The Atmospheric Response to High Nonthermal Electron Beam Fluxes in Solar Flares. II. Hydrogen Broadening Predictions for Solar Flare Observations with the Daniel K. Inouye Solar Telescope
Adam F. Kowalski (1,2,3), Joel C. Allred (4), Mats Carlsson (5,6),, Graham S. Kerr (7), Pier-Emmanuel Tremblay (8), Kosuke Namekata (9,10), David, Kuridze (11,12,13), Han Uitenbroek (1) ((1) National Solar Observatory, (2), University of Colorado Boulder

TL;DR
This paper enhances radiative-hydrodynamic models of solar flares by incorporating non-ideal hydrogen line broadening, enabling precise predictions of spectral features that can be tested with DKIST observations to better understand chromospheric densities during flares.
Contribution
It introduces improved hydrogen line broadening profiles into flare models, allowing for more accurate predictions of spectral line behavior during solar flares.
Findings
Broadening and redshift variations occur within 10 seconds of beam heating onset.
Enhanced spectral broadening is observed in chromospheric condensations due to optical depth effects.
DKIST spectra can test hydrogen wing broadening predictions to constrain chromospheric densities.
Abstract
Red-shifted components of chromospheric emission lines in the hard X-ray impulsive phase of solar flares have recently been studied through their 30 s evolution with the high resolution of IRIS. Radiative-hydrodynamic flare models show that these redshifts are generally reproduced by electron-beam generated chromospheric condensations. The models produce large ambient electron densities, and the pressure broadening of hydrogen Balmer series should be readily detected in observations. To accurately interpret upcoming spectral data of flares with the DKIST, we incorporate non-ideal, non-adiabatic line broadening profiles of hydrogen into the RADYN code. These improvements allow time-dependent predictions for the extreme Balmer line wing enhancements in solar flares. We study two chromospheric condensation models, which cover a range of electron beam fluxes ( erg…
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