From Dust to Planetesimals: Criteria for Gravitational Instability of Small Particles in Gas
arXiv:1209.5397 · doi:10.1088/0004-637X/764/1/20
Abstract
Dust particles sediment toward the midplanes of protoplanetary disks, forming dust-rich sublayers encased in gas. What densities must the particle sublayer attain before it can fragment by self-gravity? We describe various candidate threshold densities. One of these is the Roche density, which is that required for a strengthless satellite to resist tidal disruption by its primary. Another is the Toomre density, which is that required for de-stabilizing self-gravity to defeat the stabilizing influences of pressure and rotation. We show that for sublayers containing aerodynamically well-coupled dust, the Toomre density exceeds the Roche density by many (up to about 4) orders of magnitude. We present 3D shearing box simulations of self-gravitating, stratified, dust-gas mixtures to test which of the candidate thresholds is relevant for collapse. All our simulations indicate that the larger Toomre density is required for collapse. This result is sensible because sublayers are readily stabilized by pressure. Sound-crossing times for thin layers are easily shorter than free-fall times, and the effective sound speed in dust-gas suspensions decreases only weakly with the dust-to-gas ratio (as the inverse square root). Our findings assume that particles are small enough that their stopping times in gas are shorter than all other timescales. Relaxing this assumption may lower the threshold for gravitational collapse back down to the Roche criterion. In particular, if the particle stopping time becomes longer than the sound-crossing time, sublayers may lose pressure support and become gravitationally unstable.
19 pages, 13 figures, and 5 tables. ApJ accepted
References in corpus (5)
- Athena: A New Code for Astrophysical MHD
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- Numerical requirements for simulations of self gravitating and non-self gravitating disks
- Testing the theory of grain growth and fragmentation by millimeter observations of protoplanetary disks
- Vertical Shearing Instabilities in Radially Shearing Disks: The Dustiest Layers of the Protoplanetary Nebula
Cited by in corpus (33)
- How to form planetesimals from mm-sized chondrules and chondrule aggregates
- Evidence for universality in the initial planetesimal mass function
- Turbulence sets the length scale for planetesimal formation: Local 2D simulations of streaming instability and planetesimal formation
- Diffusion and Concentration of Solids in the Dead Zone of a Protoplanetary Disk
- A thermodynamic view of dusty protoplanetary disks
- How efficient is the streaming instability in viscous protoplanetary disks?
- The fate of planetesimals in turbulent disks with dead zones. II. Limits on the viability of runaway accretion
- Dust settling against hydrodynamic turbulence in protoplanetary discs
- Requirements for gravitational collapse in planetesimal formation --- the impact of scales set by Kelvin-Helmholtz and nonlinear streaming instability
- Turbulent Disks are Never Stable: Fragmentation and Turbulence-Promoted Planet Formation
- Testing the Jeans, Toomre and Bonnor-Ebert concepts for planetesimal formation: 3D streaming instability simulations of diffusion regulated formation of planetesimals
- The fragmentation criteria in local vertically stratified self-gravitating disk simulations
- Gravito-Turbulent Disks in 3D: Turbulent Velocities vs. Depth
- Stratified and vertically-shearing streaming instabilities in protoplanetary disks
- Planetesimal formation in self-gravitating discs: the effects of particle self-gravity and back-reaction
- The Formation and Dynamics of Super-Earth Planets
- Dust dynamics in 2D gravito-turbulent disks
- Impact of Local Pressure Enhancements on Dust Concentration inTurbulent Protoplanetary Discs
- Formation of Terrestrial Planets
- Direct Formation of Planetary Embryos in Self-Gravitating Disks
- Turbulence Induced Collision Velocities and Rates between Different Sized Dust Grains
- Primordial Obliquities of Brown Dwarfs and Super-Jupiters from Fragmenting Gravito-Turbulent Discs
- Dust dynamics and vertical settling in gravitoturbulent protoplanetary discs
- Vortex instabilities triggered by low-mass planets in pebble-rich, inviscid protoplanetary discs
- The Role of the Cooling Prescription for Disk Fragmentation: Numerical Convergence & Critical Cooling Parameter in Self-Gravitating Disks
- The circulation of dust in protoplanetary discs and the initial conditions of planet formation
- Streaming instabilities in accreting and magnetized laminar protoplanetary disks
- The Concentration and Growth of Solids in Fragmenting Circumstellar Disks
- Positive Feedback: How a Synergy Between the Streaming Instability and Dust Coagulation Forms Planetesimals
- Nonlinear evolution of streaming instabilities in accreting protoplanetary disks
- Chondrules from high-velocity collisions: thermal histories and the agglomeration problem
- Aggregate Growth and Internal structures of Chondrite Parent Bodies Forming from Dense Clumps
- Positive Feedback II: How Dust Coagulation inside Vortices Can Form Planetesimals at Low Metallicity