English

Can Proton Beam Heating Flare Models Explain Sunquakes?

Solar and Stellar Astrophysics 2023-11-22 v2

Abstract

SDO/HMI observations reveal a class of solar flares with substantial energy and momentum impacts in the photosphere, concurrent with white-light emission and helioseismic responses, known as sunquakes. Previous radiative hydrodynamic modeling has demonstrated the challenges of explaining sunquakes in the framework of the standard flare model of `electron beam' heating. One of the possibilities to explain the sunquakes and other signatures of the photospheric impact is to consider additional heating mechanisms involved in solar flares, for example, via flare-accelerated protons. In this work, we analyze a set of single-loop Fokker-Planck and radiative hydrodynamics RADYN+FP simulations where the atmosphere is heated by non-thermal power-law-distributed proton beams which can penetrate deeper than the electron beams into the low atmospheric layers. Using the output of the RADYN models, we calculate synthetic Fe I 6173 A line Stokes profiles and from those the line-of-sight (LOS) observables of the SDO/HMI instrument, as well as the 3D helioseismic response and compare them with the corresponding observational characteristics. These initial results show that the models with proton beam heating can produce the enhancement of the HMI continuum observable and explain qualitatively generation of sunquakes. The continuum observable enhancement is evident in all models but is more prominent in ones with EcE_{c}\geq500 keV. In contrast, the models with EcE_{c}\leq100 keV provide a stronger sunquake-like helioseismic impact according to the 3D acoustic modeling, suggesting that low-energy (deka- and hecto-keV) protons have an important role in the generation of sunquakes.

Keywords

Cite

@article{arxiv.2306.13162,
  title  = {Can Proton Beam Heating Flare Models Explain Sunquakes?},
  author = {Viacheslav Sadykov and John Stefan and Alexander Kosovichev and Joel Allred and Graham S Kerr and Andrey Stejko and Adam Kowalski},
  journal= {arXiv preprint arXiv:2306.13162},
  year   = {2023}
}

Comments

22 pages, 11 figures, 2 tables

R2 v1 2026-06-28T11:12:19.574Z