Revisiting the "radial-drift barrier" of planet formation and its relevance in observed protoplanetary discs
arXiv:1111.3083 · doi:10.1051/0004-6361/201015349
Abstract
Context. To form metre-sized pre-planetesimals in protoplanetary discs, growing grains have to decouple from the gas before they are accreted onto the central star during their phase of fast radial migration and thus overcome the so-called "radial-drift barrier" (often inaccurately referred to as the "metre-size barrier"). Aims. To predict the outcome of the radial motion of dust grains in protoplanetary discs whose surface density and temperature follow power-law profiles, with exponent p and q respectively. We investigate both the Epstein and the Stokes drag regimes which govern the motion of the dust. Methods. We analytically integrate the equations of motion obtained from perturbation analysis. We compare these results with those from direct numerical integration of the equations of motion. Then, using data from observed discs, we predict the fate of dust grains in real discs. Results. When a dust grain reaches the inner regions of the disc, the acceleration due to the increase of the pressure gradient is counterbalanced by the increase of the gas drag. We find that most grains in the Epstein (resp. the Stokes) regime survive their radial migration if-p+q+1/2 \leq0 (resp. if q\leq 2/3). The majority of observed discs satisfies both-p+q+ 1/2 \leq0 and q\leq 2/3: a large fraction of both their small and large grains remain in the disc, for them the radial drift barrier does not exist.
Accepted for publication in A&A
References in corpus (11)
- Coagulation, fragmentation and radial motion of solid particles in protoplanetary disks
- Protoplanetary Disk Structures in Ophiuchus
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- A Submillimeter View of Circumstellar Dust Disks in Ophiuchus
- Structure and evolution of pre-main sequence circumstellar disks
- Dust retention in protoplanetary disks
- Gas accretion onto planetary cores: three-dimensional self-gravitating radiation hydrodynamical calculations
- Investigating grain growth in disks around southern T Tauri stars at millimetre wavelengths
- Growth and migration of solids in evolving protostellar disks I: Methods and Analytical tests
- Large grains in disks around young stars: ATCA observations of WW Cha, RU Lup, and CS Cha
- SPH simulations of grain growth in protoplanetary disks
Cited by in corpus (48)
- Observations of Protoplanetary Disk Structures
- Close-in planetesimal formation by pile-up of drifting pebbles
- Direct mapping of the temperature and velocity gradients in discs. Imaging the vertical CO snow line around IM Lupi
- Can dust coagulation trigger streaming instability?
- Flybys in protoplanetary discs: I. Gas and dust dynamics
- Formation of dust-rich planetesimals from sublimated pebbles inside of the snow line
- The Mass Budget of Planet Forming Discs: Isolating the Epoch of Planetesimal Formation
- The First Planets: the Critical Metallicity for Planet Formation
- Dust trapping by spiral arms in gravitationally unstable protostellar discs
- Volatile depletion in the TW Hydrae disk atmosphere
- ALMA images of discs: are all gaps carved by planets?
- A fast and explicit algorithm for simulating the dynamics of small dust grains with smoothed particle hydrodynamics
- Two mechanisms for dust gap opening in protoplanetary discs
- Flybys in protoplanetary discs: II. Observational signatures
- The growth and hydrodynamic collapse of a protoplanet envelope
- Dust and gas mixtures with multiple grain species - a one-fluid approach
- Planetesimal Formation In Self-Gravitating Discs
- Gas and multi-species dust dynamics in viscous protoplanetary discs: the importance of the dust back-reaction
- The accumulation and trapping of grains at planet gaps: effects of grain growth and fragmentation
- A ring-like concentration of mm-sized particles in Sz 91
- Linear growth of streaming instability in pressure bumps
- MULTIGRAIN: A smoothed particle hydrodynamics algorithm for multiple small dust grains and gas
- Growing dust grains in protoplanetary discs - II. The Radial drift barrier problem
- A Herschel view of protoplanetary disks in the Ori cluster
- On dust entrainment in photoevaporative winds
- Planetesimal formation in self-gravitating discs: the effects of particle self-gravity and back-reaction
- Evolution of porous dust grains in protoplanetary discs -- I. Growing grains
- Diversity in the outcome of dust radial drift in protoplanetary discs
- Flyby-induced misalignments in planet-hosting discs
- Self-Induced Dust Traps Around Snow Lines in Protoplanetary Discs
- Dusty spirals triggered by shadows in transition discs
- Effects of photophoresis on the dust distribution in a 3D protoplanetary disc
- Transport of solids in protoplanetary disks: Comparing meteorites and astrophysical models
- Dust delivery and entrainment in photoevaporative winds
- On the maximum grain size entrained by photoevaporative winds
- Size and density sorting of dust grains in SPH simulations of protoplanetary discs
- Growing dust grains in protoplanetary discs - III. Vertical settling
- A Self-Consistent Model for Dust-Gas Coupling in Protoplanetary Disks
- A Unified Framework for Producing CAI Melting, Wark-Lovering Rims and Bowl-Shaped CAIs
- Characterisation of global flow and local fluctuations in 3D SPH simulations of protoplanetary discs
- On the settling of small grains in dusty discs: analysis and formulas
- Growing dust grains in protoplanetary discs - I. Radial drift with toy growth models
- Size and density sorting of dust grains in SPH simulations of protoplanetary disc II: Fragmentation
- Imaging the Dusty Substructures due to Terrestrial Planets in Planet-forming Disks with ALMA and the Next Generation Very Large Array
- Dust grain shattering in protoplanetary discs: collisional fragmentation or rotational disruption?
- Eccentric dust ring formation in Kozai-Lidov gas disks
- A "no-drift" runaway pile-up of pebbles in protoplanetary disks II. Characteristics of the resulting planetesimal belt
- Statistics of collision parameters computed from 2D simulations