3-D non-LTE radiative transfer effects in Fe I lines: II. Line formation in 3-D radiation hydrodynamic simulations
R. Holzreuter, S. K. Solanki

TL;DR
This study examines how 3-D non-LTE radiative transfer influences Fe I line formation in realistic 3-D simulations, revealing significant effects on line profiles, contrast, and temperature diagnostics, especially for spatially resolved observations.
Contribution
It provides a detailed comparison of 3-D NLTE, 1-D NLTE, and LTE line formation, highlighting the importance of horizontal RT effects in high-resolution solar observations.
Findings
Horizontal RT effects are comparable to NLTE effects in magnitude.
Line depths and equivalent widths can differ by up to 20% from LTE.
Neglecting 3-D RT can lead to temperature errors up to 200 K.
Abstract
We investigate the effects of horizontal radiative transfer (RT) a NLTE on important diagnostic iron lines in a realistic 3-D HD simulation. Using a multi-level atom we compute and compare widely used Fe I line profiles at 3 different levels of approximation (3-D NLTE, 1-D NLTE, LTE). We find that the influence of horizontal RT is of the same order of magnitude as that of NLTE, although spatially more localized. Also, depending on the temperature of the surroundings, horizontal RT is found to weaken or strengthen spectral lines. Line depths and equivalent width may differ by up to 20% against the corresponding LTE value if 3-D RT is applied. Residual intensity contrasts in LTE are found to be larger than those in 3-D NLTE by up to a factor of two. When compared to 1-D NLTE, we find that horizontal RT weakens the contrast by up to 30% almost independently of the angle of line of sight.…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Atmospheric Ozone and Climate · Atmospheric and Environmental Gas Dynamics
