Magnetofluid dynamics of magnetized cosmic plasma: firehose and gyrothermal instabilities
A. A. Schekochihin (Oxford), S. C. Cowley (Culham), F. Rincon, (Toulouse), M. S. Rosin (Cambridge)

TL;DR
This paper investigates how pressure anisotropies and heat fluxes in magnetized cosmic plasmas lead to microinstabilities like firehose and gyrothermal instabilities, affecting large-scale plasma behavior and turbulence.
Contribution
It introduces the gyrothermal instability (GTI), showing heat fluxes can destabilize plasma without pressure anisotropy, and discusses the implications for cosmic plasma dynamics.
Findings
Gyrothermal instability (GTI) can destabilize plasma via heat fluxes.
Pressure anisotropies and heat fluxes trigger microinstabilities.
Lower bounds on temperature fluctuation scales are derived.
Abstract
Both global dynamics and turbulence in magnetized weakly collisional cosmic plasmas are described by general magnetofluid equations that contain pressure anisotropies and heat fluxes that must be calculated from microscopic plasma kinetic theory. It is shown that even without a detailed calculation of the pressure anisotropy or the heat fluxes, one finds the macroscale dynamics to be generically unstable to microscale Alfvenically polarized fluctuations. Two instabilities are considered in detail: the parallel firehose instability (including the finite-Larmor-radius effects that determine the fastest growing mode) and the gyrothermal instability (GTI). The latter is a new result - it is shown that a parallel ion heat flux destabilizes Alfvenically polarized fluctuations even in the absence of the negative pressure anisotropy required for the firehose. The main conclusion is that both…
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