3-D radiative transfer in clumped hot star winds I. Influence of clumping on the resonance line formation
arXiv:1202.4787 · doi:10.1051/0004-6361/201118590
Abstract
The true mass-loss rates from massive stars are important for many branches of astrophysics. For the correct modeling of the resonance lines, which are among the key diagnostics of stellar mass-loss, the stellar wind clumping turned out to be very important. In order to incorporate clumping into radiative transfer calculation, 3-D models are required. Various properties of the clumps may have strong impact on the resonance line formation and, therefore, on the determination of empirical mass-loss rates. We incorporate the 3-D nature of the stellar wind clumping into radiative transfer calculations and investigate how different model parameters influence the resonance line formation. We develop a full 3-D Monte Carlo radiative transfer code for inhomogeneous expanding stellar winds. The number density of clumps follows the mass conservation. For the first time, realistic 3-D models that describe the dense as well as the tenuous wind components are used to model the formation of resonance lines in a clumped stellar wind. At the same time, non-monotonic velocity fields are accounted for. The 3-D density and velocity wind inhomogeneities show very strong impact on the resonance line formation. The different parameters describing the clumping and the velocity field results in different line strengths and profiles. We present a set of representative models for various sets of model parameters and investigate how the resonance lines are affected. Our 3-D models show that the line opacity is reduced for larger clump separation and for more shallow velocity gradients within the clumps. Our new model demonstrates that to obtain empirically correct mass-loss rates from the UV resonance lines, the wind clumping and its 3-D nature must be taken into account.
Astronomy and Astrophysics, accepted for publication
References in corpus (8)
- Mass loss from hot massive stars
- Neglecting the porosity of hot-star winds can lead to underestimating mass-loss rates
- The Effect of Porosity on X-ray Emission Line Profiles from Hot-Star Winds
- Mass loss from inhomogeneous hot star winds II. Constraints from a combined optical/UV study
- High resolution X-ray spectroscopy of bright O type stars
- Modeling Ultraviolet Wind Line Variability in Massive Hot Stars
- Direct spectroscopic observations of clumping in O-star winds
- NLTE models of line-driven stellar winds III. Influence of X-ray radiation on wind structure of O stars
Cited by in corpus (57)
- 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
- Towards a unified view of inhomogeneous stellar winds in isolated supergiant stars and supergiant high mass X-ray binaries
- On Variations Of Pre-Supernova Model Properties
- The R136 star cluster dissected with Hubble Space Telescope/STIS. III. The most massive stars and their clumped winds
- Mass loss in main-sequence B stars
- Clumping in the inner winds of hot, massive stars from hydrodynamical line-driven instability simulations
- Coupling hydrodynamics with comoving frame radiative transfer: I. A unified approach for OB and WR stars
- On the (non-)enhancement of the Lyman α equivalent width by a multiphase interstellar medium
- Macroclumping as solution of the discrepancy between Hα and P v mass loss diagnostics for O-type stars
- Monte Carlo Radiative Transfer
- PoWR grids of non-LTE model atmospheres for OB-type stars of various metallicities
- Atmospheric NLTE-models for the spectroscopic analysis of blue stars with winds. IV. Porosity in physical and velocity space
- Testing Quasar Unification: Radiative Transfer in Clumpy Winds
- Two bi-stability jumps in theoretical wind models for massive stars and the implications for Luminous Blue Variable supernovae
- Measuring the stellar wind parameters in IGR J17544-2619 and Vela X-1 constrains the accretion physics in Supergiant Fast X-ray Transient and classical Supergiant X-ray Binaries
- 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 detailed X-ray investigation of zeta Puppis - The variability on short and long timescales
- Stratified disc wind models for the AGN broad-line region: ultraviolet, optical and X-ray properties
- Interplay between pulsations and mass loss in the blue supergiant 55 Cygnus = HD 198478
- Stellar wind properties of the nearly complete sample of O stars in the low metallicity young star cluster NGC346 in the SMC galaxy
- Global hot-star wind models for stars from Magellanic Clouds
- New mass-loss rates of B supergiants from global wind models
- On the H Behaviour of Blue Supergiants: Rise and Fall over the Bi-stability Jump
- X-ray, UV and optical analysis of supergiants: Ori
- The X-ray catalog of spectroscopically identified Galactic O stars: Investigating the dependence of X-ray luminosity on stellar and wind parameters
- Light variations due to the line-driven wind instability and wind blanketing in O stars
- Self-consistent modelling of line-driven hot-star winds with Monte Carlo radiation hydrodynamics
- An ALMA 3mm continuum census of Westerlund 1
- Wind inhibition by X-ray irradiation in HMXBs: the influence of clumping and the final X-ray luminosity
- Discovery of X-ray emission from young suns in the Small Magellanic Cloud
- On the Origin of Wind Line Variability in O Stars
- UV diagnostic of porosity-free mass-loss estimates in B stars
- Evolution of massive stars with new hydrodynamic wind models
- X-ray diagnostics of massive star winds
- The IACOB project XI. No increase of mass-loss rates over the bistability region
- Optical spectroscopy of the blue supergiant Sk-69 279 and its circumstellar shell with SALT
- Stellar wind models of central stars of planetary nebulae
- HST/STIS analysis of the first main sequence pulsar CU Vir
- Influence of XUV radiation on Pv ionization fraction in hot star winds
- A Radio Census of the Massive Stellar Cluster Westerlund 1
- New self-consistent wind parameters fitting optical spectra of O-type stars observed with HERMES spectrograph
- Evolution of rotating massive stars adopting a newer, self-consistent wind prescription at SMC metallicity
- Influence of X-ray radiation on the hot star wind ionization state and on the radiative force
- Improving 1D stellar atmosphere models with insights from multi-dimensional simulations I. 1D vs 2D stratifications and spectral comparison for O stars
- Using Shell Models to Investigate Clumping in the Wind of the O7Iaf+ Supergiant AzV83
- Coordinated UV and X-ray spectroscopic observations of the O-type giant xi Per: the connection between X-rays and large-scale wind structure
- Development of convective envelopes in massive stars: Implications for gravitational wave sources
- Modeling X-ray Emission Line Profiles from Massive Star Winds - A Review
- X-Shooting ULLYSES: massive stars at low metallicity: XII. The clumped winds of O-type (super)giants in the Large Magellanic Cloud
- The nature of the light variability of magnetic Of?p star HD 191612
- Moving inhomogeneous envelopes of stars
- Radio Variability from Co-Rotating Interaction Regions Threading Wolf-Rayet Winds
- Progress towards a 3D Monte Carlo radiative transfer code for outflow wind modelling
- Structure formation in O-type stars and Wolf-Rayet stars
- Supernova remnants in clumpy medium: A model of hydrodynamic and radio synchrotron evolution
- Spherically symmetric model atmospheres using approximate lambda operators V. Static inhomogeneous atmospheres of hot dwarf stars
- The effect of horizontal plasma inhomogeneities in 3D NLTE radiation transfer in stellar atmospheres