Reduced gas accretion on super-Earths and ice giants
arXiv:1708.00767 · doi:10.1051/0004-6361/201731014
Abstract
A large fraction of giant planets have gaseous envelopes that are limited to about 10 % of their total mass budget. Such planets are present in the Solar System (Uranus, Neptune) and are frequently observed in short periods around other stars (the so-called Super-Earths). In contrast to these observations, theoretical calculations based on the evolution of hydrostatic envelopes argue that such low mass envelopes cannot be maintained around cores exceeding five Earth masses. Instead, under nominal disc conditions, these planets would acquire massive envelopes through runaway gas accretion within the lifetime of the protoplanetary disc. In this work, we show that planetary envelopes are not in hydrostatic balance, which slows down envelope growth. A series of 3-dimensional, global, radiative hydrodynamical simulations reveal a steady state gas flow, which enters through the poles and exits in the disc midplane. Gas is pushed through the outer envelope in about 10 orbital timescales. In regions of the disc that are not significantly dust-depleted, envelope accretion onto cores of about five Earth masses can get stalled as the gas flow enters the deep interior. Accreted solids sublimate deep in the convective interior, but small opacity-providing grains are trapped in the flow and do not settle, which further prevents rapid envelope accretion. The transition to runaway gas accretion can however be reached when cores grow larger than typical Super-Earths, beyond 15 Earth masses, and preferably when disc opacities are below kappa=1 cm^2/g. These findings offer an explanation for the typical low-mass envelopes around the cores of Super-Earths.
Accepted for publication in Astronomy and Astrophysics
References in corpus (12)
- Coagulation, fragmentation and radial motion of solid particles in protoplanetary disks
- Separating gas-giant and ice-giant planets by halting pebble accretion
- A comparative study of disc-planet interaction
- Make Super-Earths, Not Jupiters: Accreting Nebular Gas onto Solid Cores at 0.1 AU and Beyond
- Formation of Jupiter using opacities based on detailed grain physics
- Hydrodynamics of Embedded Planets' First Atmospheres. II. A Rapid Recycling of Atmospheric Gas
- Planet formation with envelope enrichment: new insights on planetary diversity
- An Atmospheric Structure Equation for Grain Growth
- Evolution of Migrating Planets Undergoing Gas Accretion
- Grain opacity and the bulk composition of extrasolar planets. II. An analytical model for the grain opacity in protoplanetary atmospheres
- Critical core mass for enriched envelopes: the role of H2O condensation
- Angular Momentum Accretion onto a Gas Giant Planet
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- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
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- The newborn planet population emerging from ring-like structures in discs
- Rocky super-Earths or waterworlds: the interplay of planet migration, pebble accretion and disc evolution
- The Boundary between Gas-rich and Gas-poor Planets
- Envelopes of embedded super-Earths II. Three-dimensional isothermal simulations
- Gas flow around a planet embedded in a protoplanetary disc: the dependence on the planetary mass
- ALMA observations require slower Core Accretion runaway growth
- Oscillatory migration of accreting protoplanets driven by a 3D distortion of the gas flow
- Physics of Planet Trapping with Applications to HL Tau
- Formation of Super-Earths by Tidally-Forced Turbulence