A novel phase-field model for $N$-phase problems: modeling, asymptotic analysis and numerical simulations
Lun Zhang, Chenxi Wang, Nan Lu, Zhen Zhang

TL;DR
This paper introduces a new multiphase phase-field model that avoids the simplex constraint, ensuring energy stability and asymptotic consistency, validated through numerical simulations of complex multiphase phenomena.
Contribution
A novel phase-field modeling framework for N-phase problems that eliminates the simplex constraint and maintains energy dissipation and asymptotic consistency.
Findings
Model is energy stable and asymptotically consistent with sharp interface limits.
Successfully simulates complex multiphase phenomena like emulsions and liquid lenses.
Numerical results agree well with experimental observations.
Abstract
The classical phase-field modeling approaches for multiphase problems represent each phase using a regularized characteristic function, which necessarily introduces a simplex constraint for the phase-field variables. Additionally, the consistency requirement for phase-field modeling brings difficulties to the construction of nonlinear potentials in the energy functionals, posing significant challenges for classical phase-field modeling and its numerical methods for problems involving many phases. In this work, by adopting a dichotomic approach to represent multiphase, we propose a novel phase-field modeling framework without simplex constraint,in which the free energy is interpolated from the classical two-phase Ginzburg-Landau free energies. We systematically establish the interpolation rules and explicitly construct the interpolation functions, rendering the consistency properties of…
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Taxonomy
TopicsSolidification and crystal growth phenomena · Block Copolymer Self-Assembly · Fluid Dynamics and Thin Films
