Interface tracking characteristics of color-gradient lattice Boltzmann model for immiscible fluids

A. Subhedar, A. Reiter, M. Selzer, F. Varnik, and B. Nestler
Phys. Rev. E 101, 013313 – Published 29 January 2020

Abstract

We study the interface tracking characteristics of a color-gradient-based lattice Boltzmann model for immiscible flows. Investigation of the local density change in one of the fluid phases, via a Taylor series expansion of the recursive lattice Boltzmann equation, leads to the evolution equation of the order parameter that differentiates the fluids. It turns out that this interface evolution follows a conservative Allen-Cahn equation with a mobility which is independent of the fluid viscosities and surface tension. The mobility of the interface, which solely depends upon lattice speed of sound, can have a crucial effect on the physical dynamics of the interface. Further, we find that, when the equivalent lattice weights inside the segregation operator are modified, the resulting differential operators have a discretization error that is anisotropic to the leading order. As a consequence, the discretization errors in the segregation operator, which ensures a finite interface width, can act as a source of the spurious currents. These findings are supported with the help of numerical simulations.

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  • Received 5 August 2019

DOI:https://doi.org/10.1103/PhysRevE.101.013313

©2020 American Physical Society

Physics Subject Headings (PhySH)

Fluid Dynamics

Authors & Affiliations

A. Subhedar1,*, A. Reiter1, M. Selzer1,2, F. Varnik3, and B. Nestler1,2

  • 1Institute for Digital Materials Science, Karlsruhe University of Applied Sciences, Moltkestraße 30, 76133 Karlsruhe, Germany
  • 2Institute of Applied Materials-Computational Materials Science, Karlsruhe Institute of Technology, Straße am Forum 7, 76131 Karlsruhe, Germany
  • 3Interdisciplinary Centre for Advanced Materials Simulation, Ruhr-Universität Bochum, Universitätsstrasse 150, 44780 Bochum, Germany

  • *amol.subhedar@hs-karlsruhe.de

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Issue

Vol. 101, Iss. 1 — January 2020

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