Instabilities Driven by the Drift and Temperature Anisotropy of Alpha Particles in the Solar Wind
Abstract
We investigate the conditions under which parallel-propagating Alfv\'en/ion-cyclotron (A/IC) waves and fast-magnetosonic/whistler (FM/W) waves are driven unstable by the differential flow and temperature anisotropy of alpha particles in the solar wind. We focus on the limit in which , where is the parallel alpha-particle thermal speed and is the Alfv\'en speed. We derive analytic expressions for the instability thresholds of these waves, which show, e.g., how the minimum unstable alpha-particle beam speed depends upon , the degree of alpha-particle temperature anisotropy, and the alpha-to-proton temperature ratio. We validate our analytical results using numerical solutions to the full hot-plasma dispersion relation. Consistent with previous work, we find that temperature anisotropy allows A/IC waves and FM/W waves to become unstable at significantly lower values of the alpha-particle beam speed than in the isotropic-temperature case. Likewise, differential flow lowers the minimum temperature anisotropy needed to excite A/IC or FM/W waves relative to the case in which . We discuss the relevance of our results to alpha particles in the solar wind near 1 AU.
Keywords
Cite
@article{arxiv.1307.1823,
title = {Instabilities Driven by the Drift and Temperature Anisotropy of Alpha Particles in the Solar Wind},
author = {Daniel Verscharen and Sofiane Bourouaine and Benjamin D. G. Chandran},
journal= {arXiv preprint arXiv:1307.1823},
year = {2013}
}
Comments
13 pages, 13 figures