condensed Matter
Computational Physics
Microstructural changes in solids, driven by energy flows, do not develop in a static continuous space, such as the space considered in conventional plasticity models. The applied forces create an evolving internal energy landscape, which is constrained by crystallography but has characteristic spatial and temporal scales that form dynamically. To describe this view, we replace a common model for the evolution of dislocation substructure in metals with the evolution of microscopic slips in a combinatorial structure referred to as a polytopal cell complex (PCC). The micro-slips are associated with the 2-cells (faces) of the PCC and are driven by the minimisation of a properly defined Lagrangian. The approach provides a comprehensive statistical and thermodynamic description of plastic flow development. It allows the investigation of energy levels associated with different slip systems and reveals the microscopic mechanisms that result in the phenomenon of strain rate sensitivity.
title Kinetic view on dynamic plasticity of crystalline solids
topic Materials Science
Soft Condensed Matter
Computational Physics
url https://arxiv.org/abs/2412.14105