Exploring the conditions for forming cold gas giants through planetesimal accretion
arXiv:1909.10429 · doi:10.1051/0004-6361/201936351
Abstract
The formation of cold gas giants similar to Jupiter and Saturn in orbit and mass is a great challenge for planetesimal-driven core accretion models because the core growth rates far from the star are low. Here we model the growth and migration of single protoplanets that accrete planetesimals and gas. We integrated the core growth rate using fits in the literature to -body simulations, which provide the efficiency of accreting the planetesimals that a protoplanet migrates through. We take into account three constraints from the solar system and from protoplanetary discs: (1) the masses of the terrestrial planets and the comet reservoirs in Neptune's scattered disc and the Oort cloud are consistent with a primordial planetesimal population of a few Earth masses per AU, (2) evidence from the asteroid belt and the Kuiper belt indicates that the characteristic planetesimal diameter is 100 km, and (3) observations of protoplanetary discs indicate that the dust is stirred by weak turbulence; this gas turbulence also excites the inclinations of planetesimals. Our nominal model built on these constraints results in maximum protoplanet masses of Earth masses. Ignoring constraint (1) above, we show that even a planetesimal population of 1,000 Earth masses, corresponding to 50 Earth masses per AU, fails to produce cold gas giants (although it successfully forms hot and warm gas giants). We conclude that a massive planetesimal reservoir is in itself insufficient to produce cold gas giants. The formation of cold gas giants by planetesimal accretion additionally requires that planetesimals are small and that the turbulent stirring is very weak, thereby violating all three above constraints.
Version after language editing by the journal
References in corpus (27)
- Comparing Jupiter interior structure models to Juno gravity measurements and the role of a dilute core
- Gaps, Rings, and Non-Axisymmetric Structures in Protoplanetary Disks - From Simulations to ALMA Observations
- The structure of protoplanetary discs around evolving young stars
- Origin of water in the inner Solar System: Planetesimals scattered inward during Jupiter and Saturn's rapid gas accretion
- Planetesimal formation starts at the snow line
- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
- Initial mass function of planetesimals formed by the streaming instability
- On the formation of planetary systems via oligarchic growth in thermally evolving viscous discs
- Formation of planetary systems by pebble accretion and migration: Growth of gas giants
- The Radial Distribution of Dust Particles in the HL Tau Disk from ALMA and VLA Observations
- Protoplanetary disk rings and gaps across ages and luminosities
- Hot super-Earths and giant planet cores from different migration histories
- Accretion in protoplanetary disks: the imprint of core properties
- A reassessment of the in situ formation of close-in super-Earths
- Accretion and destruction of planetesimals in turbulent disks
- Planet population synthesis driven by pebble accretion in cluster environments
- Particle dynamics in discs with turbulence generated by the vertical shear instability
- Planetesimal Accretion onto Growing Proto-Gas-Giant Planets
- Planetesimal Population Synthesis: Pebble Flux Regulated Planetesimal Formation
- Temperature Structure in the Inner Regions of Protoplanetary Disks: Inefficient Accretion Heating Controlled by Nonideal Magnetohydrodynamics
- Spontaneous ring formation in wind-emitting accretion discs
- Growth after the streaming instability: from planetesimal accretion to pebble accretion
- The consequences of planetary migration on the minor bodies of the early Solar System
- Dawes Review. The tidal downsizing hypothesis of planet formation
- Infall of planetesimals onto growing giant planets: onset of runaway gas accretion and metallicity of their gas envelopes
- Planetesimal-driven planet migration in the presence of a gas disk
- Pebble accretion in class 0/I YSOs as a possible pathway for early planet formation
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- How drifting and evaporating pebbles shape giant planets II: Volatiles and refractories in atmospheres
- Planet formation by pebble accretion in ringed disks
- How dust fragmentation may be beneficial to planetary growth by pebble accretion
- Testing the Jeans, Toomre and Bonnor-Ebert concepts for planetesimal formation: 3D streaming instability simulations of diffusion regulated formation of planetesimals
- An Analytical Theory for the Growth from Planetesimals to Planets by Polydisperse Pebble Accretion
- Composition of giant planets: the roles of pebbles and planetesimals
- Planet formation throughout the Milky Way: Planet populations in the context of Galactic chemical evolution
- The fate of planetesimals formed at planetary gap edges
- Formation of giant planets with large metal masses and metal fractions via giant impacts in a rapidly dissipating disk
- Unified simulations of planetary formation and atmospheric evolution II: Rapid disk clearing by photoevaporation yields low-mass super-Earth atmospheres
- Growing the seeds of pebble accretion through planetesimal accretion
- Sublimation of refractory minerals in the gas envelopes of accreting rocky planets
- On the suppression of giant planet formation around low-mass stars in clustered environments
- A potential site for wide-orbit giant planet formation in the IM Lup disk
- The role of density perturbation on planet formation by pebble accretion
- Accretion of aerodynamically large pebbles
- How disc initial conditions sculpt the atmospheric composition of giant planets
- Exploring the conditions for forming planetesimals by the streaming instability and planetary systems by pebble accretion
- A universal brown dwarf desert formed between planets and stars