Corner transport upwind lattice Boltzmann model for bubble cavitation
Abstract
Aiming to study the bubble cavitation problem in quiescent and sheared liquids, a third-order isothermal lattice Boltzmann (LB) model that describes a two-dimensional () fluid obeying the van der Waals equation of state, is introduced. The evolution equations for the distribution functions in this off-lattice model with 16 velocities are solved using the corner transport upwind (CTU) numerical scheme on large square lattices (up to nodes). The numerical viscosity and the regularization of the model are discussed for first and second order CTU schemes finding that the latter choice allows to obtain a very accurate phase diagram of a nonideal fluid. In a quiescent liquid, the present model allows to recover the solution of the Rayleigh-Plesset equation for a growing vapor bubble. In a sheared liquid, we investigated the evolution of the total bubble area, the bubble deformation and the bubble tilt angle, for various values of the shear rate. A linear relation between the dimensionless deformation coefficient and the capillary number is found at small but with a different factor than in equilibrium liquids. A non-linear regime is observed for .
Cite
@article{arxiv.1802.01272,
title = {Corner transport upwind lattice Boltzmann model for bubble cavitation},
author = {V. Sofonea and T. Biciuşcă and S. Busuioc and Victor E. Ambruş and G. Gonnella and A. Lamura},
journal= {arXiv preprint arXiv:1802.01272},
year = {2018}
}
Comments
Accepted for publication in Phys. Rev. E