Modeling and computation for non-equilibrium gas dynamics: beyond kinetic relaxation model
Xiaocong Xu, Yipei Chen, Kun Xu

TL;DR
This paper advances non-equilibrium gas dynamics modeling by developing a modified UGKWP method that improves accuracy in highly rarefied flows and seamlessly transitions to continuum regimes, outperforming previous models.
Contribution
It introduces a velocity-dependent particle collision time in UGKWP, enhancing non-equilibrium flow simulation accuracy across different flow regimes.
Findings
UGKWP matches DSMC and Boltzmann solutions in rarefied flows.
The modified model improves accuracy in high Mach and Knudsen number cases.
Seamless transition from rarefied to continuum flow regimes achieved.
Abstract
The non-equilibrium gas dynamics is described by the Boltzmann equation, which can be solved numerically through the deterministic and stochastic methods. Due to the complicated collision term of the Boltzmann equation, many kinetic relaxation models have been proposed and used in the past seventy years for the study of rarefied flow. In order to develop a multiscale method for the rarefied and continuum flow simulation, by adopting the integral solution of the kinetic model equation a DVM-type unified gas-kinetic scheme (UGKS) has been constructed. The UGKS models the gas dynamics on the cell size and time step scales while the accumulating effect from particle transport and collision has been taken into account within a time step. Under the UGKS framework, a unified gas-kinetic wave-particle (UGKWP) method has been further developed for non-equilibrium flow simulation, where the time…
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