On the horseshoe drag of a low-mass planet. II Migration in adiabatic disks
arXiv:0907.4676 · doi:10.1088/0004-637X/703/1/857
Abstract
We evaluate the horseshoe drag exerted on a low-mass planet embedded in a gaseous disk, assuming the disk's flow in the coorbital region to be adiabatic. We restrict this analysis to the case of a planet on a circular orbit, and we assume a steady flow in the corotating frame. We also assume that the corotational flow upstream of the U-turns is unperturbed, so that we discard saturation effects. In addition to the classical expression for the horseshoe drag in barotropic disks, which features the vortensity gradient across corotation, we find an additional term which scales with the entropy gradient, and whose amplitude depends on the perturbed pressure at the stagnation point of the horseshoe separatrices. This additional torque is exerted by evanescent waves launched at the horseshoe separatrices, as a consequence of an asymmetry of the horseshoe region. It has a steep dependence on the potential's softening length, suggesting that the effect can be extremely strong in the three dimensional case. We describe the main properties of the coorbital region (the production of vortensity during the U-turns, the appearance of vorticity sheets at the downstream separatrices, and the pressure response), and we give torque expressions suitable to this regime of migration. Side results include a weak, negative feed back on migration, due to the dependence of the location of the stagnation point on the migration rate, and a mild enhancement of the vortensity related torque at large entropy gradient.
Accepted for publication in ApJ
References in corpus (6)
- A comparative study of disc-planet interaction
- Halting Type I planet migration in non-isothermal disks
- On the corotation torque in a radiatively inefficient disk
- On corotation torques, horseshoe drag and the possibility of sustained stalled or outward protoplanetary migration
- On disc protoplanet interactions in a non-barotropic disc with thermal diffusion
- On the width and shape of the corotation region for low-mass planets
Cited by in corpus (46)
- A low mass for Mars from Jupiter's early gas-driven migration
- Planet-disk interaction and orbital evolution
- A torque formula for non-isothermal Type I planetary migration - I. Unsaturated horseshoe drag
- The great dichotomy of the Solar System: small terrestrial embryos and massive giant planet cores
- Toward a Deterministic Model of Planetary Formation VI: Dynamical Interaction and Coagulation of Multiple Rocky Embryos and Super-Earth Systems around Solar Type Stars
- Fossilized condensation lines in the Solar System protoplanetary disk
- Rapid inward migration of planets formed by gravitational instability
- An azimuthal asymmetry in the LkHa 330 disk
- Binaries migrating in a gaseous disk: Where are the Galactic center binaries?
- Dynamical corotation torques on low-mass planets
- Migration of Earth-size planets in 3D radiative discs
- Impacts of planet migration models on planetary populations. Effects of saturation, cooling and stellar irradiation
- The 3D Flow Field Around an Embedded Planet
- Improved torque formula for low and intermediate mass planetary migration
- Saturated torque formula for planetary migration in viscous disks with thermal diffusion: recipe for protoplanet population synthesis
- Protoplanetary migration in turbulent isothermal disks
- Long-term & large-scale viscous evolution of dense planetary rings
- Range of outward migration and influence of the disc's mass on the migration of giant planet cores
- Circumplanetary Disk Dynamics in the Isothermal and Adiabatic Limits
- Analysis of terrestrial planet formation by the Grand Tack model: System architecture and tack location
- Type I planet migration in weakly magnetised laminar discs
- Predicted diversity in water content of terrestrial exoplanets orbiting M dwarfs
- Torques Induced by Scattered Pebble-flow in Protoplanetary Disks
- Recent developments in planet migration theory
- Horseshoe drag in three-dimensional globally isothermal disks
- Fast migration of low-mass planets in radiative discs
- Trapping of giant-planet cores - I. Vortex aided trapping at the outer dead zone edge
- Outwards migration for planets in stellar irradiated 3D discs
- On type-I migration near opacity transitions. A generalized Lindblad torque formula for planetary population synthesis
- 3D Simulations of Planet Trapping at Disc-Cavity Boundaries
- Dust Settling and Rapid Planetary Migration
- Effects of Turbulence, Eccentricity Damping, and Migration Rate on the Capture of Planets into Mean Motion Resonance
- Low-mass planets in nearly inviscid disks: Numerical treatment
- The effects of a magnetic field on planetary migration in laminar and turbulent discs
- Type I Migration in Radiatively Efficient Discs
- Oscillatory migration of accreting protoplanets driven by a 3D distortion of the gas flow
- Vortex instabilities triggered by low-mass planets in pebble-rich, inviscid protoplanetary discs
- Planetary Torque in 3D Isentropic Disks
- Protoplanetary migration in non-isothermal discs with turbulence driven by stochastic forcing
- Breaking mean-motion resonances during Type I planet migration
- Photoevaporation Does Not Create a Pileup of Giant Planets at 1 AU
- Migration of Accreting Planets and Black Holes in Disks
- Type I migration in optically thick accretion discs
- Effects of Thermodynamics on the Concurrent Accretion and Migration of Gas Giants in Protoplanetary Disks
- Planetary population synthesis
- -mapping of planet-induced density wave damping in protoplanetary discs