AMADEUS Project and Microscopic Simulation of Boiling Two-Phase Flow by the Lattice-Boltzmann Method

Author:

Kato Yasuyoshi1,Kono Koji1,Seta Takeshi1,Martínez Daniel2,Chen Shiyi2

Affiliation:

1. Institute of Applied Energy, Shimbashi SY Bldg., 14-2 Nishishimbashi 1-chome, Minato-ku, Tokyo 105, Japan

2. IBM T. J. Watson Research Center, P. O. Box 218, Yorktown Heights, New York 10598, USA

Abstract

A two-dimensional lattice-Boltzmann model with a hexagonal lattice is developed to simulate a boiling two-phase flow microscopically. Liquid-gas phase transition and bubble dynamics, including bubble formation, growth and deformation, are modeled by using an interparticle potential based on the van der Waals equation of state. Thermohydrodynamics is incorporated into the model by adding extra velocities to define temperature. The lattice-Boltzmann model is solved by a finite difference scheme so that numerical stability can be ensured at large discontinuity across the liquid-gas phase boundary and the narrow phase interface thickness can be attained. It is shown from numerical simulations that the model has the ability to reproduce phase transition, bubble dynamics and thermohydrodynamics while assuring numerical instability and narrow phase interface.

Publisher

World Scientific Pub Co Pte Lt

Subject

Computational Theory and Mathematics,Computer Science Applications,General Physics and Astronomy,Mathematical Physics,Statistical and Nonlinear Physics

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3. LATTICE BOLTZMANN SIMULATION OF VAPOR–LIQUID EQUILIBRIUM ON 3D FINITE LATTICE;International Journal of Modern Physics C;2004-03

4. Thermal Lattice Boltzmann Method for Liquid-Gas Two-Phase Flows in Two Dimension;JSME International Journal Series B;2004

5. Lattice Boltzmann methods for two-phase flow modeling;Annals of Nuclear Energy;2002-08

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