Diffuse-interface modeling and simulation of the freezing of binary fluids with the Marangoni effect

Fuente: arXiv
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Main Authors: Huang, Jiangxu, Chai, Zhenhua, Liu, Xi, Huang, Changsheng
Format: Preprint
Published: 2025
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author Huang, Jiangxu
Chai, Zhenhua
Liu, Xi
Huang, Changsheng
author_facet Huang, Jiangxu
Chai, Zhenhua
Liu, Xi
Huang, Changsheng
contents This paper proposes a diffuse-interface model for simulating gas-liquid-solid multiphase flows involving solid-liquid phase change, solute transport, and the Marangoni effect. In this model, a phase-field method is employed to capture the evolution of fluid-fluid interfaces, while an enthalpy-based approach is used to describe the temperature field and implicitly track the solid-liquid interface. Solute transport is modeled using a constrained scalar-transport model combined with a pseudo-potential concentration approach. The proposed diffuse-interface model satisfies the reduction consistency, and can degenerate to the conservative phase-field method for incompressible two-phase flow and the classical enthalpy method for binary material solidification in an appropriate way. Furthermore, the model not only can preserve the mass conservation, but also can capture the volume change induced by phase change. To solve the diffuse-interface model, a lattice Boltzmann (LB) method is then developed, and the numerical tests demonstrate that the method has a good performance in the study of the freezing process coupled with Marangoni flow, phase-change-induced volume change, and solute transport. Finally, the model is applied to investigate the freezing dynamics of a system containing an insoluble impurity, revealing the complex interaction between the advancing freezing front and the impurity. It is found that the numerical results are in good agreement with experimental data.
format Preprint
id arxiv_https___arxiv_org_abs_2511_09422
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Diffuse-interface modeling and simulation of the freezing of binary fluids with the Marangoni effect
Huang, Jiangxu
Chai, Zhenhua
Liu, Xi
Huang, Changsheng
Fluid Dynamics
This paper proposes a diffuse-interface model for simulating gas-liquid-solid multiphase flows involving solid-liquid phase change, solute transport, and the Marangoni effect. In this model, a phase-field method is employed to capture the evolution of fluid-fluid interfaces, while an enthalpy-based approach is used to describe the temperature field and implicitly track the solid-liquid interface. Solute transport is modeled using a constrained scalar-transport model combined with a pseudo-potential concentration approach. The proposed diffuse-interface model satisfies the reduction consistency, and can degenerate to the conservative phase-field method for incompressible two-phase flow and the classical enthalpy method for binary material solidification in an appropriate way. Furthermore, the model not only can preserve the mass conservation, but also can capture the volume change induced by phase change. To solve the diffuse-interface model, a lattice Boltzmann (LB) method is then developed, and the numerical tests demonstrate that the method has a good performance in the study of the freezing process coupled with Marangoni flow, phase-change-induced volume change, and solute transport. Finally, the model is applied to investigate the freezing dynamics of a system containing an insoluble impurity, revealing the complex interaction between the advancing freezing front and the impurity. It is found that the numerical results are in good agreement with experimental data.
title Diffuse-interface modeling and simulation of the freezing of binary fluids with the Marangoni effect
topic Fluid Dynamics
url https://arxiv.org/abs/2511.09422