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Artículo

Using non-solar-scaled opacities to derive stellar parameters: Toward high-precision parameters and abundances

Saffe, CarlosIcon ; Flores, M.; Miquelarena, P.; López, Fernando MarceloIcon ; Jaque Arancibia, Marcelo DanielIcon ; Collado, Ana ElisaIcon ; Jofre, Jorge EmilianoIcon ; Petrucci, Romina PaolaIcon
Fecha de publicación: 12/2018
Editorial: EDP Sciences
Revista: Astronomy and Astrophysics
ISSN: 0004-6361
e-ISSN: 1432-0746
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Astronomía

Resumen

In an effort to improve spectroscopic methods of stellar parameters determination, we implemented non-solar-scaled opacities in a simultaneous derivation of fundamental parameters and abundances. We wanted to compare the results with the usual solar-scaled method using a sample of solar-Type and evolved stars. Methods. We carried out a high-precision determination of stellar parameters and abundances by applying non-solar-scaled opacities and model atmospheres. Our sample is composed of 20 stars, including main sequence and evolved objects. The stellar parameters were determined by imposing ionization and excitation equilibrium of Fe lines, with an updated version of the FUNDPAR program, together with plane-parallel ATLAS12 model atmospheres and the MOOG code. Opacities for an arbitrary composition and vmicro were calculated through the opacity sampling (OS) method. We used solar-scaled models in the first step, and then continued the process, but scaled to the abundance values found in the previous step (i.e. non-solar-scaled). The process finishes when the stellar parameters of one step are the same as in the previous step, i.e. we use a doubly iterated method. Results. We obtained a small difference in stellar parameters derived with non-solar-scaled opacities compared to classical solar-scaled models. The differences in Teff, log g, and [Fe/H] amount to 26 K, 0.05 dex, and 0.020 dex for the stars in our sample. These differences can be considered the first estimation of the error due to the use of classical solar-scaled opacities to derive stellar parameters with solar-Type and evolved stars. We note that some chemical species could also show an individual variation greater than those of the [Fe/H] (up to ~0.03 dex) and varying from one species to another, obtaining a chemical pattern difference between the two methods. This means that condensation temperature Tc trends could also present a variation. We include an example showing that using non-solar-scaled opacities, the solution found with the classical solar-scaled method indeed cannot always verify the excitation and ionization balance conditions required for a model atmosphere. We discuss in the text the significance of the differences obtained when using solar-scaled versus non-solar-scaled methods. Conclusions. We consider that the use of the non-solar-scaled opacities is not mandatory in every statistical study with large samples of stars. However, for those high-precision works whose results depend on the mutual comparison of different chemical species (such as the analysis of condensation temperature Tc trends), we consider its application to be worthwhile. To date, this is probably one of the most precise spectroscopic methods for stellar parameter derivation.
Palabras clave: STARS: ABUNDANCES , STARS: ATMOSPHERES , STARS: FUNDAMENTAL PARAMETERS
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info:eu-repo/semantics/openAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
Identificadores
URI: http://hdl.handle.net/11336/98251
DOI: https://doi.org/10.1051/0004-6361/201833753
URL: https://www.aanda.org/articles/aa/abs/2018/12/aa33753-18/aa33753-18.html
Colecciones
Articulos(CCT - CORDOBA)
Articulos de CTRO.CIENTIFICO TECNOL.CONICET - CORDOBA
Articulos(ICATE)
Articulos de INST.D/CS ASTRONOMICAS D/LA TIERRA Y DEL ESPACIO
Citación
Saffe, Carlos; Flores, M.; Miquelarena, P.; López, Fernando Marcelo; Jaque Arancibia, Marcelo Daniel; et al.; Using non-solar-scaled opacities to derive stellar parameters: Toward high-precision parameters and abundances; EDP Sciences; Astronomy and Astrophysics; 620; 12-2018
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