Two-temperature continuum model for viscoplasticity in metals based on fluctuation relation
S Roy Chowdhury, D Roy, J N Reddy

TL;DR
This paper introduces a two-temperature continuum model for metal viscoplasticity based on non-equilibrium thermodynamics and fluctuation relations, capturing defect dynamics and finite deformation in metals.
Contribution
It develops a novel two-temperature framework for metal plasticity, incorporating fluctuation relations and dislocation density as a state variable, extending existing models.
Findings
Model describes plastic deformation without a yield surface.
Incorporates finite deformation and defect dynamics.
Applicable to face-centered cubic metals, with potential extensions.
Abstract
A continuum plasticity model for metals is presented from considerations of non-equilibrium thermodynamics. Of specific interest is the application of a fluctuation relation that subsumes the second law of thermodynamics en route to deriving the evolution equations for the internal state variables. The modeling itself is accomplished in a two-temperature framework that appears naturally by considering the thermodynamic system to be composed of two weakly interacting subsystems, viz. a kinetic vibrational subsystem corresponding to the atomic lattice vibrations and a configurational subsystem of the slower degrees of freedom describing the motion of defects in a plastically deforming metal. When externally driven, the two subsystems, identified with their own temperatures, fall out of equilibrium. An apparently physical nature of the present model derives upon considering the dislocation…
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Taxonomy
TopicsMicrostructure and mechanical properties · Force Microscopy Techniques and Applications · High-pressure geophysics and materials
