Simulation of nonideal gases and liquid-gas phase transitions by the lattice Boltzmann equation
Abstract
We describe in detail a recently proposed lattice-Boltzmann model [X. Shan and H. Chen, Phys. Rev. E 47, 1815 (1993)] for simulating flows with multiple phases and components. In particular, the focus is on the modeling of one-component fluid systems which obey nonideal gas equations of state and can undergo a liquid-gas-type phase transition. The model is shown to be momentum conserving. From the microscopic mechanical stability condition, the densities in bulk liquid and gas phases are obtained as functions of a temperaturelike parameter. Comparisons with the thermodynamic theory of phase transitions show that the lattice-Boltzmann-equation model can be made to correspond exactly to an isothermal process. The density profile in the liquid-gas interface is also obtained as a function of the temperaturelike parameter and is shown to be isotropic. The surface tension, which can be changed independently, is calculated. The analytical conclusions are verified by numerical simulations.
- Publication:
-
Physical Review E
- Pub Date:
- April 1994
- DOI:
- arXiv:
- arXiv:comp-gas/9401001
- Bibcode:
- 1994PhRvE..49.2941S
- Keywords:
-
- 47.55.Kf;
- 02.70.-c;
- 05.70.Fh;
- Particle-laden flows;
- Computational techniques;
- simulations;
- Phase transitions: general studies;
- Nonlinear Sciences - Cellular Automata and Lattice Gases
- E-Print:
- 24 pages, compressed and uuencoded PS file, Figures included