Atmospheric parameter determination for massive stars via non-LTE spectrum analysis
arXiv:1012.0603 · doi:10.1051/eas/1043013
Abstract
We describe a self-consistent spectrum analysis technique employing non-LTE line formation, which allows precise atmospheric parameters of massive stars to be derived: 1sigma-uncertainties as low as ~1% in effective temperature and ~0.05-0.10 dex in surface gravity can be achieved. Special emphasis is given to the minimisation of the main sources of systematic errors in the atmospheric model computation, the observed spectra and the quantitative spectral analysis. Examples of applications are discussed for OB-type stars near the main sequence and their evolved progeny, the BA-type supergiants, covering masses of ~8 to 25 Msun and a range in effective temperature from ~8000 to 35000 K. Relaxing the assumption of local thermodynamic equilibrium in stellar spectral synthesis has been shown to be decisive for improving the accuracy of quantitative analyses. Despite the present examples, which concentrate on hot, massive stars, the same philosophy can be applied to line-formation calculations for all types of stars, including cooler objects like the Sun, once the underlying stellar atmospheric physics is reproduced consistently.
20 pages, 13 figures
References in corpus (7)
- A cosmic abundance standard: chemical homogeneity of the solar neighbourhood and the ISM dust-phase composition
- Chemical abundances of 451 stars from the HARPS GTO planet search program: Thin disc, thick disc, and planets
- Hydrogen and helium line formation in OB dwarfs and giants. A hybrid non-LTE approach
- Carbon abundances of early B-type stars in the solar vicinity. Non-LTE line-formation for C II/III/IV and self-consistent atmospheric parameters
- HVS7: a chemically peculiar hyper-velocity star
- The Black Hole Binary Nova Scorpii 1994 (GRO J1655-40): An improved chemical analysis
- The Current Status of Asteroseismology
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- Temperature, gravity and bolometric correction scales for non-supergiant OB stars
- A new method for an objective, -based spectroscopic analysis of early-type stars
- Massive stars in the SDSS-IV/APOGEE SURVEY. I- OB stars
- Comprehensive UV and Optical spectral analysis of Cygnus X-1: Stellar and wind parameters, abundances, and evolutionary implications