Achieving thermodynamic consistency in a class of free-energy multiphase lattice Boltzmann models
Q. Li, Y. Yu, R. Z. Huang

TL;DR
This paper proposes an improved free-energy lattice Boltzmann model that eliminates thermodynamic inconsistency at the discrete level, reducing spurious currents and enhancing the accuracy of multiphase flow simulations.
Contribution
The study introduces a modified equation of state to remove discretization errors, ensuring thermodynamic consistency in free-energy LB models at the lattice level.
Findings
Significantly reduces spurious currents in simulations.
Eliminates thermodynamic inconsistency at the discrete level.
Validates the improved scheme through numerical experiments.
Abstract
The free-energy lattice Boltzmann (LB) model is one of the major multiphase models in the LB community. The present study is focused on a class of free-energy LB models in which the divergence of thermodynamic pressure tensor or its equivalent form expressed by the chemical potential is incorporated into the LB equation via a forcing term. Although this class of free-energy LB models may be thermodynamically consistent at the continuum level, it suffers from thermodynamic inconsistency at the discrete lattice level owing to numerical errors [Guo et al., Physical Review E 83, 036707 (2011)]. The numerical error term mainly includes two parts, one comes from the discrete gradient operator and the other can be identified in a high-order Chapman-Enskog analysis. In this paper, we propose an improved scheme to eliminate the thermodynamic inconsistency of the aforementioned class of…
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