© ESO, 2017. Context. Theoretically, rotation-induced chemical mixing in massive stars has far reaching evolutionary consequences, affecting the sequence of morphological phases, lifetimes, nucleosynthesis, and supernova characteristics. Aims. Using a sample of 72 presumably single O-Type giants to supergiants observed in the context of the VLT-FLAMES Tarantula Survey (VFTS), we aim to investigate rotational mixing in evolved core-hydrogen burning stars initially more massive than 15 M by analysing their surface nitrogen abundances. Methods. Using stellar and wind properties derived in a previous VFTS study we computed synthetic spectra for a set of up to 21 N ii-v lines in the optical spectral range, using the non-LTE atmosphere code FAST...
International audienceContext. Massive star evolution remains only partly constrained. In particular...
Context. Light elements and nitrogen surface abundances together can constrain the mixing efficienci...
International audienceContext. The evolution of massive stars is still partly unconstrained. Mass, m...
Context. Theoretically, rotation-induced chemical mixing in massive stars has far reaching evolution...
Context. Theoretically, rotation-induced chemical mixing in massive stars has far reaching evolution...
Context. Rotational mixing in massive stars is a widely applied concept, with far-reaching consequen...
Rotation has become an important element in evolutionary models of massive stars, specifically via t...
Previous analyses of the spectra of OB-type stars in the Magellanic Clouds have identified targets w...
Aims. Recent observations have challenged our understanding of rotational mixing in massive stars by...
Previous analyses of the spectra of OB-type stars in the Magellanic Clouds have identified targets w...
Aims. The nitrogen-to-carbon (N/C) and nitrogen-to-oxygen (N/O) ratios are the most sensitive quanti...
Context. Nitrogen is a key element for testing the impact of rotational mixing on evolutionary model...
Context. Rotational mixing in massive stars is a widely applied concept, with far-reaching consequen...
Aims. We have previously analysed the spectra of 135 early B-type stars in the Large Magellanic Clou...
International audienceContext. Massive stars burn hydrogen through the CNO cycle during most of thei...
International audienceContext. Massive star evolution remains only partly constrained. In particular...
Context. Light elements and nitrogen surface abundances together can constrain the mixing efficienci...
International audienceContext. The evolution of massive stars is still partly unconstrained. Mass, m...
Context. Theoretically, rotation-induced chemical mixing in massive stars has far reaching evolution...
Context. Theoretically, rotation-induced chemical mixing in massive stars has far reaching evolution...
Context. Rotational mixing in massive stars is a widely applied concept, with far-reaching consequen...
Rotation has become an important element in evolutionary models of massive stars, specifically via t...
Previous analyses of the spectra of OB-type stars in the Magellanic Clouds have identified targets w...
Aims. Recent observations have challenged our understanding of rotational mixing in massive stars by...
Previous analyses of the spectra of OB-type stars in the Magellanic Clouds have identified targets w...
Aims. The nitrogen-to-carbon (N/C) and nitrogen-to-oxygen (N/O) ratios are the most sensitive quanti...
Context. Nitrogen is a key element for testing the impact of rotational mixing on evolutionary model...
Context. Rotational mixing in massive stars is a widely applied concept, with far-reaching consequen...
Aims. We have previously analysed the spectra of 135 early B-type stars in the Large Magellanic Clou...
International audienceContext. Massive stars burn hydrogen through the CNO cycle during most of thei...
International audienceContext. Massive star evolution remains only partly constrained. In particular...
Context. Light elements and nitrogen surface abundances together can constrain the mixing efficienci...
International audienceContext. The evolution of massive stars is still partly unconstrained. Mass, m...