English

Coronal Electron Temperature inferred from the Strahl Electrons in the Inner Heliosphere: Parker Solar Probe and Helios observations

Solar and Stellar Astrophysics 2020-04-08 v1 Space Physics

Abstract

The shape of the electron velocity distribution function plays an important role in the dynamics of the solar wind acceleration. Electrons are normally modelled with three components, the core, the halo, and the strahl. We investigate how well the fast strahl electrons in the inner heliosphere preserve the information about the coronal electron temperature at their origin. We analysed the data obtained by two missions, Helios spanning the distances between 65 and 215 RS_S, and Parker Solar Probe (PSP) reaching down to 35 RS_S during its first two orbits around the Sun. The electron strahl was characterised with two parameters, pitch-angle width (PAW), and the strahl parallel temperature (Ts_{s\parallel}). PSP observations confirm the already reported dependence of strahl PAW on core parallel plasma beta (βec\beta_{ec\parallel})\citep{Bercic2019}. Most of the strahl measured by PSP appear narrow with PAW reaching down to 30o^o. The portion of the strahl velocity distribution function aligned with the magnetic field is for the measured energy range well described by a Maxwellian distribution function. Ts_{s\parallel} was found to be anti-correlated with the solar wind velocity, and independent of radial distance. These observations imply that Ts_{s\parallel} carries the information about the coronal electron temperature. The obtained values are in agreement with coronal temperatures measured using spectroscopy (David et al. 2998), and the inferred solar wind source regions during the first orbit of PSP agree with the predictions using a PFSS model (Bale et al. 2019, Badman et al. 2019).

Keywords

Cite

@article{arxiv.2003.04016,
  title  = {Coronal Electron Temperature inferred from the Strahl Electrons in the Inner Heliosphere: Parker Solar Probe and Helios observations},
  author = {Laura Bercic and Davin Larson and Phyllis Whittlesey and Milan Maksimovic and Samuel T. Badman and Simone Landi and Lorenzo Matteini and Stuart. D. Bale and John W. Bonnell and Anthony W. Case and Thierry Dudok de Wit and Keith Goetz and Peter R. Harvey and Justin C. Kasper and Kelly E. Korreck and Roberto Livi and Robert J. MacDowall and David M. Malaspina and Marc Pulupa and Michael L. Stevens},
  journal= {arXiv preprint arXiv:2003.04016},
  year   = {2020}
}