Development of phase-field model based on balance laws and thermodynamic discussion
In this work, a phase-field model for recrystallization is developed based on the conservation laws. There has been no attempt to develop a phase-field model of recrystallization based on the conservation laws, even though various phase-field simulation models to reproduce the recrystallization phen...
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doaj-4887ad818de24832a2d052c363082c682020-11-25T03:40:10ZengAIP Publishing LLCAIP Advances2158-32262020-09-01109095325095325-1310.1063/5.0021881Development of phase-field model based on balance laws and thermodynamic discussionMayu Muramatsu0Kazuyuki Shizawa1Department of Mechanical Engineering, Keio University, 3-14-1, Hiyoshi, Kohoku-ku, Yokohama 223-8522, JapanDepartment of Mechanical Engineering, Keio University, 3-14-1, Hiyoshi, Kohoku-ku, Yokohama 223-8522, JapanIn this work, a phase-field model for recrystallization is developed based on the conservation laws. There has been no attempt to develop a phase-field model of recrystallization based on the conservation laws, even though various phase-field simulation models to reproduce the recrystallization phenomenon have been proposed. However, it is unclear what conservation laws are required for such a model. In the previous paper, toward solving this problem, we developed conservation laws of mass, momentum, angular momentum, and energy and a law of entropy at the lattice scale for the process of recrystallization. In this paper, first, two continuous variables, i.e., the order parameter and crystal orientation, are introduced into the balance equation of mass for a single phase and that of angular momentum for the lattice, respectively. Next, the fluxes of the order parameter and crystal orientation are derived from the law of entropy by the use of rational thermodynamics. Moreover, the diffusion coefficient and mass source are modeled to derive the evolution equations, i.e., phase-field equations of the order parameter and crystal orientation. Finally, for the phase-field equation of the crystal orientation, neglecting the conservative part and integrating the equation with respect to time under the first-order approximation, a phase-field model that is used for stable calculations is developed. This work aims to develop a phase-field theory on the basis of the change in crystal lattice during recrystallization. This paper gives a physical background to the methodological phase-field approach in the case of recrystallization.http://dx.doi.org/10.1063/5.0021881 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mayu Muramatsu Kazuyuki Shizawa |
spellingShingle |
Mayu Muramatsu Kazuyuki Shizawa Development of phase-field model based on balance laws and thermodynamic discussion AIP Advances |
author_facet |
Mayu Muramatsu Kazuyuki Shizawa |
author_sort |
Mayu Muramatsu |
title |
Development of phase-field model based on balance laws and thermodynamic discussion |
title_short |
Development of phase-field model based on balance laws and thermodynamic discussion |
title_full |
Development of phase-field model based on balance laws and thermodynamic discussion |
title_fullStr |
Development of phase-field model based on balance laws and thermodynamic discussion |
title_full_unstemmed |
Development of phase-field model based on balance laws and thermodynamic discussion |
title_sort |
development of phase-field model based on balance laws and thermodynamic discussion |
publisher |
AIP Publishing LLC |
series |
AIP Advances |
issn |
2158-3226 |
publishDate |
2020-09-01 |
description |
In this work, a phase-field model for recrystallization is developed based on the conservation laws. There has been no attempt to develop a phase-field model of recrystallization based on the conservation laws, even though various phase-field simulation models to reproduce the recrystallization phenomenon have been proposed. However, it is unclear what conservation laws are required for such a model. In the previous paper, toward solving this problem, we developed conservation laws of mass, momentum, angular momentum, and energy and a law of entropy at the lattice scale for the process of recrystallization. In this paper, first, two continuous variables, i.e., the order parameter and crystal orientation, are introduced into the balance equation of mass for a single phase and that of angular momentum for the lattice, respectively. Next, the fluxes of the order parameter and crystal orientation are derived from the law of entropy by the use of rational thermodynamics. Moreover, the diffusion coefficient and mass source are modeled to derive the evolution equations, i.e., phase-field equations of the order parameter and crystal orientation. Finally, for the phase-field equation of the crystal orientation, neglecting the conservative part and integrating the equation with respect to time under the first-order approximation, a phase-field model that is used for stable calculations is developed. This work aims to develop a phase-field theory on the basis of the change in crystal lattice during recrystallization. This paper gives a physical background to the methodological phase-field approach in the case of recrystallization. |
url |
http://dx.doi.org/10.1063/5.0021881 |
work_keys_str_mv |
AT mayumuramatsu developmentofphasefieldmodelbasedonbalancelawsandthermodynamicdiscussion AT kazuyukishizawa developmentofphasefieldmodelbasedonbalancelawsandthermodynamicdiscussion |
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