A Unified Gas Kinetic Scheme for Multi-scale and Multi-component Plasma Transport
Chang Liu, Kun Xu

TL;DR
This paper introduces a unified gas kinetic scheme (UGKS) that effectively models multi-scale, multi-component plasma transport by bridging kinetic and hydrodynamic regimes, enabling accurate simulations across diverse plasma phenomena.
Contribution
The paper develops a direct modeling UGKS that seamlessly transitions between kinetic and MHD scales, incorporating implicit coupling with Maxwell equations for comprehensive plasma simulation.
Findings
Successfully simulates Landau damping and two-stream instability.
Accurately models shock waves and MHD turbulence.
Effectively captures magnetic reconnection in transition regimes.
Abstract
A unified gas kinetic scheme (UGKS) for multi-scale and multi-component plasma transport is constructed. The current scheme is a direct modeling method, where the time evolution solutions from the Vlasov-BGK equations of electron and ion and the Maxwell equations are used to construct a scale-dependent plasma simulation model. As a result, with the changing of modeling scales of mesh size and time step and with a variation of Knudsen number and Larmor radius, the discretized governing equations for a wide range of plasma evolution regimes can be obtained. The physics recovered in UGKS ranges from the Vlasov equation in the kinetic scale to different-type magneto-hydrodynamic (MHD) equations in the hydrodynamic scale. The key dynamics in UGKS is the un-splitting treatment of particle collision, acceleration, and transport in the construction of numerical flux across a cell interface. At…
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