English

Temperature anisotropy instabilities driven by intermittent velocity shears in the solar wind

Space Physics 2024-11-20 v1

Abstract

Where and under what conditions the transfer of energy between electromagnetic fields and particles takes place in the solar wind remains an open question. We investigate the conditions that promote the growth of kinetic instabilities predicted by linear theory, to infer how turbulence and temperature-anisotropy-driven instabilities are interrelated. Using a large dataset from Solar Orbiter, we introduce the radial rate of strain, a novel measure computed from single-spacecraft data, that we interpret as a proxy for the double-adiabatic strain rate. The solar wind exhibits high absolute values of the radial rate of strain at locations with large temperature anisotropy. We measure the kurtosis and skewness of the radial rate of strain from the statistical moments to show that it is non-Gaussian for unstable intervals and increasingly intermittent at smaller scales with a power-law scaling. We conclude that the velocity field fluctuations in the solar wind contribute to the presence of temperature anisotropy sufficient to create potentially unstable conditions.

Keywords

Cite

@article{arxiv.2409.18849,
  title  = {Temperature anisotropy instabilities driven by intermittent velocity shears in the solar wind},
  author = {Simon Opie and Daniel Verscharen and Christopher H. K. Chen and Christopher J. Owen and Philip A. Isenberg and Luca Sorriso-Valvo and Luca Franci and Lorenzo Matteini},
  journal= {arXiv preprint arXiv:2409.18849},
  year   = {2024}
}

Comments

Accepted for publication in the Journal of Plasma Physics