Inside-Out Planet Formation. V. Structure of the Inner Disk as Implied by the MRI
arXiv:1712.07049 · doi:10.3847/1538-4357/aabcd0
Abstract
The large population of Earth to super-Earth sized planets found very close to their host stars has motivated consideration of formation models. In particular, Inside-Out Planet Formation is a scenario in which planets coalesce sequentially in the disk, at the local gas pressure maximum near the inner boundary of the dead zone. The pressure maximum arises from a decline in viscosity, going from the active innermost disk (where thermal ionization of alkalis yields high viscosities via the magneto-rotational instability (MRI)) to the adjacent dead zone (where the MRI is quenched). Previous studies of the pressure maximum, based on -disk models, have assumed ad hoc values for the viscosity parameter in the active zone, ignoring the detailed physics of the MRI. Here we explicitly couple the MRI criteria to the -disk equations, to find steady-state (constant accretion rate) solutions for the disk structure. We consider the effects of both Ohmic and ambipolar resistivities, and find solutions for a range of disk accretion rates ( = - /yr), stellar masses ( = 0.1 - 1 ), and fiducial values of the -MRI -viscosity in the dead zone ( - ). We find that: (1) A midplane pressure maximum forms radially the inner boundary of the dead zone; (2) Hall resistivity dominates near the midplane in the inner disk, which may explain why close-in planets do form in 50% of systems; (3) X-ray ionization can be competitive with thermal ionization in the inner disk, because of the low surface density there in steady-state; and (4) our inner disk solutions are viscously unstable to surface density perturbations.
34 pages, 28 figures, 3 appendices. Accepted by the Astrophysical Journal
References in corpus (19)
- A Unified Representation of Gas-Phase Element Depletions in the Interstellar Medium
- Separating gas-giant and ice-giant planets by halting pebble accretion
- Global simulations of protoplanetary disks with ohmic resistivity and ambipolar diffusion
- Planetary Candidates Observed by Kepler VI: Planet Sample from Q1-Q16 (47 Months)
- Dust size distributions in coagulation/fragmentation equilibrium: Numerical solutions and analytical fits
- Grain Retention and Formation of Planetesimals near the Snow Line in MRI-driven Turbulent Protoplanetary Disks
- Magnetic fields in protoplanetary disks
- On the corotation torque in a radiatively inefficient disk
- Hall-effect Controlled Gas Dynamics in Protoplanetary Disks: II. Full 3D Simulations toward the Outer Disk
- Heat and Dust in Active Layers of Protostellar Disks
- Global Simulations of the Inner Regions of Protoplanetary Disks with Comprehensive Disk Microphysics
- Dead Zone Accretion Flows in Protostellar Disks
- Type I planetary migration in a self-gravitating disk
- On the Linear Stability of Weakly-Ionized, Magnetized Planar Shear Flows
- A reassessment of the in situ formation of close-in super-Earths
- Assembling the Building Blocks of Giant Planets around Intermediate Mass Stars
- Vulcan Planets: Inside-Out Formation of the Innermost Super-Earths
- Migration and Growth of Protoplanetary Embryos I: Convergence of Embryos in Protoplanetary Disks
- Inside-Out Planet Formation. IV. Pebble Evolution and Planet Formation Timescales
Cited by in corpus (20)
- Photoevaporation and High-Eccentricity Migration Created the Sub-Jovian Desert
- The GRAVITY Young Stellar Object survey -- I. Probing the disks of Herbig Ae/Be stars in terrestrial orbits
- RV-detected planets around M dwarfs: Challenges for core accretion models
- Steady-state accretion in magnetized protoplanetary disks
- Orbital misalignment of the super-Earth Men c with the spin of its star
- MRI-active inner regions of protoplanetary discs. I. A detailed model of disc structure
- Formation of planetary systems by pebble accretion and migration: Hot super-Earth systems from breaking compact resonant chains
- Ohmic heating of asteroids around magnetic stars
- Close-in Super-Earths: The first and the last stages of planet formation in an MRI-accreting disc
- Complex Magnetospheric Accretion Flows in Low Accretor CVSO 1335
- Variability of the inner dead zone edge in 2D radiation hydrodynamic simulations
- Multi-frequency observations of PDS 70c: Radio emission mechanisms in the circum-planetary environment
- Global magnetohydrodynamic simulations of the inner regions of protoplanetary discs. I. Zero-net flux regime
- Evolution of circumbinary protoplanetary disks with photoevaporative winds driven by External Far Ultraviolet Radiation
- Ionization chemistry in the inner disc: a combined treatment of ionic and thermionic emission and arbitrary grain size distributions
- Dynamics of small grains in transitional discs
- Prograde spin-up during gravitational collapse
- Protoplanetary disks around magnetized young stars with large-scale magnetic fields I: Steady-state solutions
- Transport of electrons in tangled magnetic fields
- Inside-Out Planet Formation: VI. Oligarchic Coagulation of Planetesimals from a Pebble Ring?