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The topological analysis from Bjorkman (1995) for the standard model that describes the winds from hot stars by Castor, Abbott & Klein (1975) has been extended to include the effect of stellar rotation and changes in the ionization of the…

Astrophysics · Physics 2009-11-10 Michel Cure , Diego Rial

The theory of radiation driven wind including stellar rotation is re-examined. After a suitable change of variables, a new equation for the mass loss rate is derived analytically. The solution of this equation remains within 1% confidence…

Astrophysics · Physics 2009-11-10 Michel Curé

Radiation-driven winds of massive stars can be described within the modified CAK theory, which parametrises the radiation force through three key quantities: $\alpha$, $\delta$, and $k$. Different combinations of these parameters, together…

Solar and Stellar Astrophysics · Physics 2026-04-20 M. C. Fernandez , R. O. J. Venero , L. S. Cidale , I. Araya , M. Curé

The standard, or fast, solutions of m-CAK line-driven wind theory cannot account for slowly outflowing disks like the ones that surround Be stars. It has been previously shown that there exists another family of solutions --- the…

Solar and Stellar Astrophysics · Physics 2015-06-23 J. Silaj , M. Cure , C. E. Jones

The theory of radiation-driven winds succeeded in describing terminal velocities and mass loss rates of massive stars. However, for A-type supergiants the standard m-CAK solution predicts values of mass loss and terminal velocity higher…

Solar and Stellar Astrophysics · Physics 2015-05-28 M. Cure , L. Cidale , A. Granada

We have incorporated the oblate distortion of the shape of the star due to the stellar rotation, which modifies the finite disk correction factor (f_D) in the m-CAK hydrodynamical model. We implement a simplified version for the f_D…

Solar and Stellar Astrophysics · Physics 2015-05-20 Ignacio Araya , Michel Curé , Anahí Granada , Lydia Cidale

Massive stars present strong stellar that which are described by the radiation driven wind theory. Accurate mass-loss rates are necessary to properly describe the stellar evolution across the Hertzsprung--Russel Diagram. We present a…

Solar and Stellar Astrophysics · Physics 2019-03-20 Alex C. Gormaz-Matamala , Michel Curé , Lydia S. Cidale , Roberto O. J. Venero

Here we present a self-consistent stationary solution for spherically symmetric winds driven by massive star clusters under the impact of radiative cooling. We demonstrate that cooling may modify drastically the distribution of temperature…

Astrophysics · Physics 2009-11-10 Sergiy Silich , Guillermo Tenorio-Tagle , Ary Rodriguez-Gonzalez

Mass loss from massive stars plays a determining role in their evolution through the upper Hertzsprung-Russell diagram. The hydrodynamic theory that describes their steady-state winds is the line-driven wind theory (m-CAK). From this…

Solar and Stellar Astrophysics · Physics 2023-05-22 Michel Cure , Ignacio Araya

Radiative pressure exerted by line interactions is a prominent driver of outflows in astrophysical systems, being at work in the outflows emerging from hot stars or from the accretion discs of cataclysmic variables, massive young stars and…

Solar and Stellar Astrophysics · Physics 2015-09-29 U. M. Noebauer , S. A. Sim

The high luminosities of massive stars drive strong stellar winds, through line scattering of the star's continuum radiation. This paper reviews the dynamics of such line driving, building first upon the standard CAK model for steady winds,…

Solar and Stellar Astrophysics · Physics 2014-09-09 Stanley Owocki

We compare models of line-driven winds from accretion discs and single spherical stars. We look at the problem of scaling mass-loss rates and velocities of stellar and disc winds with model parameters. We find that stellar and disc winds…

Astrophysics · Physics 2009-10-31 Daniel Proga

In the regime of hot stars, winds were not seen as a common thing until the era of UV astronomy. Since we have access to the UV wavelength range, it has become clear that winds are not an exotic phenomenon limited to some special objects,…

Solar and Stellar Astrophysics · Physics 2022-11-22 Andreas A. C. Sander

As the disk formation mechanism(s) in Be stars is(are) as yet unknown, we investigate the role of rapidly rotating radiation-driven winds in this process. We implemented the effects of high stellar rotation on m-CAK models accounting for:…

Solar and Stellar Astrophysics · Physics 2017-08-30 I. Araya , C. E. Jones , M. Curé , J. Silaj , L. Cidale , A. Granada , A. Jiménez

Accurate mass-loss rates and terminal velocities from massive stars winds are essential to obtain synthetic spectra from radiative transfer calculations and to determine the evolutionary path of massive stars. From a theoretical point of…

Solar and Stellar Astrophysics · Physics 2021-04-21 I. Araya , A. Christen , M. Curé , L. S. Cidale , R. O. J. Venero , C. Arcos , A. C. Gormaz-Matamala , M. Haucke , P. Escárate , H. Clavería

We present solutions for the velocity field and mass-loss rates for 2D axisymmetric outflows, as well as for the case of mass accretion through the use of the Lambert W-function. For the case of a rotating radiation-driven wind the velocity…

Solar and Stellar Astrophysics · Physics 2014-03-20 Patrick E. Müller , Jorick S. Vink

We apply topological methods to better understand how the magnetic field in the stellarator edge can be diverted away from the confined region. Our primary method is calculating the winding numbers of closed contours, which gives…

Context. Radiation-driven mass loss is key to our understanding of massive-star evolution. However, for low-luminosity O-type stars there are big discrepancies between theoretically predicted and empirically derived mass-loss rates (called…

Solar and Stellar Astrophysics · Physics 2021-04-21 C. Lagae , F. A. Driessen , L. Hennicker , N. D. Kee , J. O. Sundqvist

We present a simple method for the solution of one-component and multicomponent hydrodynamic equations based on the Newton-Raphson method. We show that this method can be used for the solution of stationary hydrodynamic equations. This…

Astrophysics · Physics 2007-05-23 J. Krticka

We analyze the steady 1D flow equations for a rotating stellar wind based on a ``nozzle'' analogy for terms that constrain the local mass flux. For low rotation, we find the nozzle minimum occurs near the stellar surface, allowing a…

Astrophysics · Physics 2011-02-11 Thomas I. Madura , Stanley P. Owocki , Achim Feldmeier
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