Unified derivation of phase-field models for alloy solidification from a grand-potential functional
arXiv:1105.1670 · doi:10.1103/PhysRevE.84.031601
Abstract
In the literature, two quite different phase-field formulations for the problem of alloy solidification can be found. In the first, the material in the diffuse interfaces is assumed to be in an intermediate state between solid and liquid, with a unique local composition. In the second, the interface is seen as a mixture of two phases that each retain their macroscopic properties, and a separate concentration field for each phase is introduced. It is shown here that both types of models can be obtained by the standard variational procedure if a grand-potential functional is used as a starting point instead of a free-energy functional. The dynamical variable is then the chemical potential instead of the composition. In this framework, a complete analogy with phase-field models for the solidification of a pure substance can be established. This analogy is then exploited to formulate quantitative phase-field models for alloys with arbitrary phase diagrams. The precision of the method is illustrated by numerical simulations with varying interface thickness.
36 pages, 1 figure
References in corpus (5)
- Phase-Field Formulation for Quantitative Modeling of Alloy Solidification
- Quantitative Phase Field Model of Alloy Solidification
- Quantitative phase-field modeling of two-phase solidification
- Towards a quantitative phase-field model of two-phase solidification
- Stability of hexagonal solidification patterns
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