Planetesimal disk evolution driven by embryo-planetesimal gravitational scattering
arXiv:astro-ph/0209058 · doi:10.1086/345970
Abstract
The process of gravitational scattering of planetesimals by a massive protoplanetary embryo is explored theoretically. We propose a method to describe the evolution of the disk surface density, eccentricity, and inclination caused by the embryo-planetesimal interaction. It relies on the analytical treatment of the scattering in two extreme regimes of the planetesimal epicyclic velocities: shear-dominated (dynamically ``cold'') and dispersion-dominated (dynamically ``hot''). In the former, planetesimal scattering can be treated as a deterministic process. In the latter, scattering is mostly weak because of the large relative velocities of interacting bodies. This allows one to use the Fokker-Planck approximation and the two-body approximation to explore the disk evolution. We compare the results obtained by this method with the outcomes of the direct numerical integrations of planetesimal orbits and they agree quite well. In the intermediate velocity regime an approximate treatment of the disk evolution is proposed based on interpolation between the two extreme regimes. We also calculate the rate of embryo's mass growth in an inhomogeneous planetesimal disk and demonstrate that it is in agreement with both the simulations and earlier calculations. Finally we discuss the question of the direction of the embryo-planetesimal interaction in the dispersion-dominated regime and demonstrate that it is repulsive. This means that the embryo always forms a gap in the disk around it, which is in contrast with the results of other authors. The machinery developed here will be applied to realistic protoplanetary systems in future papers.
40 pages, 9 figures, submitted to AJ
References in corpus (2)
Cited by in corpus (16)
- Towards a Deterministic Model of Planetary Formation I: a Desert in the Mass and Semi Major Axis Distributions of Extra Solar Planets
- The formation and retention of gas giant planets around stars with a range of metallicities
- Towards a deterministic model of planetary formation. III. Mass distribution of short-period planets around stars of various masses
- Planet Formation by Coagulation: A Focus on Uranus and Neptune
- Fast accretion of small planetesimals by protoplanetary cores
- Terrestrial Planet Formation I. The Transition from Oligarchic Growth to Chaotic Growth
- The growth of planetary embryos: orderly, runaway, or oligarchic?
- Migration rates of planets due to scattering of planetesimals
- Dynamical evolution of planetesimals in protoplanetary disks
- Production of trans-Neptunian binaries through chaos-assisted capture
- Planet formation in stellar binaries: Global simulations of planetesimal growth
- Formation of Terrestrial Planets
- Formation and Collisional Evolution of Kuiper Belt Objects
- Planetesimal disk evolution driven by planetesimal-planetesimal gravitational scattering
- Estimating the mass of the debris disc in HD 69830
- Transient chaos and fractal structures in planetary feeding zones