Collisionless Isotropization of the Solar-Wind Protons by Compressive Fluctuations and Plasma Instabilities
arXiv:1605.07143 · doi:10.3847/0004-637X/831/2/128
Abstract
Compressive fluctuations are a minor yet significant component of astrophysical plasma turbulence. In the solar wind, long-wavelength compressive slow-mode fluctuations lead to changes in and in , where and are the perpendicular and parallel temperatures of the protons, is the magnetic field strength, and is the proton density. If the amplitude of the compressive fluctuations is large enough, crosses one or more instability thresholds for anisotropy-driven microinstabilities. The enhanced field fluctuations from these microinstabilities scatter the protons so as to reduce the anisotropy of the pressure tensor. We propose that this scattering drives the average value of away from the marginal stability boundary until the fluctuating value of stops crossing the boundary. We model this "fluctuating-anisotropy effect" using linear Vlasov--Maxwell theory to describe the large-scale compressive fluctuations. We argue that this effect can explain why, in the nearly collisionless solar wind, the average value of is close to unity.
11 pages, published in ApJ
References in corpus (5)
- Phase mixing vs. nonlinear advection in drift-kinetic plasma turbulence
- Predicted Impacts of Proton Temperature Anisotropy on Solar Wind Turbulence
- Kinetic cascade beyond magnetohydrodynamics of solar wind turbulence in two-dimensional hybrid simulations
- The Dispersion Relations and Instability Thresholds of Oblique Plasma Modes in the Presence of an Ion Beam
- Plasma turbulence and kinetic instabilities at ion scales in the expanding solar wind
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