Low frequency oscillations in a plasma with spatially variable field-aligned flow

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Abstract

The effects of a transverse gradient in the plasma flow velocity parallel to the ambient magnetic field are analyzed. A transverse velocity gradient in the parallel ion flow, even in small magnitude, can increase the parallel phase speed of the ion-acoustic waves sufficiently to reduce ion Landau damping. This results in a significantly lower threshold current for the current driven ion acoustic instability. Ion flow gradients can also give rise to a new class of ion cyclotron waves via inverse cyclotron damping. A broadband wave spectrum with multiple cyclotron harmonics is possible. A combination of the multiple cyclotron harmonic waves can result in spiky electric field structures with their peaks separated by an ion cyclotron period. A spatial gradient in the parallel electron flow is also considered but it is found to play a minimal role in the low frequency regime. Relevance of these to natural plasma environments is discussed. © 2002 American Institute of Physics.

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Ganguli, G., Slinker, S., Gavrishchaka, V., & Scales, W. (2002). Low frequency oscillations in a plasma with spatially variable field-aligned flow. In Physics of Plasmas (Vol. 9, pp. 2321–2329). https://doi.org/10.1063/1.1445181

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