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arXiv · 2307.06573

Gas-Kinetic Scheme for Partially Ionized Plasma in Hydrodynamic Regime

Abstract

Most plasmas are only partially ionized. To better understand the dynamics of these plasmas, the behaviors of a mixture of neutral species and plasma in ideal magnetohydrodynamic states are investigated. The current approach is about the construction of coupled kinetic models for the neutral gas, electron, and proton, and the development of the corresponding gas-kinetic scheme (GKS) for the solution in the continuum flow regime. The scheme is validated in the 1D Riemann problem for an enlarged system with the interaction from the Euler waves of the neutral gas and magnetohydrodynamic ones of the plasma. Additionally, the Orszag-Tang vortex problem across different ionized states is tested to examine the influence of neutrals on the MHD wave evolution. These tests demonstrate that the proposed scheme can capture the fundamental features of ideal partially ionized plasma, and a transition in the wave structure from the ideal MHD solution of the fully ionized plasma to the Euler solution of the neutral gas is obtained.

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BibTeXRIS

Zhigang Pu, Chang Liu, Kun Xu. 2023-07-13. Gas-Kinetic Scheme for Partially Ionized Plasma in Hydrodynamic Regime. https://arxiv.org/abs/2307.06573

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