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Recent progress in astrophysical plasma turbulence from solar wind observations

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arxiv 1611.03386 v1 pith:Z7LHCYWU submitted 2016-11-10 physics.plasm-ph astro-ph.EPastro-ph.SRphysics.space-ph

classification physics.plasm-phastro-ph.EPastro-ph.SRphysics.space-ph
keywords turbulencerecentalfvenicdiscussedenergyanisotropyastrophysicalkinetic
verification ladder T0 review T1 audit T2 compute T3 formal
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This paper summarises some of the recent progress that has been made in understanding astrophysical plasma turbulence in the solar wind, from in situ spacecraft observations. At large scales, where the turbulence is predominantly Alfvenic, measurements of critical balance, residual energy, and 3D structure are discussed, along with comparison to recent models of strong Alfvenic turbulence. At these scales, a few percent of the energy is also in compressive fluctuations, and their nature, anisotropy, and relation to the Alfvenic component is described. In the small scale kinetic range, below the ion gyroscale, the turbulence becomes predominantly kinetic Alfven in nature, and measurements of the spectra, anisotropy, and intermittency of this turbulence are discussed with respect to recent cascade models. One of the major remaining questions is how the turbulent energy is dissipated, and some recent work on this question, in addition to future space missions which will help to answer it, are briefly discussed.

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    MHD turbulence can be described by a polarization vector on a generalized Poincaré sphere whose rotation and diffusion map onto k^-1, k^-3/2, and k^-5/3 spectral regimes.

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