Magnetized Accretion and Dead Zones in Protostellar Disks
arXiv:1301.1487 · doi:10.1088/0004-637X/765/2/114
Abstract
The edges of magnetically-dead zones in protostellar disks have been proposed as locations where density bumps may arise, trapping planetesimals and helping form planets. Magneto-rotational turbulence in magnetically-active zones provides both accretion of gas on the star and transport of mass to the dead zone. We investigate the location of the magnetically-active regions in a protostellar disk around a solar-type star, varying the disk temperature, surface density profile, and dust-to-gas ratio. We also consider stellar masses between 0.4 and 2 , with corresponding adjustments in the disk mass and temperature. The dead zone's size and shape are found using the Elsasser number criterion with conductivities including the contributions from ions, electrons, and charged fractal dust aggregates. The charged species' abundances are found using the approach proposed by S. Okuzumi. The dead zone is in most cases defined by the ambipolar diffusion. In our maps, the dead zone takes a variety of shapes, including a fish-tail pointing away from the star and islands located on and off the midplane. The corresponding accretion rates vary with radius, indicating locations where the surface density will increase over time, and others where it will decrease. We show that density bumps do not readily grow near the dead zone's outer edge, independently of the disk parameters and the dust properties. Instead, the accretion rate peaks at the radius where the gas-phase metals freeze out. This could lead to clearing a valley in the surface density, and to a trap for pebbles located just outside the metal freeze-out line.
58 pages, 25 figures, 2 tables, accepted to ApJ
References in corpus (16)
- Protoplanetary Disk Structures in Ophiuchus
- H3+ in Diffuse Interstellar Clouds: a Tracer for the Cosmic-Ray Ionization Rate
- Grain Retention and Formation of Planetesimals near the Snow Line in MRI-driven Turbulent Protoplanetary Disks
- Magnetic fields in protoplanetary disks
- Heat and Dust in Active Layers of Protostellar Disks
- Planet formation bursts at the borders of the dead zone in 2D numerical simulations of circumstellar disks
- Planetesimal formation around the snow line in MRI-driven turbulent protoplanetary disks
- Gas and Dust Emission at the Outer Edge of Protoplanetary Disks
- Dead Zone Accretion Flows in Protostellar Disks
- On the Evolution of the Snow Line in Protoplanetary Discs
- Global MHD simulations of stratified and turbulent protoplanetary discs. I. Model properties
- Turbulence In the Outer Regions of Protoplanetary Disks. I. Weak Accretion with No Vertical Magnetic Flux
- Simulations of Magnetorotational Turbulence with a Higher-Order Godunov Scheme
- 3D MHD Simulations of Planet Migration in Turbulent Stratified Disks
- Dead, Undead and Zombie Zones in Protostellar Disks as a Function of Stellar Mass
- Interdependence of Electric Discharge and The Magnetorotational Instability in Protoplanetary Disks
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- Observations of Protoplanetary Disk Structures
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- The circumstellar disk HD169142: gas, dust and planets acting in concert?
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- Mapping the Conditions for Hydrodynamic Instability on Steady State Accretion Models of Protoplanetary Disks
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- Efficiency of thermal relaxation by radiative processes in protoplanetary discs: constraints on hydrodynamic turbulence
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- Steady-state accretion in magnetized protoplanetary disks
- On the evolution of the snow line in protoplanetary discs II: Analytic approximations
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- Radial variations in grain sizes and dust scale heights in the protoplanetary disk around HD 163296 revealed by ALMA polarization observation
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- Magnetic fields in protoplanetary disks: from MHD simulations to ALMA observations
- Magnetic Coupling in the Disks Around Young Gas Giant Planets
- The Fate of Planetesimals in Turbulent Disks with Dead Zones. I. The Turbulent Stirring Recipe
- On the Grain-Modified Magnetic Diffusivities in Protoplanetary Disks
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- Discovery of Line Pressure Broadening and Direct Constraint on Gas Surface Density in a Protoplanetary Disk
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- No self-shadowing instability in 2D radiation-hydrodynamical models of irradiated protoplanetary disks
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- Primordial Dusty Rings and Episodic Outbursts in Protoplanetary Discs
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- Instabilities and Flow Structures in Protoplanetary Disks: Setting the Stage for Planetesimal Formation
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