Comparison of high-order moment models for the ion dynamics in a bounded low-temperature plasma
Anatole Berger, Thierry Magin, Anne Bourdon, Alejandro Alvarez Laguna

TL;DR
This paper evaluates high-order moment models for ion dynamics in low-temperature plasmas, demonstrating their ability to accurately reproduce non-equilibrium ion distributions more efficiently than kinetic simulations.
Contribution
It compares various high-order moment closures, assesses their accuracy against kinetic simulations, and proposes efficient numerical methods for plasma modeling.
Findings
High-order moment models accurately capture ion transport and non-equilibrium distributions.
HyQMOM closure provides robust and accurate results in both bulk and sheath regions.
Classical fluid models are inadequate for low-pressure plasma regimes.
Abstract
Low-temperature plasmas often present non-equilibrium ion distribution functions due to the collisions with the background gas and the presence of strong electric fields. This non-equilibrium is beyond classical fluid models, often requiring computationally-intensive kinetic simulations. In our work, we study high-order moment models in order to capture the non-equilibrium state with a macroscopic set of equations, which is more computationally efficient than kinetic simulations. We compare numerical simulations of different moment closures: Grad's closure, the hyperbolic quadrature method of moments (HyQMOM), the extended quadrature method of moments, and a method based on entropy maximization. We assess the different closures for plasma applications and propose efficient numerical discretizations. The numerical solution of the high-order moment models is compared to kinetic…
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Taxonomy
TopicsDust and Plasma Wave Phenomena · Magnetic confinement fusion research · Atomic and Molecular Physics
