Consistent transport properties in multicomponent two-temperature magnetized plasmas:
Alejandro Alvarez Laguna (LPP), Quentin Wargnier (CMAP), A. Laguna,, James Scoggins (EM2C), Nagi Mansour (NAS), Marc Massot (CMAP), Thierry Magin

TL;DR
This paper develops a multicomponent two-temperature magnetized plasma fluid model, incorporating electromagnetic effects and transport properties, specifically tailored for the Sun's chromosphere, validated against existing theories and simulations.
Contribution
It introduces a comprehensive fluid model for partially to fully ionized plasmas, including transport properties and electromagnetic coupling, with validation against classical plasma theories.
Findings
Transport properties agree with Braginskii's expressions in fully ionized limit.
Computed transport coefficients for Helium-Hydrogen mixture relevant to the Sun's chromosphere.
Model extends validity range for solar chromosphere conditions.
Abstract
A fluid model is developed for multicomponent two-temperature magnetized plasmas in chemical non-equilibrium from the partially- to fully-ionized collisional regimes. We focus on transport phenomena aiming at representing the chromosphere of the Sun. Graille et al. [M3AS 19(04):527-599, 2009] have derived an asymptotic fluid model for multicomponent plamas from kinetic theory, yielding a rigorous description of the dissipative effects. The governing equations and consistent transport properties are obtained using a multiscale Chapman-Enskog perturbative solution to the Boltzmann equation based on a non-dimensional analysis. The mass disparity between the electrons and heavy particles is accounted for, as well as the influence of the electromagnetic field. We couple this model to the Maxwell equations for the electromagnetic field and derive the generalized Ohm's law for multicomponent…
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