3D simulations of disc-winds extending radially self-similar MHD models
arXiv:1402.0002 · doi:10.1093/mnras/stu214
Abstract
Disc-winds originating from the inner parts of accretion discs are considered as the basic component of magnetically collimated outflows. The only available analytical MHD solutions to describe disc-driven jets are those characterized by the symmetry of radial self-similarity. However, radially self-similar MHD jet models, in general, have three geometrical shortcomings, (i) a singularity at the jet axis, (ii) the necessary assumption of axisymmetry, and (iii) the non-existence of an intrinsic radial scale, i.e. the jets formally extend to radial infinity. Hence, numerical simulations are necessary to extend the analytical solutions towards the axis, by solving the full three-dimensional equations of MHD and impose a termination radius at finite radial distance. We focus here on studying the effects of relaxing the (ii) assumption of axisymmetry, i.e. of performing full 3D numerical simulations of a disc-wind crossing all magnetohydrodynamic critical surfaces. We compare the results of these runs with previous axisymmetric 2.5D simulations. The structure of the flow in all simulations shows strong similarities. The 3D runs reach a steady state and stay close to axisymmetry for most of the physical quantities, except for the poloidal magnetic field and the toroidal velocity which slightly deviate from axisymmetry. The latter quantities show signs of instabilities, which, however, are confined to the region inside the fast magnetosonic separatrix surface. The forces present in the flow, both of collimating and accelerating nature, are in good agreement in both the 2.5D and the 3D runs. We conclude that the analytical solution behaves well also after relaxing the basic assumption of axisymmetry.
8 pages, 6 figures, accepted for publication in MNRAS
References in corpus (6)
- PLUTO: a Numerical Code for Computational Astrophysics
- MHD simulations of jet acceleration from Keplerian accretion disks: the effects of disk resistivity
- Two-component jet simulations: I. Topological stability of analytical MHD outflow solutions
- Magnetocentrifugal Winds in 3D: Nonaxisymmetric Steady State
- Stability and structure of analytical MHD jet formation models with a finite outer disk radius
- Resistive jet simulations extending radially self-similar magnetohydrodynamic models
Cited by in corpus (9)
- Magnetically-Driven Accretion-Disk Winds and Ultra-Fast Outflows in PG1211+143
- Asymmetric MHD Outflows/Jets from Accreting T Tauri Stars
- Disk wind feedback from high-mass protostars
- MHD simulations of the formation and propagation of protostellar jets to observational length scales
- Numerical simulations of MHD jets from Keplerian accretion disks I-Recollimation shocks
- X-ray emission from stellar jets by collision against high-density molecular clouds: an application to HH 248
- Disk Wind Feedback from High-mass Protostars. II. The Evolutionary Sequence
- Spatially resolved velocity structure in jets of DF Tau and UY Aur A
- A 2.5-dimensional viscous, resistive, advective magnetized accretion-outflow coupling in black hole systems: A higher order polynomial approximation. I