A self-consistent empirical model atmosphere, abundance and stratification analysis of the benchmark roAp star alpha Circini
O. Kochukhov, D. Shulyak, T. Ryabchikova

TL;DR
This study presents a self-consistent empirical model atmosphere for the roAp star alpha Circini, accounting for chemical stratification and its effects on atmospheric structure, hydrogen line profiles, and temperature estimation.
Contribution
It introduces a novel iterative method combining chemical stratification analysis with atmospheric modeling for alpha Cir, improving accuracy in temperature and abundance determinations.
Findings
Chemical stratification significantly affects atmospheric structure.
The derived temperature Teff=7500 K matches fundamental measurements.
Stratification impacts hydrogen Balmer line formation.
Abstract
Chemically peculiar (CP) stars are unique natural laboratories for investigation of the microscopic diffusion processes of chemical elements. The element segregation under the influence of gravity and radiation pressure leads to the appearance of strong abundance gradients in the atmospheres of CP stars. Consequently, the atmospheric temperature-pressure structure of these objects could deviate significantly from the atmospheres of normal stars with homogeneous abundances. In this study we performed a self-consistent, empirical model atmosphere study of the brightest rapidly oscillating Ap star alpha Cir. We account for chemical stratification in the model atmosphere calculations and assess the importance of non-uniformed vertical element distribution on the model structure, energy distribution and hydrogen line profiles. Based on an iterative procedure of the chemical abundance…
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