Forming Planetesimals by Gravitational Instability: II. How Dust Settles to its Marginally Stable State
arXiv:1010.0250 · doi:10.1088/0004-637X/725/2/1938
Abstract
Dust at the midplane of a circumstellar disk can become gravitationally unstable and fragment into planetesimals if the local dust-to-gas density ratio mu is sufficiently high. We simulate how dust settles in passive disks and ask how high mu can become. We settle the dust using a 1D code and test for dynamical stability using a 3D shearing box code. This scheme allows us to explore the behavior of small particles having short but non-zero stopping times in gas: 0 < t_stop << the orbital period. The streaming instability is thereby filtered out. Dust settles until shearing instabilities in the edges of the dust layer threaten to overturn the entire layer. In this state of marginal stability, mu=2.9 for a disk whose bulk (height-integrated) metallicity is solar. For a disk whose bulk metallicity is 4x solar, mu reaches 26.4. These maximum values of mu, which depend on the background radial pressure gradient, are so large that gravitational instability of small particles is viable in disks whose bulk metallicities are just a few (<4) times solar. Earlier studies assumed that dust settles until the Richardson number Ri is spatially constant. Our simulations are free of this assumption but provide support for it within the dust layer's edges, with the proviso that Ri increases with bulk metallicity in the same way that we found in Paper I. Only modest enhancements in bulk metallicity are needed to spawn planetesimals directly from small particles.
Accepted to ApJ
References in corpus (9)
- Giant Planet Occurrence in the Stellar Mass-Metallicity Plane
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- Inflating Hot Jupiters With Ohmic Dissipation
- A Spitzer view of protoplanetary disks in the gamma Velorum cluster
- Dust coagulation in protoplanetary disks: porosity matters
- The Effect of the Radial Pressure Gradient in Protoplanetary Disks on Planetesimal Formation
- Vertical Shearing Instabilities in Radially Shearing Disks: The Dustiest Layers of the Protoplanetary Nebula
- Three-Dimensional Simulations of Kelvin-Helmholtz Instability in Settled Dust Layers in Protoplanetary Disks
- Forming Planetesimals by Gravitational Instability: I. The Role of the Richardson Number in Triggering the Kelvin-Helmholtz Instability
Cited by in corpus (24)
- Wind-driven Accretion in Protoplanetary Disks. I: Suppression of the Magnetorotational Instability and Launching of the Magnetocentrifugal Wind
- The Minimum-Mass Extrasolar Nebula: In-Situ Formation of Close-In Super-Earths
- Adding particle collisions to the formation of asteroids and Kuiper belt objects via streaming instabilities
- Zombie Vortex Instability I: A Purely Hydrodynamic Instability to Resurrect the Dead Zones of Protoplanetary Disks
- On linear dust-gas streaming instabilities in protoplanetary discs
- The outcome of protoplanetary dust growth: pebbles, boulders, or planetesimals? III. Sedimentation driven coagulation inside the snow-line
- Turbulence-Induced Relative Velocity of Dust Particles I: Identical Particles
- From Dust to Planetesimals: Criteria for Gravitational Instability of Small Particles in Gas
- A Balanced Budget View on Forming Giant Planets by Pebble Accretion
- Effect of dust radial drift on viscous evolution of gaseous disk
- Gravito-Turbulent Disks in 3D: Turbulent Velocities vs. Depth
- Impacts of dust feedback on a dust ring induced by a planet in a protoplanetary disk
- From Disks to Planets
- Streaming instability in the quasi-global protoplanetary discs
- Jumping the Gap: The Formation Conditions and Mass Function of Pebble-Pile Planetesimals
- Dust Settling and Clumping in MRI Turbulent Outer Protoplanetary Disks
- Zombie Vortex Instability. III. Persistence with Nonuniform Stratification and Radiative Damping
- Zombie Vortex Instability. II. Thresholds to Trigger Instability and the Properties of Zombie Turbulence in the Dead Zones of Protoplanetary Disks
- Secular Gravitational Instability of a Dust Layer in Shear Turbulence
- A Simple Phenomenological Model for Grain Clustering in Turbulence
- Planetesimal Formation at the Boundary Between Steady Super/Sub-Keplerian Flow Created by Inhomogeneous Growth of Magnetorotational Instability
- Turbulence in particle laden midplane layers of planet forming disks
- Growing dust grains in protoplanetary discs - I. Radial drift with toy growth models
- Semarkona: Lessons for chondrule and chondrite formation