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arXiv · 1505.07595

Dispersion Relations and Polarizations of Low-frequency Waves in Two-fluid Plasmas

Abstract

Analytical expressions for the dispersion relations and polarizations of low-frequency waves in magnetized plasmas based on two-fluid model are obtained. The properties of waves propagating at different angles (to the ambient magnetic field $\mathbf{B}_{0}$) and β(the ratio of the plasma to magnetic pressures) values are investigated. It is shown that two linearly polarized waves, namely the fast and Alfvén modes in the low-β$\left( β\ll 1\right)$ plasmas, the fast and slow modes in the β\sim 1 plasmas, and the Alfvén and slow modes in the high-β$\left( β\gg 1\right)$ plasmas, become circularly polarized at the near-parallel (to $\mathbf{B}_{0}$) propagation. The negative magnetic-helicity of the Alfvén mode occurs only at small or moderate angles in the low-βplasmas, and the ion cross-helicity of the slow mode is nearly the same as that of the Alfvén mode in the high-βplasmas. It also shown the electric polarization $δE_{z}/δE_{y}$ decreases with the temperature ratio $T_{e}/T_{i}$ for the long-wavelength waves, and the transition between left- and right-hand polarizations of the Alfvén mode in $T_{e}/T_{i}\neq 0$ plasmas can disappear when $T_{e}/T_{i}=0$. The approximate dispersion relations in the near-perpendicular propagation, low-β, and high-βlimits can quite accurately describe the three modes.

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BibTeXRIS

Jinsong Zhao. 2015-05-28. Dispersion Relations and Polarizations of Low-frequency Waves in Two-fluid Plasmas. https://doi.org/10.1063/1.4919257

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