International audienceContext. Classical Wolf-Rayet (WR) stars are direct supernova progenitors undergoing vigorous mass loss. Understanding the dense and fast outflows of such WR stars is thus crucial for understanding advanced stages of stellar evolution and the dynamical feedback of massive stars on their environments, and for characterizing the distribution of black hole masses. Aims: In this paper, we develop the first time-dependent, multidimensional, radiation-hydrodynamical models of the extended optically thick atmospheres and wind outflows of hydrogen-free classical WR stars. Methods: A flux-limiting radiation hydrodynamics approach is used on a finite volume mesh to model WR outflows. The opacities are described using a combina...
We continue our numerical analysis of the morphological and energetic influence of massive stars on ...
Context. Massive stars shape their surrounding medium through the force of their stellar winds, whic...
Context. Radiation-driven mass loss plays a key role in the life cycles of massive stars. However, b...
International audienceContext. Classical Wolf-Rayet (WR) stars are direct supernova progenitors unde...
Classical Wolf Rayet (WR) stars are direct supernova progenitors undergoing vigorous mass-loss. Unde...
Context. Vigorous mass loss in the classical Wolf-Rayet (WR) phase is important for the late evoluti...
We investigate the influence of a grey, optically thick wind on the surface and internal structure o...
Context. The classical Wolf-Rayet (WR) phase is believed to mark the end stage of the evolution of m...
The Wolf-Rayet (WR) stars are hot luminous objects which are suffering an extreme mass loss via a co...
Mass loss by stellar wind is a key agent in the evolution and spectroscopic appearance of massive ma...
Classical Wolf-Rayet (WR) stars mark an important stage in the late evolution of massive stars. As h...
Recent results with the Potsdam Wolf-Rayet (PoWR) models have shown that Wolf-Rayet mass loss can be...
For decades, massive stars have been seen to lose mass at every stage of evolution. In recent years,...
Aims. We examine the dependence of the wind-wind collision and subsequent X-ray emission from the ma...
Context. Oxygen sequence Wolf-Rayet (WO) stars are a very rare stage in the evolution of massive sta...
We continue our numerical analysis of the morphological and energetic influence of massive stars on ...
Context. Massive stars shape their surrounding medium through the force of their stellar winds, whic...
Context. Radiation-driven mass loss plays a key role in the life cycles of massive stars. However, b...
International audienceContext. Classical Wolf-Rayet (WR) stars are direct supernova progenitors unde...
Classical Wolf Rayet (WR) stars are direct supernova progenitors undergoing vigorous mass-loss. Unde...
Context. Vigorous mass loss in the classical Wolf-Rayet (WR) phase is important for the late evoluti...
We investigate the influence of a grey, optically thick wind on the surface and internal structure o...
Context. The classical Wolf-Rayet (WR) phase is believed to mark the end stage of the evolution of m...
The Wolf-Rayet (WR) stars are hot luminous objects which are suffering an extreme mass loss via a co...
Mass loss by stellar wind is a key agent in the evolution and spectroscopic appearance of massive ma...
Classical Wolf-Rayet (WR) stars mark an important stage in the late evolution of massive stars. As h...
Recent results with the Potsdam Wolf-Rayet (PoWR) models have shown that Wolf-Rayet mass loss can be...
For decades, massive stars have been seen to lose mass at every stage of evolution. In recent years,...
Aims. We examine the dependence of the wind-wind collision and subsequent X-ray emission from the ma...
Context. Oxygen sequence Wolf-Rayet (WO) stars are a very rare stage in the evolution of massive sta...
We continue our numerical analysis of the morphological and energetic influence of massive stars on ...
Context. Massive stars shape their surrounding medium through the force of their stellar winds, whic...
Context. Radiation-driven mass loss plays a key role in the life cycles of massive stars. However, b...