Multiphysics simulations of collisionless plasmas
Simon Lautenbach, Rainer Grauer

TL;DR
This paper presents a hierarchical multiphysics simulation approach for collisionless plasmas, combining kinetic and fluid models at different levels of detail to efficiently study phenomena like magnetic reconnection.
Contribution
It introduces an adaptive, multi-level modeling framework that dynamically switches between kinetic and fluid descriptions for ions and electrons in plasma simulations.
Findings
Successful application to GEM magnetic reconnection challenge
Demonstrated efficiency of multi-level modeling in plasma simulations
Showed that fluid models can approximate kinetic regions effectively
Abstract
Collisionless plasmas, mostly present in astrophysical and space environments, often require a kinetic treatment as given by the Vlasov equation. Unfortunately, the six-dimensional Vlasov equation can only be solved on very small parts of the considered spatial domain. However, in some cases, e.g. magnetic reconnection, it is sufficient to solve the Vlasov equation in a localized domain and solve the remaining domain by appropriate fluid models. In this paper, we describe a hierarchical treatment of collisionless plasmas in the following way. On the finest level of description, the Vlasov equation is solved both for ions and electrons. The next courser description treats electrons with a 10-moment fluid model incorporating a simplified treatment of Landau damping. At the boundary between the electron kinetic and fluid region, the central question is how the fluid moments influence the…
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