Vertical Structure of Magnetized Accretion Disks around Young Stars
arXiv:1512.01159 · doi:10.3847/0004-637X/817/1/35
Abstract
We model the vertical structure of magnetized accretion disks subject to viscous and resistive heating, and irradiation by the central star. We apply our formalism to the radial structure of magnetized accretion disks threaded by a poloidal magnetic field dragged during the process of star formation developed by Shu and coworkers. We consider disks around low mass protostars, T Tauri, and FU Orionis stars. We consider two levels of disk magnetization, (strongly magnetized disks), and (weakly magnetized disks). The rotation rates of strongly magnetized disks have large deviations from Keplerian rotation. In these models, resistive heating dominates the thermal structure for the FU Ori disk. The T Tauri disk is very thin and cold because it is strongly compressed by magnetic pressure; it may be too thin compared with observations. Instead, in the weakly magnetized disks, rotation velocities are close to Keplerian, and resistive heating is always less than 7\% of the viscous heating. In these models, the T Tauri disk has a larger aspect ratio, consistent with that inferred from observations. All the disks have spatially extended hot atmospheres where the irradiation flux is absorbed, although most of the mass ( \%) is in the disk midplane. With the advent of ALMA one expects direct measurements of magnetic fields and their morphology at disk scales. It will then be possible to determine the mass-to-flux ratio of magnetized accretion disks around young stars, an essential parameter for their structure and evolution. Our models contribute to the understanding of the vertical structure and emission of these disks.
37 pages, 8 figures
References in corpus (16)
- Protoplanetary Disk Structures in Ophiuchus
- Magnetic Fields in the Formation of Sun-Like Stars
- Global simulations of protoplanetary disks with ohmic resistivity and ambipolar diffusion
- Hall-effect Controlled Gas Dynamics in Protoplanetary Disks: II. Full 3D Simulations toward the Outer Disk
- Gravitational collapse of magnetized clouds. I. Ideal MHD accretion flow
- Survival of the mm-cm size grain population observed in protoplanetary disks
- Testing the theory of grain growth and fragmentation by millimeter observations of protoplanetary disks
- Spatially Resolved Magnetic Field Structure in the Disk of a T Tauri Star
- Gravitational collapse of magnetized clouds II. The role of Ohmic dissipation
- Evolution of Magnetic Fields in High Mass Star Formation: Linking field geometry and collapse for the W51 e2/e8 cores
- Mean-Field Magnetohydrodynamics of Accretion Disks
- The Magnetic Field in the Class 0 Protostellar Disk of L1527
- Global evolution of the magnetic field in a thin disc and its consequences for protoplanetary systems
- On the Role of Pseudodisk Warping and Reconnection in Protostellar Disk Formation in Turbulent Magnetized Cores
- The Challenge of Sub-Keplerian Rotation for Disk Winds
- Probing Dust Settling in Proto-planetary Disks with ALMA
Cited by in corpus (8)
- Stringent limits on the magnetic field strength in the disc of TW Hya: ALMA observations of CN polarisation
- The young protostellar disk in IRAS16293-2422 B is hot and shows signatures of gravitational instability
- Emission from Magnetized Accretion Disks around Young Stars
- Dynamics of magnetized accretion disks of young stars
- Exploring the Grain Properties in the Disk of HL Tau with an Evolutionary Model
- Influence of Ohmic and ambipolar heating on thermal structure of accretion discs
- Physical and chemical vertical structure of magnetostatic accretion disks of young stars
- The EXor phenomenon