English

Formation Of The Lyman Continuum During Solar Flares

Solar and Stellar Astrophysics 2023-03-01 v1

Abstract

The Lyman Continuum (LyC; <911.12<911.12\AA) forms at the top of the chromosphere in the quiet-Sun, making LyC a powerful tool for probing the chromospheric plasma during solar flares. To understand the effects of non-thermal energy deposition in the chromosphere during flares, we analysed LyC profiles from a grid of field-aligned radiative hydrodynamic models generated using the RADYN code as part of the F-CHROMA project. The spectral response of LyC, the temporal evolution of the departure coefficient of hydrogen, b1b_1, and the color temperature, TcT_c, in response to a range of non-thermal electron distribution functions, were investigated. The LyC intensity was seen to increase by 4-5.5 orders of magnitude during solar flares, responding most strongly to the non-thermal electron flux of the beam. Generally, b1b_1 decreased from 10210^2-10310^3 to closer to unity during solar flares, indicating a stronger coupling to local conditions, while TcT_c increased from 88-99kK to 1010-1616kK. TcT_c was found to be approximately equal to the electron temperature of the plasma when b1b_1 was at a minimum. Both optically thick and optically thin components of LyC were found in agreement with the interpretation of recent observations. The optically thick layer forms deeper in the chromosphere during a flare compared to quiescent periods, whereas the optically thin layers form at higher altitudes due to chromospheric evaporation, in low-temperature, high-density regions propagating upwards. We put these results in the context of current and future missions.

Keywords

Cite

@article{arxiv.2301.01648,
  title  = {Formation Of The Lyman Continuum During Solar Flares},
  author = {Shaun A. McLaughlin and Ryan O. Milligan and Graham S. Kerr and Aaron J. Monson and Paulo J. A. Simões and Mihalis Mathioudakis},
  journal= {arXiv preprint arXiv:2301.01648},
  year   = {2023}
}

Comments

Accepted for publication in The Astrophysical Journal: 18 pages, 16 Figures