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A Model of Turbulence in Magnetized Plasmas: Implications for the Dissipation Range in the Solar Wind

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arxiv 0707.3147 v2 pith:HZGIEHDB submitted 2007-07-20 astro-ph

classification astro-ph
keywords cascademodeldissipationrangesolarturbulenceturbulentwind
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This paper studies the turbulent cascade of magnetic energy in weakly collisional magnetized plasmas. A cascade model is presented, based on the assumptions of local nonlinear energy transfer in wavenumber space, critical balance between linear propagation and nonlinear interaction times, and the applicability of linear dissipation rates for the nonlinearly turbulent plasma. The model follows the nonlinear cascade of energy from the driving scale in the MHD regime, through the transition at the ion Larmor radius into the kinetic Alfven wave regime, in which the turbulence is dissipated by kinetic processes. The turbulent fluctuations remain at frequencies below the ion cyclotron frequency due to the strong anisotropy of the turbulent fluctuations, k_parallel << k_perp (implied by critical balance). In this limit, the turbulence is optimally described by gyrokinetics; it is shown that the gyrokinetic approximation is well satisfied for typical slow solar wind parameters. Wave phase velocity measurements are consistent with a kinetic Alfven wave cascade and not the onset of ion cyclotron damping. The conditions under which the gyrokinetic cascade reaches the ion cyclotron frequency are established. Cascade model solutions imply that collisionless damping provides a natural explanation for the observed range of spectral indices in the dissipation range of the solar wind. The dissipation range spectrum is predicted to be an exponential fall off; the power-law behavior apparent in observations may be an artifact of limited instrumental sensitivity. The cascade model is motivated by a programme of gyrokinetic simulations of turbulence and particle heating in the solar wind.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Statistical insights on the decorrelation lengths of solar wind parameters at L1 point under varying conditions

    astro-ph.SR 2026-08 conditional novelty 6.0 of 10

    Using ACE and Wind measurements, the authors report decorrelation lengths from ~270 RE (Bz in stream interaction regions) to ~8700 RE (bulk speed), with composition the least coherent parameter.

  2. Evolution and Impact of Switchbacks Throughout the Heliosphere

    physics.space-ph 2026-07 accept novelty 3.0 of 10

    Switchbacks grow under expansion then erode by multiple processes, contributing free energy to solar-wind turbulence, heating, acceleration and particle transport.

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