Stellar mass-loss near the Eddington limit. Tracing the sub-photospheric layers of classical Wolf-Rayet stars
arXiv:1309.6236 · doi:10.1051/0004-6361/201321914
Abstract
Towards the end of their evolution hot massive stars develop strong stellar winds and appear as emission line stars, such as WR stars or LBVs. The quantitative description of the mass loss in these important pre-SN phases is hampered by unknowns such as clumping and porosity due to an in-homogeneous wind structure, and by an incomplete theoretical understanding of optically thick stellar winds. In this work we investigate the conditions in deep atmospheric layers of WR stars to find out whether these comply with the theory of optically thick winds, and whether we find indications of clumping in these layers. We use a new semi-empirical method to determine sonic-point optical depths, densities, and temperatures for a large sample of WR stars of the carbon (WC) and oxygen (WO) sequence. Based on an artificial model sequence we investigate the reliability of our method and its sensitivity to uncertainties in stellar parameters. We find that the WR stars in our sample obey an approximate relation with P_rad/P_gas~80 at the sonic point. This 'wind condition' is ubiquitous for radiatively driven, optically thick winds, and sets constraints on possible wind/envelope solutions affecting radii, mass-loss rates, and clumping properties. Our results suggest that the presence of an optically thick wind may force many stars near the Eddington limit to develop clumped, radially extended sub-surface zones. The clumping in these zones is most likely sustained by the non-linear strange-mode instability, and may be the origin of the observed wind clumping. The properties of typical late-type WC stars comply with this model. Solutions without sub-surface clumping and inflation are also possible but demand for compact stars with comparatively low mass-loss rates. These objects may resemble the small group of WO stars with their exceptionally hot stellar temperatures and highly ionized winds.
accepted by A&A
References in corpus (13)
- 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
- 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
- The Galactic WC stars: Stellar parameters from spectral analyses indicate a new evolutionary sequence
- Neglecting the porosity of hot-star winds can lead to underestimating mass-loss rates
- Luminous Blue Variables as the progenitors of supernovae with quasi-periodic radio modulations
- Massive star evolution: Luminous Blue Variables as unexpected Supernova progenitors
- The VLT-FLAMES Tarantula Survey III: A very massive star in apparent isolation from the massive cluster R136
- On the nature and detectability of Type Ib/c supernova progenitors
- The transition mass-loss rate: Calibrating the role of line-driven winds in massive star evolution
- Rotating Wolf-Rayet stars in a post RSG/LBV phase. An evolutionary channel towards long-duration GRBs?
- On the behaviour of stellar winds that exceed the photon-tiring limit
Cited by in corpus (31)
- The R136 star cluster dissected with Hubble Space Telescope/STIS. I. Far-ultraviolet spectroscopic census and the origin of HeII 1640 in young star clusters
- The evolution of rotating very massive stars with LMC composition
- On the nature of massive helium star winds and Wolf-Rayet-type mass loss
- The evolution of massive stars and their spectra I. A non-rotating 60 Msun star from the zero-age main sequence to the pre-supernova stage
- The VLT-FLAMES Tarantula Survey XVII. Physical and wind properties of massive stars at the top of the main sequence
- The Galactic WC and WO stars: The impact of revised distances from Gaia DR2 and their role as massive black hole progenitors
- The Efficiency of Stellar Reionization: Effects of Rotation, Metallicity, and Initial Mass Function
- Massive stars on the verge of exploding: the properties of oxygen sequence Wolf-Rayet stars
- Mass loss from inhomogeneous hot star winds III. An effective-opacity formalism for line radiative transfer in accelerating, clumped two-component media, and first results on theory and diagnostics
- A massive white-dwarf merger product before final collapse
- Light-travel-time diagnostics in early Supernova spectra: substantial mass loss of the IIb progenitor of SN 2013cu through a superwind
- The temperature dependency of Wolf-Rayet-type mass loss: An exploratory study for winds launched by the hot iron bump
- On the optically-thick winds of Wolf-Rayet stars
- Physics and evolution of the most massive stars in 30 Dor. Mass loss, envelope inflation, and a variable upper stellar mass limit
- X-rays observations of a super-Chandrasekhar object reveal an ONeMg and a CO white dwarf merger product embedded in a putative SN Iax remnant
- WO-Type Wolf-Rayet Stars: the Last Hurrah of Massive Star Evolution
- Mass-loss rates of Very Massive Stars
- Diagnostic of the unstable envelopes of Wolf-Rayet stars
- X-Shooting ULLYSES: Massive Stars at low metallicity VIII. Stellar and wind parameters of newly revealed stripped stars in Be binaries
- On the Launching and Structure of Radiatively Driven Winds in Wolf-Rayet Stars
- X-Shooting ULLYSES: Massive stars at low metallicity. IV. Spectral analysis methods and exemplary results for O stars
- Exploring the influence of different velocity fields on Wolf-Rayet star spectra
- The Wolf-Rayet Stellar Response To The Iron Opacity Bump: Envelope Inflation, Winds, and Microturbulence
- Mechanical feedback from stellar winds with an application to galaxy formation at high redshift
- Helium-Star Models with Optically Thick Winds: Implications for the Internal Structures and Mass-Loss Rates of Wolf-Rayet Stars
- Metal-poor single Wolf-Rayet stars: The interplay of optically thick winds and rotation
- Wolf-Rayet -- compact object binaries as progenitors of binary compact objects
- Improving 1D stellar atmosphere models with insights from multi-dimensional simulations II. 1D versus 3D hydrodynamically consistent model comparison for WR stars
- Dynamically consistent analysis of Galactic WN4b stars
- Near-Eddington mass loss of hydrogen-rich Wolf-Rayet stars
- SDSS-V LVM: Detectability of Wolf-Rayet stars and their He II ionizing flux in low-metallicity environments I. The weak-lined, early-type WN3 stars in the SMC