Diffusive Migration of Low-Mass Proto-planets in Turbulent Disks
arXiv:astro-ph/0603235 · doi:10.1086/505462
Abstract
Torque fluctuations due to magnetorotational turbulence in proto-planetary disks may greatly influence the migration patterns and survival probabilities of nascent planets. Provided that the turbulence is a stationary stochastic process with finite amplitude and correlation time, the resulting diffusive migration can be described with a Fokker-Planck equation, which we reduce to an advection-diffusion equation. We calibrate the coefficients with existing turbulent-disk simulations and mean-migration estimates, and solve the equation both analytically and numerically. Diffusion tends to dominate over advection for planets of low-mass and those in the outer regions of proto-planetary disks, whether they are described by the Minimum Mass Solar Nebula (MMSN) or by T-Tauri alpha disks. Diffusion systematically reduces the lifetime of most planets, yet it allows a declining fraction of them to survive for extended periods of time at large radii. Mean planet lifetimes can even be formally infinite (e.g. in an infinite steady MMSN), though median lifetimes are always finite. Surviving planets may linger near specific radii where the combined effects of advection and diffusion are minimized, or at large radii, depending on model specifics. The stochastic nature of migration in turbulent disks challenges deterministic planet formation scenarios and suggests instead that a wide variety of planetary outcomes are possible from similar initial conditions. This would contribute to the diversity of (extrasolar) planetary systems.
31 pages, 7 figures, accepted for publication in ApJ
Cited by in corpus (21)
- Homogeneous studies of transiting extrasolar planets. I. Light curve analyses
- Magnetic fields in protoplanetary disks
- Accretion and destruction of planetesimals in turbulent disks
- Accretion of Terrestrial Planets from Oligarchs in a Turbulent Disk
- Saturated torque formula for planetary migration in viscous disks with thermal diffusion: recipe for protoplanet population synthesis
- Turbulent Torques on Protoplanets in a Dead Zone
- Midplane sedimentation of large solid bodies in turbulent protoplanetary discs
- 3D MHD Simulations of Planet Migration in Turbulent Stratified Disks
- Star Formation in Accretion Disks and SMBH Growth
- Building Giant-Planet Cores at a Planet Trap
- Dynamical Stability of Imaged Planetary Systems in Formation: Application to HL Tau
- On the dynamics of planetesimals embedded in turbulent protoplanetary discs with dead zones
- An Analytic Criterion for Turbulent Disruption of Planetary Resonances
- Chaotic Type I Migration in Turbulent Discs
- Theoretical models of planetary system formation. II. Post-formation evolution
- Magnetorotational instability in protoplanetary discs: The effect of dust grains
- Trapping of Low-Mass Planets Outside the Truncated Inner Edges of Protoplanetary Discs
- Wide Dust Gaps in Protoplanetary Disks Induced by Eccentric Planets: A Mass-Eccentricity Degeneracy
- Type I Planet Migration in a Magnetized Disk. I. Effect of Large-Scale Vertical and Azimuthal Field Components
- The role of magnetic fields in star formation
- Dirty waveforms: multiband harmonic content of gas-embedded gravitational wave sources