Low mass planet migration in magnetically torqued dead zones - II. Flow-locked and runaway migration, and a torque prescription
arXiv:1804.02290 · doi:10.1093/mnras/sty905
Abstract
We examine the migration of low mass planets in laminar protoplanetary discs, threaded by large scale magnetic fields in the dead zone that drive radial gas flows. As shown in Paper I, a dynamical corotation torque arises due to the flow-induced asymmetric distortion of the corotation region and the evolving vortensity contrast between the librating horseshoe material and background disc flow. Using simulations of laminar torqued discs containing migrating planets, we demonstrate the existence of the four distinct migration regimes predicted in Paper I. In two regimes, the migration is approximately locked to the inward or outward radial gas flow, and in the other regimes the planet undergoes outward runaway migration that eventually settles to fast steady migration. In addition, we demonstrate torque and migration reversals induced by midplane magnetic stresses, with a bifurcation dependent on the disc surface density. We develop a model for fast migration, and show why the outward runaway saturates to a steady speed, and examine phenomenologically its termination due to changing local disc conditions. We also develop an analytical model for the corotation torque at late times that includes viscosity, for application to discs that sustain modest turbulence. Finally, we use the simulation results to develop torque prescriptions for inclusion in population synthesis models of planet formation.
19 pages, 17 figures, Submitted
References in corpus (20)
- Astrophysics Source Code Library
- Separating gas-giant and ice-giant planets by halting pebble accretion
- A comparative study of disc-planet interaction
- Global simulations of protoplanetary disks with ohmic resistivity and ambipolar diffusion
- 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
- Hall magnetohydrodynamics of partially ionized plasmas
- Type I planetary migration in a self-gravitating disk
- On disc protoplanet interactions in a non-barotropic disc with thermal diffusion
- Dynamical corotation torques on low-mass planets
- Type I Planet Migration in Nearly Laminar Disks
- On the Linear Stability of Weakly-Ionized, Magnetized Planar Shear Flows
- Saturated torque formula for planetary migration in viscous disks with thermal diffusion: recipe for protoplanet population synthesis
- Growing and moving low-mass planets in non-isothermal disks
- Numerical simulations of type III planetary migration: III. Outward migration of massive planets
- Numerical simulations of the type III migration:I. Disc model and convergence tests
- Low mass planet migration in magnetically torqued dead zones - I. Static migration torque
- Numerical simulations of type III planetary migration: II. Inward migration of massive planets
- Migration of accreting planets in radiative discs from dynamical torques
- Effects of global gas flows on type I migration
Cited by in corpus (21)
- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
- Formation of planetary systems by pebble accretion and migration: Growth of gas giants
- The Role of Magnetic Fields in Protostellar Outflows and Star Formation
- Global Hydromagnetic Simulations of Protoplanetary Disks with Stellar Irradiation and Simplified Thermochemistry
- Pebbles versus Planetesimals: The case of Trappist-1
- Growth after the streaming instability: from planetesimal accretion to pebble accretion
- Migrating super-Earths in low-viscosity discs: unveiling the roles of feedback, vortices, and laminar accretion flows
- Effect of wind-driven accretion on planetary migration
- Thermal torque effects on the migration of growing low-mass planets
- Low-mass planet migration in three dimensional wind-driven inviscid discs: a negative corotation torque
- 3D Simulations of Planet Trapping at Disc-Cavity Boundaries
- From Dust to Planets I: Planetesimal and Embryo Formation
- Vortex instabilities triggered by low-mass planets in pebble-rich, inviscid protoplanetary discs
- Planetary Migration in Protoplanetary Disks
- Formation of Planetary Populations II: Effects of Initial Disk Size & Radial Dust Drift
- Dynamical signatures of Rossby vortices in cavity-hosting disks
- Combined Effects of Disk Winds and Turbulence-Driven Accretion on Planet Populations
- On the evolution of pebble-accreting planets in evolving protoplanetary discs
- Connecting planet formation and astrochemistry: C/O and N/O of warm giant planets and Jupiter-analogs
- On wave interference in planet migration: dead zone torques modified by active zone forcing
- Dust-void evolution driven by turbulent dust flux can induce runaway migration of Earth-mass planets