Title of article :
Criterion of numerical instability of liquid state in LBE simulationsI
Author/Authors :
Alexander L. Kupershtokh، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2010
Abstract :
The numerical stability of the lattice Boltzmann equation (LBE) method in simulations
of a fluid described by an equation of state with possible vapor liquid phase transitions
is considered. The Courant Friedrichs Lewy number defined by the advection term in
the Boltzmann equation is exactly equal to unity in classical LBE models. However, this
condition does not ensure the numerical stability of LBE simulations with the equation
of state. In our numerical LBE simulations, we find out that instability arises initially in
the liquid phase, even if the vapor phase and, consequently, the vapor liquid interface
are absent. We demonstrate both in numerical tests and theoretically that the numerical
stability of LBE simulations requires the criterion Qc Qccr to be fulfilled for the liquid phase,
where Qc D cs1t=h is the hydrodynamic Courant number. The hydrodynamic Courant
number is proportional to the speed of sound cs, obtained from an equation of state of
a fluid. This criterion is very similar to the well-known criteria of numerical stability of
explicit finite difference schemes for a compressible fluid. The critical value of the Courant
number Qccr depends neither on the temperature T , nor on the fluid velocity, nor on the
form of the equation of state. This critical value is equal to Qccr D 1:1547 for the kinetic
temperature of LBE pseudo-particles Q D 1=3.
Keywords :
Lattice Boltzmann equation method , Equation of state , Phase transition , Stability of LBE simulations
Journal title :
Computers and Mathematics with Applications
Journal title :
Computers and Mathematics with Applications