Abundance analysis for long period variables. Velocity effects studied with O-rich dynamic model atmospheres
T. Lebzelter, W. Nowotny, S. H\"ofner, M.T. Lederer, K.H. Hinkle, B., Aringer

TL;DR
This study examines how stellar pulsation and mass loss affect spectral features and abundance measurements in AGB stars, emphasizing the importance of dynamic models over static ones for accurate analysis.
Contribution
It provides a systematic comparison of hydrostatic and dynamic model atmospheres, highlighting the limitations of static models for pulsating AGB stars.
Findings
Equivalent widths vary over pulsation cycles in dynamic models.
Hydrostatic models can replicate some phases and features but not all.
Results qualitatively match observational data for Mira R Cas.
Abstract
(abbreviated) Measuring the surface abundances of AGB stars is an important tool for studying the effects of nucleosynthesis and mixing in the interior of low- to intermediate mass stars during their final evolutionary phases. The atmospheres of AGB stars can be strongly affected by stellar pulsation and the development of a stellar wind, though, and the abundance determination of these objects should therefore be based on dynamic model atmospheres. We investigate the effects of stellar pulsation and mass loss on the appearance of selected spectral features (line profiles, line intensities) and on the derived elemental abundances by performing a systematic comparison of hydrostatic and dynamic model atmospheres. High-resolution synthetic spectra in the near infrared range were calculated based on two dynamic model atmospheres (at various phases during the pulsation cycle) as well as a…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Astro and Planetary Science · Astronomy and Astrophysical Research
