A Self-Consistent Model for Dust-Gas Coupling in Protoplanetary Disks
arXiv:2204.03700 · doi:10.1051/0004-6361/202243196
Abstract
Various physical processes that ensue within protoplanetary disks -- including vertical settling of icy/rocky grains, radial drift of solids, planetesimal formation, as well as planetary accretion itself -- are facilitated by hydrodynamic interactions between H/He gas and high- dust. The Stokes number, which quantifies the strength of dust-gas coupling, thus plays a central role in protoplanetary disk evolution, and its poor determination constitutes an important source of uncertainty within the theory of planet formation. In this work, we present a simple model for dust-gas coupling, and demonstrate that for a specified combination of the nebular accretion rate, , and turbulence parameter, , the radial profile of the Stokes number can be calculated uniquely. Our model indicates that the Stokes number grows sub-linearly with orbital radius, but increases dramatically across the water-ice line. For fiducial protoplanetary disk parameters of year and , our theory yields characteristic values of the Stokes number on the order of (corresponding to mm-sized silicate dust) in the inner nebula and (corresponding to few-cm-sized icy grains), in the outer regions of the disk. Accordingly, solids are expected to settle into a thin sub-disk at large stellocentric distances, while remaining vertically well-mixed inside the ice line.
accepted for publication in Astronomy & Astrophysics
References in corpus (15)
- Closed-form expressions for particle relative velocities induced by turbulence
- Separating gas-giant and ice-giant planets by halting pebble accretion
- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
- Close-in planetesimal formation by pile-up of drifting pebbles
- Dust retention in protoplanetary disks
- Contemporary formation of early solar system planetesimals at two distinct radial locations
- Planetesimal rings as the cause of the Solar System's planetary architecture
- Coorbital thermal torques on low-mass protoplanets
- Rocky super-Earths or waterworlds: the interplay of planet migration, pebble accretion and disc evolution
- Thermal torque effects on the migration of growing low-mass planets
- Dynamics and Accretion of Planetesimals
- Drifting inwards in protoplanetary discs II: The effect of water on sticking properties at increasing temperatures
- Origin of radio-quiet coronal mass ejections in flare stars
- Self-Induced Dust Traps Around Snow Lines in Protoplanetary Discs
- On the settling of small grains in dusty discs: analysis and formulas
Cited by in corpus (12)
- Enriching inner discs and giant planets with heavy elements
- Terrestrial planet formation from a ring
- In-situ enrichment in heavy elements of hot Jupiters
- Dust-Gas Coupling in Turbulence- and MHD Wind-Driven Protoplanetary Disks: Implications for Rocky Planet Formation
- Composition, Structure and Origin of the Moon
- Physicochemical Controls on the Compositions of the Earth and Planets
- Early Solar System Turbulence Constrained by High Oxidation States of the Oldest Non-Carbonaceous Planetesimals
- Exploring the conditions for forming planetesimals by the streaming instability and planetary systems by pebble accretion
- A constraint on the density of Jupiter's moon Thebe from primordial dynamics
- Callisto's Nonresonant Orbit as an Outcome of Circum-Jovian Disk Substructure
- Diversity of Exoplanets
- Formation of Water-rich Giant Planet Satellites at Decretion Disk Ice Lines