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Diffuse-interface modeling and energy-stable numerical framework for the heat transfer-coupled two-phase fluids in contact with solids
Zhu, Fang1; Sun, Keyue1; Zhang, Guangtao2,3; Yang, Junxiang1
2025-03-01
Source PublicationJournal of Computational Physics
ISSN0021-9991
Volume524Pages:113699
Abstract

To efficiently simulate the heat transfer-coupled two-phase fluid flows with wetting condition in irregular domains, we develop a diffuse-interface heat fluid system. A traditional ternary Cahn–Hilliard model is modified to approximate the damping of solid on fluid. Based on equilibrium interface assumption and Young's equality, an extra term reflecting wetting contact line is derived and added into the diffuse-interface model. The heat transfer and fluid dynamics are described by coupling the penalized incompressible Navier–Stokes equations and a diffusion conduction equation with variable coefficients. The proposed model can efficiently describe complex heat fluid flows in contact with solids because the computations are implemented in regular rectangular domains. The complex techniques for the treatment of fluid-solid boundary are not necessary. Moreover, the proposed model also leads to an energy dissipation law. To satisfy this basic physical property in simulation, we propose linear, totally decoupled, and second-order energy-stable scheme to update the solutions. The time-discretized energy law is analytically estimated. In each time step, the solutions can be easily obtained by solving several linear elliptic-type equations in a step-by-step manner. Extensive numerical experiments in two- and three-dimensional spaces are implemented to validate the accuracy and stability of our method. These results also indicate that the proposed method has good potential in simulating complex fluid flows with heat transfer.

KeywordTwo-phase Fluids Heat Transfer Contact Angle Energy-stable Method
DOI10.1016/j.jcp.2024.113699
URLView the original
Language英語English
PublisherAcademic Press Inc.
Scopus ID2-s2.0-85213529140
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Citation statistics
Document TypeJournal article
CollectionDEPARTMENT OF MATHEMATICS
Corresponding AuthorYang, Junxiang
Affiliation1.School of Computer Science and Engineering, Faculty of Innovation Engineering, Macau University of Science and Technology, Macao
2.Department of Mathematics, Faculty of Science and Technology, University of Macau, Macao
3.SandGold AI Research, Guangzhou, Guangdong, China
First Author AffilicationUniversity of Macau
Corresponding Author AffilicationUniversity of Macau
Recommended Citation
GB/T 7714
Zhu, Fang,Sun, Keyue,Zhang, Guangtao,et al. Diffuse-interface modeling and energy-stable numerical framework for the heat transfer-coupled two-phase fluids in contact with solids[J]. Journal of Computational Physics, 2025, 524, 113699.
APA Zhu, Fang., Sun, Keyue., Zhang, Guangtao., & Yang, Junxiang (2025). Diffuse-interface modeling and energy-stable numerical framework for the heat transfer-coupled two-phase fluids in contact with solids. Journal of Computational Physics, 524, 113699.
MLA Zhu, Fang,et al."Diffuse-interface modeling and energy-stable numerical framework for the heat transfer-coupled two-phase fluids in contact with solids".Journal of Computational Physics 524(2025):113699.
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