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Simulation of phase change during the freezing of unsaturated porous media by using a coupled lattice Boltzmann model.

Authors :
Xu, Fei
Wang, Zheng
Hu, Wei
Yang, Caihao
Li, Xiaolong
Zhang, Yaning
Li, Bingxi
Xie, Gongnan
Source :
International Journal of Numerical Methods for Heat & Fluid Flow. 2024, Vol. 34 Issue 4, p1631-1657. 27p.
Publication Year :
2024

Abstract

Purpose: The purpose of this paper is to develop a coupled lattice Boltzmann model for the simulation of the freezing process in unsaturated porous media. Design/methodology/approach: In the developed model, the porous structure with complexity and disorder was generated by using a stochastic growth method, and then the Shan-Chen multiphase model and enthalpy-based phase change model were coupled by introducing a freezing interface force to describe the variation of phase interface. The pore size of porous media in freezing process was considered as an influential factor to phase transition temperature, and the variation of the interfacial force formed with phase change on the interface was described. Findings: The larger porosity (0.2 and 0.8) will enlarge the unfrozen area from 42 mm to 70 mm, and the rest space of porous medium was occupied by the solid particles. The larger specific surface area (0.168 and 0.315) has a more fluctuated volume fraction distribution. Originality/value: The concept of interfacial force was first introduced in the solid–liquid phase transition to describe the freezing process of frozen soil, enabling the formulation of a distribution equation based on enthalpy to depict the changes in the water film. The increased interfacial force serves to diminish ice formation and effectively absorb air during the freezing process. A greater surface area enhances the ability to counteract liquid migration. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09615539
Volume :
34
Issue :
4
Database :
Academic Search Index
Journal :
International Journal of Numerical Methods for Heat & Fluid Flow
Publication Type :
Periodical
Accession number :
176321509
Full Text :
https://doi.org/10.1108/HFF-08-2023-0501