English

The Evolution of the 1/f Range Within a Single Fast-Solar-Wind Stream Between 17.4 and 45.7 Solar Radii

Solar and Stellar Astrophysics 2023-06-28 v1 Space Physics

Abstract

The power spectrum of magnetic-field fluctuations in the fast solar wind (VSW>500\mboxkm\mboxs1V_{\rm SW}> 500 \mbox{ km} \mbox{ s}^{-1}) at magnetohydrodynamic (MHD) scales is characterized by two different power laws on either side of a break frequency fbf_{\rm b}. The low-frequency range at frequencies ff smaller than fbf_{\rm b} is often viewed as the energy reservoir that feeds the turbulent cascade at f>fbf>f_{\rm b}. At heliocentric distances rr exceeding 6060 solar radii (RsR_{\rm s}), the power spectrum often has a 1/f1/f scaling at f<fbf<f_{\rm b}; i.e., the spectral index is close to 1-1. In this study, measurements from the encounter 1010 of ParkerSolarProbe{Parker Solar Probe} (PSP) with the Sun are used to investigate the evolution of the magnetic-field power spectrum at f<fbf< f_{\rm b} at r<60Rsr<60 R_{\rm s} during a fast radial scan of a single fast-solar-wind stream. We find that the spectral index in the low-frequency part of the spectrum decreases from approximately 0.61-0.61 to 0.94-0.94 as rr increases from 17.417.4 to 45.745.7 solar radii. Our results suggest that the 1/f1/f spectrum that is often seen at large rr in the fast solar wind is not produced at the Sun, but instead develops dynamically as the wind expands outward from the corona into the interplanetary medium.

Keywords

Cite

@article{arxiv.2303.01663,
  title  = {The Evolution of the 1/f Range Within a Single Fast-Solar-Wind Stream Between 17.4 and 45.7 Solar Radii},
  author = {Nooshin Davis and B. D. G. Chandran and T. A. Bowen and S. T. Badman and T. Dudok de Wit and C. H. K. Chen and S. D. Bale and Zesen Huang and Nikos Sioulas and Marco Velli},
  journal= {arXiv preprint arXiv:2303.01663},
  year   = {2023}
}