4.7 Article

Dynamical simulations of magnetically channelled line-driven stellar winds - II. The effects of field-aligned rotation

Journal

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
Volume 385, Issue 1, Pages 97-108

Publisher

OXFORD UNIV PRESS
DOI: 10.1111/j.1365-2966.2008.12840.x

Keywords

MHD; stars : early-type; stars : magnetic fields; stars : mass-loss; stars : rotation; stars : winds, outflows

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Building upon our previous magnetohydrodynamics (MHD) simulation study of magnetic channelling in radiatively driven stellar winds, we examine here the additional dynamical effects of stellar rotation in the (still) 2D axisymmetric case of an aligned dipole surface field. In addition to the magnetic confinement parameter eta(*) introduced in Paper I, we characterize the stellar rotation in terms of a parameter W V-rot/V-orb (the ratio of the equatorial surface rotation speed to orbital speed), examining specifically models with moderately strong rotation W = 0.25 and 0.5, and comparing these to analogous non-rotating cases. Defining the associated Alfven radius R-A approximate to eta R-1/4(*)* and Kepler corotation radius R-K approximate to W-2/3 R-*, we find rotation effects are weak for models with R-A < R-K, but can be substantial and even dominant for models with R-A greater than or similar to R-K. In particular, by extending our simulations to magnetic confinement parameters (up to eta(*) = 1000) that are well above those (eta(*) = 10) considered in Paper I, we are able to study cases with R-A >> R-K; we find that these do indeed show clear formation of the rigid body disc predicted in previous analytic models, with however a rather complex, dynamic behaviour characterized by both episodes of downward infall and outward breakout that limit the build-up of disc mass. Overall, the results provide an intriguing glimpse into the complex interplay between rotation and magnetic confinement, and form the basis for a full MHD description of the rigid body discs expected in strongly magnetic Bp stars like sigma Ori E.

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