The role of the drag force in the gravitational stability of dusty planet-forming disc -- II. Numerical simulations
arXiv:2305.03659 · doi:10.1093/mnras/stad1400
Abstract
Young protostellar discs are likely to be both self-gravitating, and to support grain growth to sizes where the particles decoupled from the gas. This combination could lead to short-wavelength fragmentation of the solid component in otherwise non-fragmenting gas discs, forming Earth-mass solid cores during the Class 0/I stages of Young Stellar Object evolution. We use three-dimensional smoothed particle hydrodynamics simulations of two-fluid discs, in the regime where the Stokes number of the particles St>1, to study how the formation of solid clumps depends on the disc-to-star mass ratio, the strength of gravitational instability, and the Stokes number. Gravitational instability of the simulated discs is sustained by local cooling. We find that the ability of the spiral structures to concentrate solids increases with the cooling time, and decreases with the Stokes number, while the relative dynamical temperature between gas and dust of the particles decreases with the cooling time and the disc-to-star mass ratio, and increases with the Stokes number. Dust collapse occurs in a subset of high disc mass simulations, yielding clumps whose mass is close to linear theory estimates, namely 1-10 Earth masses. Our results suggest that if planet formation occurs via this mechanism, the best conditions correspond to near the end of the self-gravitating phase, when the cooling time is long and the Stokes number close to unity.
Accepted for publication in MNRAS, 20 pages
References in corpus (23)
- SPLASH: An interactive visualisation tool for Smoothed Particle Hydrodynamics simulations
- Gas- and dust evolution in protoplanetary disks
- Particle Stirring in Turbulent Gas Disks: Including Orbital Oscillations
- A Three-Dimensional View of Turbulence: Constraints on Turbulent Motions in the HD 163296 Protoplanetary Disk using DCO
- A Triple Protostar System Formed via Fragmentation of a Gravitationally Unstable Disk
- Characterising the Gravitational Instability in Cooling Accretion Discs
- Dust flow in gas disks in the presence of embedded planets
- The newborn planet population emerging from ring-like structures in discs
- Properties of gravitoturbulent accretion disks
- On the origin of horseshoes in transitional discs
- Planet formation by pebble accretion in ringed disks
- Convergence of the critical cooling rate for protoplanetary disk fragmentation achieved; the key role of numerical dissipation of angular momentum
- Efficient planet formation by pebble accretion in ALMA rings
- Dynamical mass measurements of two protoplanetary discs
- Formation and evolution of protostellar accretion discs. II. From 3D simulation to a simple semi-analytic model of Class 0/I discs
- Planetesimal formation in self-gravitating discs: the effects of particle self-gravity and back-reaction
- Is the gap in the DS Tau disc hiding a planet?
- Accretion rates in hierarchical triple systems with discs
- Particle Dynamics in 3D Self-gravitating Disks I: Spirals
- Dust Traffic Jams in Inclined Circumbinary Protoplanetary Discs I. Morphology and Formation Theory
- A solution to the overdamping problem when simulating dust-gas mixtures with smoothed particle hydrodynamics
- Dynamical dust traps in misaligned circumbinary discs: analytical theory and numerical simulations
- Extreme Pebble Accretion in Ringed Protoplanetary Discs