English

Buneman instability in a magnetized current-carrying plasma with velocity shear

Plasma Physics 2015-05-28 v2 Solar and Stellar Astrophysics Pattern Formation and Solitons

Abstract

Buneman instability is often driven in magnetic reconnection. Understanding how velocity shear in the beams driving the Buneman instability affects the growth and saturation of waves is relevant to turbulence, heating, and diffusion in magnetic reconnection. Using a Mathieu-equation analysis for weak cosine velocity shear together with Vlasov simulations, the effects of shear on the kinetic Buneman instability are studied in a plasma consisting of strongly magnetized electrons and cold unmagnetized ions. In the linearly unstable phase, shear enhances the coupling between oblique waves and the sheared electron beam, resulting in a wider range of unstable eigenmodes with common lower growth rates. The wave couplings generate new features of the electric fields in space, which can persist into the nonlinear phase when electron holes form. Lower hybrid instabilities simultaneously occur at k/kme/mik_{\shortparallel}/k_{\perp} \sim \sqrt{m_e/m_i} with a much lower growth rate, and are not affected by the velocity shear.

Keywords

Cite

@article{arxiv.1104.5283,
  title  = {Buneman instability in a magnetized current-carrying plasma with velocity shear},
  author = {H. Che and M. V. Goldman and D. L. Newman},
  journal= {arXiv preprint arXiv:1104.5283},
  year   = {2015}
}

Comments

Accepted by Physics of Plasma