Low mass planet migration in magnetically torqued dead zones - I. Static migration torque
arXiv:1708.05721 · doi:10.1093/mnras/stx2136
Abstract
Motivated by models suggesting that the inner planet forming regions of protoplanetary discs are predominantly lacking in viscosity-inducing turbulence, and are possibly threaded by Hall-effect generated large-scale horizontal magnetic fields, we examine the dynamics of the corotation region of a low-mass planet in such an environment. The corotation torque in an inviscid, isothermal, dead zone ought to saturate, with the libration region becoming both symmetrical and of a uniform vortensity, leading to fast inward migration driven by the Lindblad torques alone. However, in such a low viscosity situation, the material on librating streamlines essentially preserves its vortensity. If there is relative radial motion between the disc gas and the planet, the librating streamlines will no longer be symmetrical. Hence, if the gas is torqued by a large scale magnetic field so that it undergoes a net inflow or outflow past the planet, driving evolution of the vortensity and inducing asymmetry of the corotation region, the corotation torque can grow, leading to a positive torque. In this paper we treat this effect by applying a symmetry argument to the previously studied case of a migrating planet in an inviscid disc. Our results show that the corotation torque due to a laminar Hall-induced magnetic field in a dead zone behaves quite differently from that studied previously for a viscous disc. Furthermore, the magnetic field induced corotation torque and the dynamical corotation torque in a low viscosity disc can be regarded as one unified effect.
12 pages, 9 figures, MNRAS in press, update to match journal corrected proofs
References in corpus (13)
- 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
- On corotation torques, horseshoe drag and the possibility of sustained stalled or outward protoplanetary migration
- Convective Overstability in radially stratified accretion disks under thermal relaxation
- Dynamical corotation torques on low-mass planets
- On the Linear Stability of Weakly-Ionized, Magnetized Planar Shear Flows
- Convective overstability in accretion disks: 3D linear analysis and nonlinear saturation
- Growing and moving low-mass planets in non-isothermal disks
- On the dynamics of planetesimals embedded in turbulent protoplanetary discs with dead zones
- Migration of accreting planets in radiative discs from dynamical torques
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- Formation of close-in super-Earths in evolving protoplanetary disks due to disk winds
- Global Hydromagnetic Simulations of Protoplanetary Disks with Stellar Irradiation and Simplified Thermochemistry
- Migrating super-Earths in low-viscosity discs: unveiling the roles of feedback, vortices, and laminar accretion flows
- Planet Formation in Disks with Inclined Binary Companions: Can Primordial Spin-Orbit Misalignment be Produced?
- Effect of wind-driven accretion on planetary migration
- The dynamics of the TRAPPIST-1 system in the context of its formation
- Low mass planet migration in magnetically torqued dead zones - II. Flow-locked and runaway migration, and a torque prescription
- Low-mass planet migration in three dimensional wind-driven inviscid discs: a negative corotation torque
- 3D Simulations of Planet Trapping at Disc-Cavity Boundaries
- Vertical gas accretion impacts the carbon-to-oxygen ratio of gas giant atmospheres
- Dusty disc-planet interaction with dust-free simulations
- Migration of Jupiter mass planets in discs with laminar accretion flows
- Migrating Low-Mass Planets in Inviscid Dusty Protoplanetary Discs
- Pebble-driven migration of low-mass planets in the 2D regime of pebble accretion
- Streaming instabilities in accreting and magnetized laminar protoplanetary disks
- Planetary Migration in Protoplanetary Disks
- Formation of Planetary Populations II: Effects of Initial Disk Size & Radial Dust Drift
- Trapping (sub-)Neptunes similar to TOI-216b at the inner disk rim: Implications for the disk viscosity and the Neptunian desert
- Combined Effects of Disk Winds and Turbulence-Driven Accretion on Planet Populations
- Turbulent Disk Viscosity and the Bifurcation of Planet Formation Histories
- Connecting Planetary Composition with Formation
- Nonlinear evolution of streaming instabilities in accreting protoplanetary disks
- On the evolution of pebble-accreting planets in evolving protoplanetary discs
- On wave interference in planet migration: dead zone torques modified by active zone forcing
- Single Fluid vs. Multifluid: Comparison between single fluid and multifluid dust models for disc planet interactions
- Low mass planet migration in Hall-affected disks
- Dust Dynamics in Hall-effected Protoplanetary Disks. I. Background Drift Hall Instability
- Streaming instabilities in accreting protoplanetary disks: A parameter study