English

A Majority of Solar Wind Intervals Support Ion-Driven Instabilities

Space Physics 2018-06-13 v2 Solar and Stellar Astrophysics Plasma Physics

Abstract

We perform a statistical assessment of solar wind stability at 1 AU against ion sources of free energy using Nyquist's instability criterion. In contrast to typically employed threshold models which consider a single free-energy source, this method includes the effects of proton and He2+^{2+} temperature anisotropy with respect to the background magnetic field as well as relative drifts between the proton core, proton beam, and He2+^{2+} components on stability. Of 309 randomly selected spectra from the Wind spacecraft, 53.7%53.7\% are unstable when the ion components are modeled as drifting bi-Maxwellians; only 4.5%4.5\% of the spectra are unstable to long-wavelength instabilities. A majority of the instabilities occur for spectra where a proton beam is resolved. Nearly all observed instabilities have growth rates γ\gamma slower than instrumental and ion-kinetic-scale timescales. Unstable spectra are associated with relatively-large He2+^{2+} drift speeds and/or a departure of the core proton temperature from isotropy; other parametric dependencies of unstable spectra are also identified.

Keywords

Cite

@article{arxiv.1804.06330,
  title  = {A Majority of Solar Wind Intervals Support Ion-Driven Instabilities},
  author = {K. G. Klein and B. A. Alterman and M. L. Stevens and D. Vech and J. C. Kasper},
  journal= {arXiv preprint arXiv:1804.06330},
  year   = {2018}
}

Comments

6 pages, 3 figures, 2 tables, accepted in Physical Review Letters; fixed typos in version 2

R2 v1 2026-06-23T01:26:39.092Z