Computational Materials Science2022,Vol.20720.DOI:10.1016/j.commatsci.2022.111261

Grand-potential-based phase-field model of dissolution/precipitation: Lattice Boltzmann simulations of counter term effect on porous medium

Boutin, Teo Verdier, Werner Cartalade, Alain
Computational Materials Science2022,Vol.20720.DOI:10.1016/j.commatsci.2022.111261

Grand-potential-based phase-field model of dissolution/precipitation: Lattice Boltzmann simulations of counter term effect on porous medium

Boutin, Teo 1Verdier, Werner 1Cartalade, Alain1
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作者信息

  • 1. Univ Paris Saclay
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Abstract

Most of the lattice Boltzmann methods simulate an approximation of the sharp interface problem of dissolution and precipitation. In such studies the curvature-driven motion of interface is neglected in the Gibbs-Thomson condition. In order to simulate those phenomena with or without curvature-driven motion, we propose a phase-field model which is derived from a thermodynamic functional of grand-potential. Compared to the free energy, the main advantage of the grand-potential is to provide a theoretical framework which is consistent with the equilibrium properties such as the equality of chemical potentials. The model is composed of one equation for the phase-field phi coupled with one equation for the chemical potential mu. In the phase-field method, the curvature-driven motion is always contained in the phase-field equation. For canceling it, a counter term must be added in the phi-equation. For reason of mass conservation, the mu-equation is written with a mixed formulation which involves the composition c and the chemical potential. The closure relationship between c and mu is derived by assuming quadratic free energies for the bulk phases. The anti-trapping current is also considered in the composition equation for simulations with null solid diffusion. The lattice Boltzmann schemes are implemented in LBM_saclay, a numerical code running on various High Performance Computing architectures. Validations are carried out with analytical solutions representative of dissolution and precipitation. Simulations with or without counter term are compared on the shape of porous medium characterized by microtomography. The computations have run on a single GPU-V100.

Key words

Phase-field model/Grand-potential/Lattice Boltzmann method/Dissolution/precipitation/Porous media/LBM_saclay code/MULTIPHASE FLOWS/ASYMPTOTICS/EQUATION/SCHEMES/GROWTH/SCALE

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出版年

2022
Computational Materials Science

Computational Materials Science

EISCI
ISSN:0927-0256
被引量1
参考文献量53
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