Dynamical stability of a thermally stratified intracluster medium with anisotropic momentum and heat transport
Matthew W. Kunz

TL;DR
This paper investigates how anisotropic viscosity influences the stability of the intracluster medium's magnetic and thermal dynamics, revealing suppression of certain instabilities and destabilization of others, with implications for plasma behavior.
Contribution
It provides a linear stability analysis showing the effects of anisotropic viscosity on the magnetothermal and heat-flux buoyancy instabilities in the ICM.
Findings
Anisotropic viscosity suppresses HBI over much of the wavenumber space.
MTI growth rates are largely unaffected by anisotropic viscosity.
Anisotropic viscosity couples waves, destabilizing Alfvenic fluctuations in certain conditions.
Abstract
In weakly-collisional plasmas such as the intracluster medium (ICM), heat and momentum transport become anisotropic with respect to the local magnetic field direction. Anisotropic heat conduction causes the slow magnetosonic wave to become buoyantly unstable to the magnetothermal instability (MTI) when the temperature increases in the direction of gravity and to the heat-flux--driven buoyancy instability (HBI) when the temperature decreases in the direction of gravity. The local changes in magnetic field strength that attend these instabilities cause pressure anisotropies that viscously damp motions parallel to the magnetic field. In this paper we employ a linear stability analysis to elucidate the effects of anisotropic viscosity (i.e. Braginskii pressure anisotropy) on the MTI and HBI. By stifling the convergence/divergence of magnetic field lines, pressure anisotropy significantly…
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