Filling in the Gaps: Can Gravitationally Unstable Discs Form the Seeds of Gas Giant Planets?
arXiv:2305.11336 · doi:10.1093/mnras/stad1564
Abstract
Circumstellar discs likely have a short window when they are self-gravitating and prone to the effects of disc instability, but during this time the seeds of planet formation can be sown. It has long been argued that disc fragmentation can form large gas giant planets at wide orbital separations, but its place in the planet formation paradigm is hindered by a tendency to form especially large gas giants or brown dwarfs. We instead suggest that planet formation can occur early in massive discs, through the gravitational collapse of dust which can form the seeds of giant planets. This is different from the usual picture of self-gravitating discs, in which planet formation is considered through the gravitational collapse of the gas disc into a gas giant precursor. It is familiar in the sense that the core is formed first, and gas is accreted thereafter, as is the case in the core accretion scenario. However, by forming a seed from the gravitational collapse of dust within a self-gravitating disc there exists the potential to overcome traditional growth barriers and form a planet within a few times years. The accretion of pebbles is most efficient with centimetre-sized dust, but the accretion of millimetre sizes can also result in formation within a Myr. Thus, if dust can grow to these sizes, planetary seeds formed within very young, massive discs could drastically reduce the timescale of planet formation and potentially explain the observed ring and gap structures in young discs.
MNRAS accepted. 15 pages, 12 figures
References in corpus (70)
- The NumPy array: a structure for efficient numerical computation
- Protoplanetary Disk Structures in Ophiuchus
- Separating gas-giant and ice-giant planets by halting pebble accretion
- The stickiness of micrometer-sized water-ice particles
- 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
- Four annular structures in a protostellar disk less than 500,000 years old
- Formation of planetary systems by pebble accretion and migration: Growth of gas giants
- Nine localised deviations from Keplerian rotation in the DSHARP circumstellar disks: Kinematic evidence for protoplanets carving the gaps
- Type I planetary migration in a self-gravitating disk
- The newborn planet population emerging from ring-like structures in discs
- Evolution of Migrating Planets Undergoing Gas Accretion
- The evolution of dust-disk sizes from a homogeneous analysis of 1-10 Myr-old stars
- Hydrodynamics of embedded planets' first atmospheres - III. The role of radiation transport for super-Earth planets
- Turbulence sets the length scale for planetesimal formation: Local 2D simulations of streaming instability and planetesimal formation
- Secular evolution of viscous and self-gravitating circumstellar discs
- Protoplanetary Disk Rings as Sites for Planetesimal Formation
- Anisotropic Infall and Substructure formation in Embedded Disks
- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars. III. Substructures in Protostellar Disks
- Spiral Arms and a Massive Dust Disk with non-Keplerian Kinematics: Possible Evidence for Gravitational Instability in the Disk of Elias 2-27
- Hints on the origins of particle traps in protoplanetary disks given by the relation
- How planets grow by pebble accretion. III. Emergence of an interior composition gradient
- Efficient planet formation by pebble accretion in ALMA rings
- Streaming Instability with Multiple Dust Species: I. Favourable Conditions for the Linear Growth
- Requirements for gravitational collapse in planetesimal formation --- the impact of scales set by Kelvin-Helmholtz and nonlinear streaming instability
- New Constraints From Dust Lines On The Surface Densities Of Protoplanetary Disks
- Orbital and mass constraints of the young binary system IRAS 16293-2422 A
- The New Generation Planetary Population Synthesis (NGPPS). V. Predetermination of planet types in global core accretion models
- Rapid Formation of Massive Planetary Cores in a Pressure Bump
- Testing the Jeans, Toomre and Bonnor-Ebert concepts for planetesimal formation: 3D streaming instability simulations of diffusion regulated formation of planetesimals
- Dust Polarization Toward Embedded Protostars in Ophiuchus with ALMA. II. IRAS 16293-2422
- Protoplanetary disk birth in massive star forming clumps: the essential role of the magnetic field
- 13C17O suggests gravitational instability in the HL Tau disc
- Investigating dust trapping in transition disks with millimeter-wave polarization
- On the dynamics of dust during protostellar collapse
- Viscosity prescription for gravitationally unstable accretion disks
- Streaming Instability with Multiple Dust Species: II. Turbulence and Dust-Gas Dynamics at Nonlinear Saturation
- Formation of intermediate-mass planets via magnetically-controlled disk fragmentation
- Massive discs around low-mass stars
- Formation and evolution of protostellar accretion discs. I. Angular-momentum budget, gravitational self-regulation, and numerical convergence
- Planetesimal formation in self-gravitating discs: the effects of particle self-gravity and back-reaction
- Thermal Wave Instability as an Origin of Gap and Ring Structures in Protoplanetary Disks
- On the fragmentation boundary in magnetised self-gravitating discs
- Formation of Dust Rings and Gaps in Non-ideal MHD Disks Through Meridional Gas Flows
- The hierarchical fragmentation of filaments and the role of sub-filaments
- An Analytical Theory for the Growth from Planetesimals to Planets by Polydisperse Pebble Accretion
- Early planet formation in embedded protostellar disks: Setting the stage for the first generation of planetesimals
- Dust Settling Instability in Protoplanetary Discs
- The role of the drag force in the gravitational stability of dusty planet forming disc -- I. Analytical theory
- Direct Formation of Planetary Embryos in Self-Gravitating Disks
- Parametric instability in a free evolving warped protoplanetary disc
- Planet Migration in Self-Gravitating Discs: Survival of Planets
- The TW Hya Rosetta Stone Project I: Radial and vertical distributions of DCN and DCO+
- Formation of dust clumps with sub-Jupiter mass and cold shadowed region in gravitationally unstable disk around Class 0/I protostar in L1527 IRS
- Conditions for justifying single-fluid approximation for charged and neutral dust fluids and a smoothed particle magnetohydrodynamics method for dust-gas mixture
- Fragmentation favoured in discs around higher mass stars
- Particle Dynamics in 3D Self-gravitating Disks I: Spirals
- On dust-gas gravitational instabilities in protoplanetary discs
- Dust dynamics and vertical settling in gravitoturbulent protoplanetary discs
- Particle Dynamics in 3D Self-gravitating Disks II: Strong Gas Accretion and Thin Dust Disks
- Kinematic evidence for an embedded planet in the IM Lupi disc
- Revisiting collisional dust growth in Class 0/I protostellar disks: Sweep-up can convert a few of dust into kg pebbles in 0.1 Myr
- Mass determination of protoplanetary disks from dust evolution
- Grain Growth During Protostellar Disk Formation
- Physical and Chemical Structure of the Disk and Envelope of the Class 0/I Protostar L1527
- High Resolution Study of Planetesimal Formation by Gravitational Collapse of Pebble Clouds
- Growth after the streaming instability: The radial distance dependence of the planetary growth
- Pebble accretion in self-gravitating protostellar discs
- Planetesimal formation by the gravitational instability of dust ring structures
Cited by in corpus (6)
- Searching for Giant Exoplanets around M-dwarf Stars (GEMS) I: Survey Motivation
- Spirals and clumps in V960 Mon: signs of planet formation via gravitational instability around an FU Ori star?
- Variability of the inner dead zone edge in 2D radiation hydrodynamic simulations
- Hidden under a warm blanket: If planets existed in protostellar disks, they would hardly produce observable substructures
- Winding Motion of Spirals in a Gravitationally Unstable Protoplanetary Disk
- Dust growth and planet formation by disc fragmentation