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Thermodynamically consistent phase-field modeling and numerical simulation for reactive two-phase fluid-solid dynamics

delete2026-08-01
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PRE
AI
C
Cedric Riethmüller *
L
Lars von Wolff
D
Dominik Göddeke
C
Christian Rohde
DOI:10.1016/j.cma.2026.119278delete
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Abstract

Abstract

En 中文
We introduce a coupled Cahn-Hilliard Navier-Stokes model that governs the reactive two-phase dynamics of a system that consists of a fluid and a solid phase and prove its thermodynamic consistency. Moreover, we present an associated fully-discrete numerical method that relies on a continuous finite element approach and a semi-implicit time-stepping method. Our main theoretical result establishes that the fully discrete method satisfies an analog of the free energy dissipation inequality, provided that the phase-field variable remains within prescribed bounds. Numerical experiments confirm the theoretical findings and show the applicability of the method for realistic settings. In this context, we provide a preprocessing strategy that enables computing fluid flow in complex geometries given a sharp-interface formulation of the initial phase distribution. Moreover, we briefly introduce different solution strategies for the novel discretization based on the monolithic and partitioned solution paradigms and assess these in a comparative study.
Keywords:
Phase-field model
Cahn-Hilliard
Navier-Stokes
Thermodynamic consistency
Solution strategies
Precipitation/dissolution

Journal

Computer Methods in Applied Mechanics and Engineering cover
Computer Methods in Applied Mechanics and Engineering
IF:
7.3
Papers:
1.3W
Citations:
5.6W

Organization

U
university of stuttgart
Scholars:
241
Papers: 93
Citations: 0
Cited Papers

Cited Papers

No cited papers available