Wind-driven Accretion in Protoplanetary Disks. I: Suppression of the Magnetorotational Instability and Launching of the Magnetocentrifugal Wind
arXiv:1301.0318 · doi:10.1088/0004-637X/769/1/76
Abstract
We perform local, vertically stratified shearing-box MHD simulations of protoplanetary disks (PPDs) at a fiducial radius of 1 AU that take into account the effects of both Ohmic resistivity and ambipolar diffusion (AD). The magnetic diffusion coefficients are evaluated self-consistently from a look-up table based on equilibrium chemistry. We first show that the inclusion of AD dramatically changes the conventional picture of layered accretion. Without net vertical magnetic field, the system evolves into a toroidal field dominated configuration with extremely weak turbulence in the far-UV ionization layer that is far too inefficient to drive rapid accretion. In the presence of a weak net vertical field (plasma beta~10^5 at midplane), we find that the MRI is completely suppressed, resulting in a fully laminar flow throughout the vertical extent of the disk. A strong magnetocentrifugal wind is launched that efficiently carries away disk angular momentum and easily accounts for the observed accretion rate in PPDs. Moreover, under a physical disk wind geometry, all the accretion flow proceeds through a strong current layer with thickness of ~0.3H that is offset from disk midplane with radial velocity of up to 0.4 times the sound speed. Both Ohmic resistivity and AD are essential for the suppression of the MRI and wind launching. The efficiency of wind transport increases with increasing net vertical magnetic flux and the penetration depth of the FUV ionization. Our laminar wind solution has important implications on planet formation and global evolution of PPDs.
23 pages, 13 figures, accepted to ApJ
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- Rossby wave instability in weakly ionized protoplanetary disks. II. radial B-fields
- Episodic accretion in high-mass star formation: An analysis of thermal instability for axially symmetric disks
- Enhanced Pebble Drift Across Planet-Opened Gaps in Windy Protoplanetary Disks
- Global magnetohydrodynamic simulations of the inner regions of protoplanetary discs. II. Vertical-net-flux regime
- Using simultaneous mass accretion and external photoevaporation rates for d203-504 to constrain disc evolution processes
- Measuring the Numerical Viscosity in Simulations of Protoplanetary Disks in Cartesian Grids -- The Viscously Spreading Ring Revisited
- Models and Observational Predictions of Dust Traps in Protoplanetary Discs
- Effects of Self-gravity on Mass-loss of the Post-impact Super-Earths
- Modelling the Break in the Specific Angular Momentum within the Envelope-Disk Transition Zone
- Compact CO emission and no evidence of radial drift. ALMA observations of the faintest planet-forming disks in Lupus
- Thermally driven spontaneous dust accumulation in the inner regions of protoplanetary disks
- Low mass planet migration in Hall-affected disks
- Planet formation in evolving protoplanetary discs
- On the dynamics of pebbles in protoplanetary disks with magnetically-driven winds
- The competition between the hydrodynamic instability from noise and magnetorotational instability in the Keplerian disks
- Evolution of the Accretion Rate of Young Intermediate Mass Stars: Implications for Disk Evolution and Planet Formation
- Protoplanetary Disk Chemistry
- Survival of Protoplanetary Disks in Upper Scorpius from Population Synthesis Models with External Photoevaporation
- Global Non-ideal Magnetohydrodynamic Simulations of Protoplanetary Disks with Outer Truncation
- MHD disc winds can reproduce fast disc dispersal and the correlation between accretion rate and disc mass in Lupus
- History of the Solar Nebula from Meteorite Paleomagnetism
- Protoplanetary disk formation from the collapse of a prestellar core
- ALMA polarimetric studies of rotating jet/disk systems
- Modelling the secular evolution of proto-planetary disc dust sizes -- A comparison between the viscous and magnetic wind case
- Gas chemistry in the dust depleted inner regions of protoplanetary disks. I. Near-IR spectra and overtones