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Article Dans Une Revue Physics of Plasmas Année : 2018

Gyrofluid modeling and phenomenology of low- β e Alfvén wave turbulence

Résumé

A two-field reduced gyrofluid model including electron inertia, ion finite Larmor radius corrections, and parallel magnetic field fluctuations is derived from the model of Brizard [Brizard, Phys. Fluids B 4, 1213 (1992)]. It assumes low βe, where βe indicates the ratio between the equilibrium electron pressure and the magnetic pressure exerted by a strong uniform magnetic guide field, but permits an arbitrary ion-to-electron equilibrium temperature ratio. It is shown to have a noncanonical Hamiltonian structure and provides a convenient framework for studying kinetic Alfvén wave turbulence, from magnetohydrodynamics to sub-de scales (where de holds for the electron skin depth). Magnetic energy spectra are phenomenologically determined within energy and generalized cross-helicity cascades in the perpendicular spectral plane. Arguments based on absolute statistical equilibria are used to predict the direction of the transfers, pointing out that, within the sub-ion range, the generalized cross-helicity could display an inverse cascade if injected at small scales, for example by reconnection processes.
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Dates et versions

hal-02072460 , version 1 (01-02-2022)

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T. Passot, P. Sulem, E. Tassi. Gyrofluid modeling and phenomenology of low- β e Alfvén wave turbulence. Physics of Plasmas, 2018, 25 (4), pp.042107. ⟨10.1063/1.5022528⟩. ⟨hal-02072460⟩
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