The radial structure of planetary bodies formed by the streaming instability
arXiv:2101.09209 · doi:10.1051/0004-6361/202039769
Abstract
Comets and small planetesimals are believed to contain primordial building blocks in the form of millimeter to centimeter sized pebbles. One of the viable growing mechanisms to form these small bodies is through the streaming instability (SI) in which pebbles cluster and gravitationally collapse towards a planetesimal or comet in the presence of gas drag. However, most SI simulations are global and lack the resolution to follow the final collapse stage of a pebble cloud within its Hill radius. We aim to track the collapse of a gravitationally bound pebble cloud subject to mutual collisions and gas drag with the representative particle approach. We determine the radial pebble size distribution of the collapsed core and the impact of mutual pebble collisions on the pebble size distribution. We find that virial equilibrium is never reached during the cloud evolution and that, in general, pebbles with given Stokes number (St) collapse towards an optically thick core in a sequence from aerodynamically largest to aerodynamically smallest. We show that at the location for which the core becomes optically thick, the terminal velocity is well below the fragmentation threshold velocity. While collisional processing is negligible during cloud evolution, the collisions that do occur are sticking. These results support the observations that comets and small planetary bodies are composed of primordial pebbles in the milimeter to centimeter size range
15 pages, accepted in A&A on January 21, 2021
References in corpus (14)
- Coagulation, fragmentation and radial motion of solid particles in protoplanetary disks
- Closed-form expressions for particle relative velocities induced by turbulence
- Planetesimal formation starts at the snow line
- Close-in planetesimal formation by pile-up of drifting pebbles
- Initial mass function of planetesimals formed by the streaming instability
- Evidence for the formation of comet 67P/Churyumov-Gerasimenko through gravitational collapse of a bound clump of pebbles
- Contacts of Water Ice in Protoplanetary Disks - Laboratory Experiments
- Can dust coagulation trigger streaming instability?
- Turbulence sets the length scale for planetesimal formation: Local 2D simulations of streaming instability and planetesimal formation
- A representative particle approach to coagulation and fragmentation of dust aggregates and fluid droplets
- Formation of pebble-pile planetesimals
- The thermal, mechanical, structural, and dielectric properties of cometary nuclei after Rosetta
- Radially resolved simulations of collapsing pebble clouds in protoplanetary discs
- Thermal inertias of pebble-pile comet 67P/Churyumov-Gerasimenko
Cited by in corpus (5)
- Streaming Instability with Multiple Dust Species: II. Turbulence and Dust-Gas Dynamics at Nonlinear Saturation
- Collisional evolution of dust and water ice in protoplanetary discs during and after an accretion outburst
- An Analytical Theory for the Growth from Planetesimals to Planets by Polydisperse Pebble Accretion
- Interpebble contact radius in a comet nucleus
- Fine-grained rim formation via kinetic dust aggregation in shock waves around evaporating icy planetesimals