Transport of magnetic flux and the vertical structure of accretion discs: II. Vertical profile of the diffusion coefficients
arXiv:1212.0855 · doi:10.1093/mnras/sts551
Abstract
We investigate the radial transport of magnetic flux in a thin accretion disc, the turbulence being modelled by effective diffusion coefficients (viscosity and resistivity). Both turbulent diffusion and advection by the accretion flow contribute to flux transport, and they are likely to act in opposition. We study the consequences of the vertical variation of the diffusion coefficients, due to a varying strength of the turbulence. For this purpose, we consider three different vertical profiles of these coefficients. The first one is aimed at mimicking the turbulent stress profile observed in numerical simulations of MHD turbulence in stratified discs. This enables us to confirm the robustness of the main result of Paper I obtained for uniform diffusion coefficients that, for weak magnetic fields, the contribution of the accretion flow to the transport velocity of magnetic flux is much larger than the transport velocity of mass. We then consider the presence of a dead zone around the equatorial plane, where the physical resistivity is high while the turbulent viscosity is low. We find that it amplifies the previous effect: weak magnetic fields can be advected orders of magnitude faster than mass, for dead zones with a large vertical extension. The ratio of advection to diffusion, determining the maximum inclination of the field at the surface of the disc, is however not much affected. Finally, we study the effect of a non-turbulent layer at the surface of the disc, which has been suggested as a way to reduce the diffusion of the magnetic flux. We find that the reduction of the diffusion requires the conducting layer to extend below the height at which the magnetic pressure equals the thermal pressure. As a consequence, if the absence of turbulence is caused by the large-scale magnetic field, the highly conducting layer is inefficient at reducing the diffusion.
15 pages, 12 figures, accepted for publication in MNRAS
References in corpus (7)
- A High Order Godunov Scheme with Constrained Transport and Adaptive Mesh Refinement for Astrophysical MHD
- Which jet launching mechanism(s) in TTauri stars?
- Global MHD simulations of stratified and turbulent protoplanetary discs. I. Model properties
- Advection of Magnetic Fields in Accretion Disks: Not So Difficult After All
- Transport of magnetic flux and the vertical structure of accretion discs: I. Uniform diffusion coefficients
- Advection/Diffusion of Large-Scale B-Field in Accretion Disks
- Large Scale B-Field in Stationary Accretion Disks
Cited by in corpus (58)
- Hot Accretion Flows Around Black Holes
- Wind-driven Accretion in Protoplanetary Disks. I: Suppression of the Magnetorotational Instability and Launching of the Magnetocentrifugal Wind
- Global simulations of protoplanetary disks with net magnetic flux: I. Non-ideal MHD case
- Energy, momentum and mass outflows and feedback from thick accretion discs around rotating black holes
- Large-Scale Poloidal Magnetic Field Dynamo Leads to Powerful Jets in GRMHD Simulations of Black Hole Accretion with Toroidal Field
- Global Evolution of an Accretion Disk with Net Vertical Field: Coronal Accretion, Flux Transport, and Disk Winds
- Hall-effect Controlled Gas Dynamics in Protoplanetary Disks: I. Wind Solutions at the Inner Disk
- Bardeen-Petterson Alignment, Jets and Magnetic Truncation in GRMHD Simulations of Tilted Thin Accretion Discs
- Thin accretion disks are stabilized by a strong magnetic field
- Hall-effect Mediated Magnetic Flux Transport in Protoplanetary Disks
- The large scale magnetic fields of thin accretion disks
- Energy flows in thick accretion disks and their consequences for black hole feedback
- Ring formation and dust dynamics in wind-driven protoplanetary discs: global simulations
- Spontaneous ring formation in wind-emitting accretion discs
- Characterizing the mean-field dynamo in turbulent accretion disks
- Magnetic outflows from turbulent accretion disks: I. Vertical structure & secular evolution
- Two timescale dispersal of magnetized protoplanetary disks
- Radial Transport of Large-Scale Magnetic Fields in Accretion Disks. I. Steady Solutions and an Upper Limit on the Vertical Field Strength
- Global evolution of the magnetic field in a thin disc and its consequences for protoplanetary systems
- Global 3-D Radiation Magnetohydrodynamic Simulations for FU Ori's Accretion Disk and Observational Signatures of Magnetic Fields
- Numerical simulations of the magnetorotational instability in protoneutron stars: I. Influence of buoyancy
- Jet and disk luminosities in tidal disruption events
- The outflows accelerated by the magnetic fields and radiation force of accretion disks
- Three-dimensional Global Simulations of Type-II Planet-disk Interaction with a Magnetized Disk Wind: I. Magnetic Flux Concentration and Gap Properties
- An accretion disk-outflow model for hysteretic state transition in X-ray binaries
- Physics in Very Strong Magnetic Fields: Introduction and Overview
- The large-scale magnetic field of a thin accretion disk with outflows
- Gravitoturbulent dynamos in astrophysical discs
- Radial Transport of Large-Scale Magnetic Fields in Accretion Disks. II. Relaxation to Steady States
- Magnetic flux stabilizing thin accretion disks
- Episodic jet power extracted from a spinning black hole surrounded by a neutrino-dominated accretion flow in gamma-ray bursts
- Characterising the Dynamo in a Radiatively Inefficient Accretion Flow
- On the radio dichotomy of active galactic nuclei
- Co-evolution of dust grains and protoplanetary disks
- Heating of Accretion-Disk Coronae and Jets by General Relativistic MHD Turbulence
- H-AMR FORGE'd in FIRE I: Magnetic state transitions, jet launching and radiative emission in super-Eddington, highly magnetized quasar disks formed from cosmological initial conditions
- The power of the jets accelerated by the coronal magnetic field
- Electric heating and angular momentum transport in laminar models of protoplanetary disks
- On the diversity of the jet production efficiency in Swift/BAT AGNs
- Jets in the soft state in Cyg X-3 caused by advection of the donor magnetic field and unification with low-mass X-ray binaries
- High-Resolution Mid-Infrared Spectroscopy of GV Tau N: Surface Accretion and Detection of Ammonia in a Young Protoplanetary Disk
- Jet production in black-hole X-ray binaries and active galactic nuclei: mass feeding and advection of magnetic fields
- Local semi-analytic models of magnetic flux transport in protoplanetary discs
- Magnetically Advected Winds
- The large-scale magnetic field advected in the corona of a thin accretion disk
- Magnetic field structure in the vicinity of a super-massive black hole in low luminosity galaxies: the case of Sgr A*
- Vertical Structure of Magnetized Accretion Disks around Young Stars
- Advection of Matter and B-Fields in Alpha-Discs
- Magnetorotationally driven wind cycles in local disc models
- Stratified Global MHD Models of Accretion Disks in Semi-Detached Binaries
- Gravito-turbulence and dynamo in poorly ionised protostellar discs. I. Zero-net-flux case
- Global magnetohydrodynamic simulations of the inner regions of protoplanetary discs. I. Zero-net flux regime
- The dynamical structure of the outflows driven by a large-scale magnetic field
- Helical and nonhelical large-scale dynamos in thin accretion discs
- Inertial-Acoustic Oscillations of Black-Hole Accretion Discs with Large-Scale Poloidal Magnetic Fields
- A magnetic model for low/hard state of black hole binaries
- The dependence of the fraction of radio luminous quasars on redshift and its theoretical implications
- Global Non-ideal Magnetohydrodynamic Simulations of Protoplanetary Disks with Outer Truncation