A Unified Gas-kinetic Scheme for Continuum and Rarefied Flows IV: full Boltzmann and Model Equations
Chang Liu, Kun Xu, Quanhua Sun, Qingdong Cai

TL;DR
This paper advances the unified gas-kinetic scheme (UGKS) by incorporating the full Boltzmann collision term, enabling accurate multiscale flow simulations from kinetic to hydrodynamic regimes with proven stability and asymptotic properties.
Contribution
The work introduces a new UGKS formulation with full Boltzmann collision integral, enhancing multiscale flow modeling across continuum and rarefied regimes.
Findings
Achieves asymptotic preserving property for Navier-Stokes and Boltzmann solutions.
Provides a stable and accurate scheme for transition regime flows.
Enables direct modeling across a continuous spectrum of flow scales.
Abstract
Fluid dynamic equations are valid in their respective modeling scales. With a variation of the modeling scales, theoretically there should have a continuous spectrum of fluid dynamic equations. In order to study multiscale flow evolution efficiently, the dynamics in the computational fluid has to be changed with the scales. A direct modeling of flow physics with a changeable scale may become an appropriate approach. The unified gas-kinetic scheme (UGKS) is a direct modeling method in the mesh size scale, and its underlying flow physics depends on the resolution of the cell size relative to the particle mean free path. The cell size of UGKS is not limited by the particle mean free path. With the variation of the ratio between the numerical cell size and local particle mean free path, the UGKS recovers the flow dynamics from the particle transport and collision in the kinetic scale to the…
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