How planets form by pebble accretion V. Silicate rainout delays contraction of sub-Neptunes
arXiv:2405.09900 · doi:10.1051/0004-6361/202349137
Abstract
The characterization of Super-Earth-to-Neptune sized exoplanets relies heavily on our understanding of their formation and evolution. In this study, we link a model of planet formation by pebble accretion to the planets' long-term observational properties by calculating the interior evolution, starting from the dissipation of the protoplanetary disk. We investigate the evolution of the interior structure in 5-20 Earth masses planets, accounting for silicate redistribution caused by convective mixing, rainout (condensation and settling), and mass loss. Specifically, we have followed the fate of the hot silicate vapor that remained in the planet's envelope after planet formation, as the planet cools. We find that disk dissipation is followed by a rapid contraction of the envelope within 10 Myr. Subsequent cooling leads to substantial growth of the planetary core through silicate rainout, accompanied by inflated radii, in comparison to the standard models of planets that formed with core-envelope structure. We examine the dependence of rainout on the planet's envelope mass, distance from its host star, its silicate mass, and the atmospheric opacity. We find that the population of planets formed with polluted envelopes can be roughly divided in three groups, based on the mass of their gas envelopes: bare rocky cores that have shed their envelopes, super-Earth planets with a core-envelope structure, and Neptune-like planets with diluted cores that undergo gradual rainout. For polluted planets formed with envelope masses below 0.4 Earth mass, we anticipate that the inflation of the planet's radius caused by rainout will enhance mass loss by a factor of 2-8 compared to planets with non-polluted envelopes. Our model provides an explanation for bridging the gap between the predicted composition gradients in massive planets and the core-envelope structure in smaller planets.
Accepted for publication in A&A
References in corpus (30)
- On the radiative equilibrium of irradiated planetary atmospheres
- Comparing Jupiter interior structure models to Juno gravity measurements and the role of a dilute core
- Chemistry of Silicate Atmospheres of Evaporating Super-Earths
- Formation of Jupiter using opacities based on detailed grain physics
- Hydrodynamics of Embedded Planets' First Atmospheres. II. A Rapid Recycling of Atmospheric Gas
- New models of Jupiter in the context of Juno and Galileo
- A new equation of state for dense hydrogen-helium mixtures
- Planet formation with envelope enrichment: new insights on planetary diversity
- An Atmospheric Structure Equation for Grain Growth
- Condensation-inhibited convection in hydrogen-rich atmospheres: Stability against double-diffusive processes and thermal profiles for Jupiter, Saturn, Uranus, and Neptune
- Beyond Equilibrium Temperature: How the Atmosphere/Interior Connection Affects the Onset of Methane, Ammonia, and Clouds in Warm Transiting Giant Planets
- The Featureless Transmission Spectra of Two Super-Puff Planets
- Grain opacity and the bulk composition of extrasolar planets. II. An analytical model for the grain opacity in protoplanetary atmospheres
- The ARCiS framework for Exoplanet Atmospheres: Modelling Philosophy and Retrieval
- Superabundance of Exoplanet Sub-Neptunes Explained by Fugacity Crisis
- The opacity of grains in protoplanetary atmospheres
- The Challenge of Forming a Fuzzy Core in Jupiter
- The ARCiS framework for Exoplanet Atmospheres: The Cloud Transport Model
- Convection and Mixing in Giant Planet Evolution
- Atmospheres as windows into sub-Neptune interiors: coupled chemistry and structure of hydrogen-silane-water envelopes
- The importance of silicate vapor in determining the structure, radii, and envelope mass fractions of sub-Neptunes
- Properties of hydrogen, helium, and silicon dioxide mixtures in giant planet interiors
- Steady State by Recycling prevents Premature Collapse of Protoplanetary Atmospheres
- Gas flow around a planet embedded in a protoplanetary disc: the dependence on the planetary mass
- A New, Efficient Stellar Evolution Code for Calculating Complete Evolutionary Tracks
- Convective inhibition with an atmosphere, I: super-critical cores on sub-Neptune/super-Earths
- How planets grow by pebble accretion IV: Envelope opacity trends from sedimenting dust and pebbles
- Sublimation of refractory minerals in the gas envelopes of accreting rocky planets
- Rocky sub-Neptunes formed by pebble accretion: Rain of rocks from polluted envelopes
- The effect of cloudy atmospheres on the thermal evolution of warm giant planets from an interior modelling perspective
Cited by in corpus (5)
- The Possibility of Hydrogen-Water Demixing in Uranus, Neptune, K2-18b and TOI-270d
- Redefining interiors and envelopes: hydrogen-silicate miscibility and its consequences for the structure and evolution of sub-Neptunes
- Blowin' in the non-isothermal wind: core-powered mass loss with hydrodynamic radiative transfer
- The Dynamical History of the Kepler-221 Planet System
- Evolution and Observable Properties of Rocky Planet Atmospheres