Interface-capturing lattice Boltzmann equation model for two-phase flows

Qin Lou and Zhaoli Guo
Phys. Rev. E 91, 013302 – Published 7 January 2015

Abstract

In this work, an interface-capturing lattice Boltzmann equation (LBE) model is proposed for two-phase flows. In the model, a Lax-Wendroff propagation scheme and a properly chosen equilibrium distribution function are employed. The Lax-Wendroff scheme is used to provide an adjustable Courant-Friedrichs-Lewy (CFL) number, and the equilibrium distribution is presented to remove the dependence of the relaxation time on the CFL number. As a result, the interface can be captured accurately by decreasing the CFL number. A theoretical expression is derived for the chemical potential gradient by solving the LBE directly for a two-phase system with a flat interface. The result shows that the gradient of the chemical potential is proportional to the square of the CFL number, which explains why the proposed model is able to capture the interface naturally with a small CFL number, and why large interface error exists in the standard LBE model. Numerical tests, including a one-dimensional flat interface problem, a two-dimensional circular droplet problem, and a three-dimensional spherical droplet problem, demonstrate that the proposed LBE model performs well and can capture a sharp interface with a suitable CFL number.

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  • Received 5 December 2013
  • Revised 30 September 2014

DOI:https://doi.org/10.1103/PhysRevE.91.013302

©2015 American Physical Society

Authors & Affiliations

Qin Lou and Zhaoli Guo*

  • State Key Laboratory of Coal Combustion, Huazhong University of Science and Technology, Wuhan 430074, China

  • *zlguo@hust.edu.cn

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Vol. 91, Iss. 1 — January 2015

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