Context. 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 has been found to be very important. To incorporate clumping into a radiative transfer calculation, three-dimensional (3D) models are required. Various properties of the clumps may have a strong impact on the resonance line formation and, therefore, on the determination of empirical mass-loss rates. Aims. We incorporate the 3D nature of the stellar wind clumping into radiative transfer calculations and investigate how different model parameters influence the resonance line formation. Methods. W...
Clumps in hot star winds can originate from shock compression due to the line driven insta-bility. O...
We present Monte Carlo radiative-transfer simulations for spiral galaxies modelled as a stellar disc...
We use three-dimensional radiative transfer models to show the effects of clumpy circumstellar mater...
Context. The true mass-loss rates from massive stars are important for many branches of astrophysics...
Title: Radiation in stellar winds. Resonance line formation in inhomogeneous hot star winds Author: ...
Context. Mass loss is essential for massive star evolution, thus also for the variety of a...
Context.The mass-loss rate is a key parameter of massive stars. Adequate stellar atmosphere models a...
We study the effect of wind inhomogeneities (clumping) on O star wind model predictions. For this pu...
© ESO 2018. Context. State of the art quantitative spectroscopy utilizes synthetic spectra to extrac...
Context. Recent studies of O-type stars have demonstrated that discrepant mass-loss rates are obtain...
Context. The uncertainty in the degree to which radiation-driven winds of hot stars might ...
Aims. Both empirical evidence and theoretical findings indicate that the stellar winds of massive ea...
Aims. Both empirical evidence and theoretical findings indicate that the stellar winds of ...
We present Monte Carlo radiative transfer simulations for spiral galaxies modelled as a stellar disk...
Context. Stars with an initial mass below ~8 M⊙ evolve through the asymptotic giant branch (AGB) pha...
Clumps in hot star winds can originate from shock compression due to the line driven insta-bility. O...
We present Monte Carlo radiative-transfer simulations for spiral galaxies modelled as a stellar disc...
We use three-dimensional radiative transfer models to show the effects of clumpy circumstellar mater...
Context. The true mass-loss rates from massive stars are important for many branches of astrophysics...
Title: Radiation in stellar winds. Resonance line formation in inhomogeneous hot star winds Author: ...
Context. Mass loss is essential for massive star evolution, thus also for the variety of a...
Context.The mass-loss rate is a key parameter of massive stars. Adequate stellar atmosphere models a...
We study the effect of wind inhomogeneities (clumping) on O star wind model predictions. For this pu...
© ESO 2018. Context. State of the art quantitative spectroscopy utilizes synthetic spectra to extrac...
Context. Recent studies of O-type stars have demonstrated that discrepant mass-loss rates are obtain...
Context. The uncertainty in the degree to which radiation-driven winds of hot stars might ...
Aims. Both empirical evidence and theoretical findings indicate that the stellar winds of massive ea...
Aims. Both empirical evidence and theoretical findings indicate that the stellar winds of ...
We present Monte Carlo radiative transfer simulations for spiral galaxies modelled as a stellar disk...
Context. Stars with an initial mass below ~8 M⊙ evolve through the asymptotic giant branch (AGB) pha...
Clumps in hot star winds can originate from shock compression due to the line driven insta-bility. O...
We present Monte Carlo radiative-transfer simulations for spiral galaxies modelled as a stellar disc...
We use three-dimensional radiative transfer models to show the effects of clumpy circumstellar mater...