Disc-planet interactions in sub-keplerian discs
arXiv:0909.1435 · doi:10.1051/0004-6361/200913184
Abstract
One class of protoplanetary disc models, the X-wind model, predicts strongly subkeplerian orbital gas velocities, a configuration that can be sustained by magnetic tension. We investigate disc-planet interactions in these subkeplerian discs, focusing on orbital migration for low-mass planets and gap formation for high-mass planets. We use linear calculations and nonlinear hydrodynamical simulations to measure the torque and look at gap formation. In both cases, the subkeplerian nature of the disc is treated as a fixed external constraint. We show that, depending on the degree to which the disc is subkeplerian, the torque on low-mass planets varies between the usual Type I torque and the one-sided outer Lindblad torque, which is also negative but an order of magnitude stronger. In strongly subkeplerian discs, corotation effects can be ignored, making migration fast and inward. Gap formation near the planet's orbit is more difficult in such discs, since there are no resonances close to the planet accommodating angular momentum transport. In stead, the location of the gap is shifted inwards with respect to the planet, leaving the planet on the outside of a surface density depression. Depending on the degree to which a protoplanetary disc is subkeplerian, disc-planet interactions can be very different from the usual Keplerian picture, making these discs in general more hazardous for young planets.
4 pages, 4 figures, accepted in Astronomy and Astrophysics Letters, minor language changes
References in corpus (8)
- Halting Type I planet migration in non-isothermal disks
- 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
- Growing and moving low-mass planets in non-isothermal disks
- Mean-Field Magnetohydrodynamics of Accretion Disks
- General Analysis of Type I Planetary Migration with Stochastic Perturbations
- Numerical simulations of type III planetary migration: II. Inward migration of massive planets
- Migration of Extrasolar Planets: Effects from X-Wind Accretion Disks
Cited by in corpus (6)
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- The Fate of Scattered Planets
- Migrating Planets into Ultra-Short-Period Orbits during Episodic Accretion Events
- Shear-driven instabilities in Hall-MHD plasmas
- The role of density perturbation on planet formation by pebble accretion
- Gravitational Collapse and Disk Formation in Magnetized Cores