The VLT-FLAMES Tarantula Survey XVII. Physical and wind properties of massive stars at the top of the main sequence
arXiv:1407.1837 · doi:10.1051/0004-6361/201423643
Abstract
The evolution and fate of very massive stars (VMS) is tightly connected to their mass-loss properties. Their initial and final masses differ significantly as a result of mass loss. VMS have strong stellar winds and extremely high ionising fluxes, which are thought to be critical sources of both mechanical and radiative feedback in giant Hii regions. However, how VMS mass-loss properties change during stellar evolution is poorly understood. In the framework of the VLT-Flames Tarantula Survey (VFTS), we explore the mass-loss transition region from optically thin O to denser WNh star winds, thereby testing theoretical predictions. To this purpose we select 62 O, Of, Of/WN, and WNh stars, an unprecedented sample of stars with the highest masses and luminosities known. We perform a spectral analysis of optical VFTS as well as near-infrared VLT/SINFONI data using the non-LTE radiative transfer code CMFGEN to obtain stellar and wind parameters. For the first time, we observationally resolve the transition between optically thin O and optically thick WNh star winds. Our results suggest the existence of a kink between both mass-loss regimes, in agreement with recent MC simulations. For the optically thick regime, we confirm the steep dependence on the Eddington factor from previous theoretical and observational studies. The transition occurs on the MS near a luminosity of 10^6.1Lsun, or a mass of 80...90Msun. Above this limit, we find that - even when accounting for moderate wind clumping (with f = 0.1) - wind mass-loss rates are enhanced with respect to standard prescriptions currently adopted in stellar evolution calculations. We also show that this results in substantial helium surface enrichment. Based on our spectroscopic analyses, we are able to provide the most accurate ionising fluxes for VMS known to date, confirming the pivotal role of VMS in ionising and shaping their environments.
Accepted for publication in A&A, 19 pages, 14 figures, 6 tables, (74 pages appendix, 68 figures, 4 tables)
References in corpus (17)
- Binary interaction dominates the evolution of massive stars
- An eclipsing binary distance to the Large Magellanic Cloud accurate to 2 per cent
- Mass loss from hot massive stars
- The R136 star cluster hosts several stars whose individual masses greatly exceed the accepted 150 Msun stellar mass limit
- The Galactic WN stars: Spectral analyses with line-blanketed model atmospheres versus stellar evolution models with and without rotation
- UBVJHK synthetic photometry of Galactic O stars
- Bright OB stars in the Galaxy - III. Constraints on the radial stratification of the clumping factor in hot star winds from a combined Halpha, IR and radio analysis
- Mass loss from late-type WN stars and its Z-dependence: very massive stars approaching the Eddington limit
- The most massive stars in the Arches cluster
- Neglecting the porosity of hot-star winds can lead to underestimating mass-loss rates
- The VLT-FLAMES survey of massive stars: Wind properties and evolution of hot massive stars in the LMC
- Pair creation supernovae at low and high redshift
- On the evolution and fate of supermassive stars
- A Spectroscopic Survey of WNL Stars in the LMC: General Properties and Binary Status
- The VLT-FLAMES Tarantula Survey III: A very massive star in apparent isolation from the massive cluster R136
- An X-ray Survey of Wolf-Rayet Stars in the Magellanic Clouds. I. The Chandra ACIS Dataset
- On the H Behaviour of Blue Supergiants: Rise and Fall over the Bi-stability Jump
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