Outflows and accretion in a star--disc system with stellar magnetosphere and disc dynamo
arXiv:astro-ph/0307201 · doi:10.1051/0004-6361:20034065
Abstract
The interaction between a protostellar magnetosphere and a surrounding dynamo-active accretion disc is investigated using an axisymmetric mean-field model. In all models investigated, the dynamo-generated magnetic field in the disc arranges itself such that in the corona, the field threading the disc is anti-aligned with the central dipole so that no X-point forms. When the magnetospheric field is strong enough (stellar surface field strength around 2 kG or larger), accretion happens in a recurrent fashion with periods of around 15 to 30 days, which is somewhat longer than the stellar rotation period of around 10 days. In the case of a stellar surface field strength of at least a few 100 G, the star is being spun up by the magnetic torque exerted on the star. The stellar accretion rates are always reduced by the presence of a magnetosphere which tends to divert a much larger fraction of the disc material into the wind. Both, a pressure-driven stellar wind and a disc wind form. In all our models with disc dynamo, the disc wind is structured and driven by magneto-centrifugal as well as pressure forces.
16 pages, 22 figures, accepted for publication in A&A
References in corpus (1)
Cited by in corpus (37)
- Astrophysical magnetic fields and nonlinear dynamo theory
- Magnetic fields of non-degenerate stars
- Accretion-powered Stellar Winds as a Solution to the Stellar Angular Momentum Problem
- Launching of Conical Winds and Axial Jets from the Disk-Magnetosphere Boundary: Axisymmetric and 3D Simulations
- Magnetic fields and accretion flows on the classical T Tauri star V2129 Oph
- Locking of the Rotation of Disk-Accreting Magnetized Stars
- The Propeller Regime of Disk Accretion to a Rapidly Rotating Magnetized Star
- The spin of accreting stars: dependence on magnetic coupling to the disc
- Propeller-driven Outflows and Disk Oscillations
- Accretion to Stars with Non-dipole Magnetic Fields
- Collimation of astrophysical jets - the role of the accretion disk magnetic field distribution
- Bipolar jets launched from magnetically diffusive accretion disks. I. Ejection efficiency vs field strength and diffusivity
- Spin Evolution of Accreting Young Stars. II. Effect of Accretion-Powered Stellar Winds
- Controlling the collimation and rotation of hydromagnetic disk winds
- The role of magnetic reconnection on jet/accretion disk systems
- The Structure of Magnetocentrifugal Winds I. Steady Mass Loading
- The Herbig Ae star HD 163296 in X-rays
- Disks and Jets - Gravity, Rotation and Magnetic Fields
- Modelling MHD accretion-ejection - episodic ejections of jets triggered by a mean-field disk dynamo
- Stellar dynamo driven wind braking instead of disc coupling
- Wobbling and precessing jets from warped disks in binary systems
- Coronal structure of the cTTS V2129 Oph
- XMM-Newton monitoring of the close pre-main-sequence binary AK Sco. Evidence of tide driven filling of the inner gap in the circumbinary disk
- On the source of dense outflows from T Tauri Stars. and III. Winds driven from the star-disc shear layer
- Magnetic fields in the accretion disks for various inner boundary conditions
- Relativistic outflows from a GRMHD mean-field disk dynamo
- Mid-IR Observations of T Tauri stars: Probing the Star-Disk Connection in Rotational Evolution
- The formation of planetary disks and winds: an ultraviolet view
- Constraints to the magnetospheric properties of T Tauri stars - II. The Mg II ultraviolet feature
- Bihelical Magnetic Relaxation and Large Scale Magnetic Field Growth
- Jets from accretion disk dynamos: consistent quenching modes for dynamo and resistivity
- Constraints on the disc-magnetosphere interaction in accreting pulsar 4U 1626--67
- The effect of a dynamo-generated field on the Parker wind
- Photometric Accretion Signatures Near the Substellar Boundary
- Turbulent protostellar discs
- Accretion discs, low-mass protostars and planets: probing the impact of magnetic fields on stellar formation
- Outflows from dynamo-active protostellar accretion discs