Wave instabilities of a collisionless plasma in fluid approximation
N. S. Dzhalilov (1, 2, and 3), V. D. Kuznetsov (2), and J. Staude (1), ((1) Astrophysikalisches Institut Potsdam, Germany, (2) Pushkov Institute of, Terrestrial Magnetism, Ionosphere, Radio Wave Propagation, Troitsk/Moscow,, Russia, (3) Shamakhy Astrophysical Observatory, Baku

TL;DR
This paper develops a fluid model for collisionless plasmas that incorporates heat flux evolution, leading to more accurate predictions of wave instabilities like fire hose and mirror modes, aligning fluid results with kinetic theory.
Contribution
The study introduces a 16-moments fluid model that includes heat flux evolution, improving the accuracy of wave instability predictions over traditional CGL models.
Findings
The model reproduces kinetic theory instability criteria.
Identifies new compressible fire hose instability modes.
Shows heat flux effects differentiate wave propagation directions.
Abstract
Wave properties and instabilities in a magnetized, anisotropic, collisionless, rarefied hot plasma in fluid approximation are studied, using the 16-moments set of the transport equations obtained from the Vlasov equations. These equations differ from the CGL-MHD fluid model (single fluid equations by Chew, Goldberger, and Low, 1956) by including two anisotropic heat flux evolution equations, where the fluxes invalidate the double polytropic CGL laws. We derived the general dispersion relation for linear compressible wave modes. Besides the classic incompressible fire hose modes there appear four types of compressible wave modes: two fast and slow mirror modes - strongly modified compared to the CGL model - and two thermal modes. In the presence of initial heat fluxes along the magnetic field the wave properties become different for the waves running forward and backward with respect to…
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