An implicit adaptive unified gas-kinetic scheme for steady-state solutions of non-equilibrium flows
Wenpei Long, Yufeng Wei, and Kun Xu

TL;DR
This paper introduces an implicit adaptive unified gas-kinetic scheme (IAUGKS) that efficiently and accurately simulates steady-state non-equilibrium flows across all regimes by combining discrete and continuous velocity spaces with implicit methods.
Contribution
The paper develops an implicit adaptive UGKS that enhances efficiency and accuracy for steady-state non-equilibrium flow simulations by coupling microscopic and macroscopic equations.
Findings
Achieves one to two orders of magnitude speedup over original UGKS.
Accurately captures non-equilibrium physics in high Mach number flows.
Demonstrates effectiveness on complex geometries like space stations.
Abstract
Nonequilibrium flows have been frequently encountered in various aerospace engineering applications. To understand nonequilibrium physics, multiscale effects, and the dynamics in these applications, an effective and reliable multiscale scheme for all flow regimes is required. Following the direct modeling methodology, the adaptive unified gas-kinetic scheme employs discrete velocity space (DVS) to accurately capture the non-equilibrium physics, recovering the original unified gas-kinetic scheme (UGKS), and adaptively employs continuous distribution functions based on the Chapman-Enskog expansion to achieve better efficiency. Different regions are dynamically coupled at the cell interface through the fluxes from the discrete and continuous gas distribution functions, thereby avoiding any buffer zone between them. In the current study, an implicit adaptive unified gas-kinetic scheme…
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Taxonomy
TopicsGas Dynamics and Kinetic Theory · Aquatic and Environmental Studies · Advanced Thermodynamics and Statistical Mechanics
