Heat and Dust in Active Layers of Protostellar Disks
arXiv:0904.1240 · doi:10.1088/0004-637X/701/1/737
Abstract
Requirements for magnetic coupling and accretion in the active layer of a protostellar disk are re-examined, and some implications for thermal emission from the layer are discussed. The ionization and electrical conductivity are calculated following the general scheme of Ilgner and Nelson but with an updated UMIST database of chemical reactions and some improvements in the grain physics, and for the minimum-mass solar nebula rather than an alpha disk. The new limits on grain abundance are slightly more severe than theirs. Even for optimally sized grains, the layer should be at least marginally optically thin to its own thermal radiation, so that narrow, highly saturated emission lines of water and other molecular species would be expected if accretion is driven by turbulence and standard rates of ionization prevail. If the grain size distribution extends broadly from well below a micron to a millimeter or more, as suggested by observations, then the layer may be so optically thin that its cooling is dominated by molecular emission. Even under such conditions, it is difficult to have active layers of more than 10g/cm^2 near 1AU unless dust is entirely eliminated or greatly enhanced ionization rates are assumed. Equipartition-strength magnetic fields are then required in these regions of the disk if observed accretion rates are driven by magnetorotational turbulence. Wind-driven accretion might allow weaker fields and less massive active layers but would not heat the layer as much as turbulence and therefore might not produce emission lines.
Published in ApJ, arxiv version contains supplemental information on effects of X-ray scattering to disk ionization in the appendix
References in corpus (11)
- Line and Mean Opacities for Ultracool Dwarfs and Extrasolar Planets
- Atomic and Molecular Opacities for Brown Dwarf and Giant Planet Atmospheres
- H2O and OH gas in the terrestrial planet-forming zones of protoplanetary disks
- Magnetic fields in protoplanetary disks
- Dead Zone Accretion Flows in Protostellar Disks
- Turbulent Torques on Protoplanets in a Dead Zone
- Chemistry in Protoplanetary Disks: A Sensitivity Analysis
- New composite models of partially ionized protoplanetary disks
- Turbulent transport and its effect on the dead zone in protoplanetary discs
- The signature of the magnetorotational instability in the Reynolds and Maxwell stress tensors in accretion discs
- Magnetorotational instability in protoplanetary discs: The effect of dust grains
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- Three-dimensional Global Simulations of Type-II Planet-disk Interaction with a Magnetized Disk Wind: I. Magnetic Flux Concentration and Gap Properties
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- The ionising effect of low energy cosmic rays from a class II object on its protoplanetary disk
- Paleomagnetic evidence for a disk substructure in the early solar system
- Lifetime of the Outer Solar System Nebula From Carbonaceous Chondrites
- The vertical shear instability in poorly ionised, magnetized protoplanetary discs
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- Magnetised Winds in Transition Discs I: 2.5D Global Simulations
- Inhibited Coagulation of Micron-size Dust Due to the Electrostatic Barrier
- Magnetic Flux Transport in Radiatively Inefficient Accretion Flows and the Pathway towards a Magnetically Arrested Disk
- Close-in Super-Earths: The first and the last stages of planet formation in an MRI-accreting disc
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- Different degrees of nitrogen and carbon depletion in the warm molecular layers of protoplanetary disks
- Dynamics Near the Inner Dead-Zone Edges in a Proprotoplanetary Disk
- Centrifugally driven winds from protostellar accretion discs. I - Formulation and initial results
- FUV Irradiation and the Heat Signature of Accretion in Protoplanetary Disk Atmospheres
- The Roles of Dust Growth in the Temperature Evolution and Snow Line Migration in Magnetically Accreting Protoplanetary Disks
- Magnetohydrodynamics of protoplanetary discs
- The impact of dust evolution on the dead zone outer edge in magnetized protoplanetary disks
- Modeling Nitrogen Fractionation in the Protoplanetary Disk around TW Hya: Model Constraints on Grain Population and Carbon-to-Oxygen Elemental Abundance Ratio
- Growth of Magnetorotational Instability in Circumstellar Disks around Class 0 Protostars
- Chemical network reduction in protoplanetary disks
- On the settling of small grains in dusty discs: analysis and formulas
- MRI-active inner regions of protoplanetary discs. II. Dependence on dust, disc and stellar parameters
- Stellar cosmic rays as an important source of ionisation in protoplanetary disks: a disk mass dependent process
- Radiative Nonideal MHD Simulations of Inner Protoplanetary Disks: Temperature Structures, Asymmetric Winds, and Episodic Surface Accretion
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- The Generalized Nonlinear Ohm's Law: How a Strong Electric Field Influences Non-ideal MHD Effects in Dusty Protoplanetary Disks
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- The evolution of a circumplanetary disc with a dead zone
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- Protoplanetary disks around magnetized young stars with large-scale magnetic fields I: Steady-state solutions
- Photophoretic Levitation and Trapping of Dust in the Inner Regions of Protoplanetary Disks
- Photoevaporation from Inner Protoplanetary Disks Confronted with Observations
- Global Non-ideal Magnetohydrodynamic Simulations of Protoplanetary Disks with Outer Truncation
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