DocumentCode :
3508081
Title :
The Hall instability in inhomogeneous low-density warm plasmas
Author :
Mond, M. ; Liverts, Edward
Author_Institution :
Dept. of Mech. Eng., Ben-Gurion Univ. of the Negev, Beer-Sheva, Israel
fYear :
2004
fDate :
1-1 July 2004
Firstpage :
330
Abstract :
Summary form only given. A two-fluid model in which the Hall term is taken into account in Faraday´s law (Hall magnetohydrodynamic - HMHD) for low density inhomogeneous magnetized plasmas with finite pressure is considered. Such a model is valid for frequencies that are larger than the ion cyclotron frequency and smaller than the electron cyclotron frequency. For waves propagating perpendicular to both the density gradient and the ambient magnetic field, the only relevant mode in that regime is the fast magnetosonic wave. Under plasma acceleration and inhomogeneity that mode is split into a fast penetrating electronic whistler-like mode and a quasi-electrostatic slow mode that may become unstable if the plasma acceleration is strong enough. It is shown that the instability saturates due to the effect of the electrons´ inertia, and the maximal growth rate is estimated. The waves of interest that propagate in the direction perpendicular to the density gradient and close to the background magnetic field are the slow magnetosonic waves and the ion cyclotron acoustic waves. It is shown that the spatial gradients of the plasma density split each of those modes into two. In addition, when the inhomogeneity length-scale is small enough, an ion cyclotron acoustic mode and a magneto sound mode merge in order to give rise to an inhomogeneity-driven instability. Unlike the perpendicular propagation case, that instability is confined to a finite wave-lengths domain. The threshold for the instability as well as the growth rates are obtained for collisionless plasmas.
Keywords :
inhomogeneous media; plasma density; plasma instability; plasma ion acoustic waves; plasma magnetohydrodynamics; plasma transport processes; Faraday law; Hall instability; Hall magnetohydrodynamics; collisionless plasmas; electron cyclotron frequency; electronic whistler-like mode; fast penetrating electronic whistler like mode; finite wavelengths domain; inhomogeneity driven instability; inhomogeneous low density warm plasma; ion cyclotron acoustic wave mode; ion cyclotron frequency; magneto sound mode; magnetosonic wave; plasma acceleration; plasma density; plasma inhomogeneity; plasma instability; plasma magnetohydrodynamics; plasma waves; quasielectrostatic slow mode; two-fluid model; waves propagation; Acoustic propagation; Cyclotrons; Electrons; Frequency; Magnetic confinement; Magnetic fields; Plasma accelerators; Plasma density; Plasma waves; Saturation magnetization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2004. ICOPS 2004. IEEE Conference Record - Abstracts. The 31st IEEE International Conference on
Conference_Location :
Baltimore, MD, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-8334-6
Type :
conf
DOI :
10.1109/PLASMA.2004.1340034
Filename :
1340034
Link To Document :
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