The distribution of heavy-elements in giant protoplanetary atmospheres: the importance of planetesimal-envelope interactions
arXiv:1811.10904 · doi:10.3847/1538-4357/aaf427
Abstract
In the standard model for giant planet formation, the planetary growth begins with accretion of solids followed by a buildup of a gaseous atmosphere as more solids are accreted, and finally, by rapid accretion of gas. The interaction of the solids with the gaseous envelope determines the subsequent planetary growth and the final internal structure. In this work we simulate the interaction of planetesimals with a growing giant planet (proto-Jupiter) and investigate how different treatments of the planetesimal-envelope interaction affect the heavy-element distribution, and the inferred core mass. We consider various planetesimal sizes and compositions as well as different ablation and radiation efficiencies, and fragmentation models. We find that in most cases the core reaches a maximum mass of 2 Earth's Mass. We show that the value of the core's mass mainly depends on the assumed size and composition of the solids, while the heavy-element distribution is also affected by the fate of the accreted planetesimals (ablation/fragmentation). Fragmentation, which is found to be important for planetesimals > 1 km, typically leads to enrichment of the inner part of the envelope while ablation results in enrichment of the outer atmosphere. Finally, we present a semi-analytical prescription for deriving the heavy-element distribution in giant protoplanets.
Accepted for publication in ApJ
References in corpus (16)
- Comparing Jupiter interior structure models to Juno gravity measurements and the role of a dilute core
- The imprint of exoplanet formation history on observable present-day spectra of hot Jupiters
- Formation of Jupiter using opacities based on detailed grain physics
- Planet formation with envelope enrichment: new insights on planetary diversity
- Global Models of Planet Formation and Evolution
- Jupiter's evolution with primordial composition gradients
- Grain opacity and the bulk composition of extrasolar planets. II. An analytical model for the grain opacity in protoplanetary atmospheres
- The fuzziness of giant planets' cores
- Critical core mass for enriched envelopes: the role of H2O condensation
- How cores grow by pebble accretion I. Direct core growth
- The opacity of grains in protoplanetary atmospheres
- Jupiter's formation and its primordial internal structure
- Planetesimal Capture in the Disk Instability Model
- Measuring Jupiter's water abundance by Juno: the link between interior and formation models
- The maximum mass of planetary embryos formed in core-accretion models
- Efficiency of Planetesimal Ablation in Giant Planetary Envelopes
Cited by in corpus (25)
- Jupiter's inhomogeneous envelope
- Revelations on Jupiter's Formation, Evolution and Interior: Challenges from Juno Results
- The origin of the high metallicity of close-in giant exoplanets: Combined effect of the resonant and aerodynamic shepherding
- A new perspective on interiors of ice-rich planets: Ice-rock mixture instead of ice on top of rock
- A Tale of Planet Formation: From Dust to Planets
- How planets grow by pebble accretion. III. Emergence of an interior composition gradient
- Jupiter's heavy-element enrichment expected from formation models
- Capture of Solids by Growing Proto-gas Giants: Effects of Gap Formation and Supply-limited Growth
- Theoretical vs. observational uncertainties: composition of giant exoplanets
- Giant planet formation models with a self-consistent treatment of the heavy elements
- Setting the Stage: Planet formation and Volatile Delivery
- Exploring the link between star and planet formation with Ariel
- Unified simulations of planetary formation and atmospheric evolution: Effects of pebble accretion, giant impacts, and stellar irradiations on super-Earth formation
- How planets grow by pebble accretion IV: Envelope opacity trends from sedimenting dust and pebbles
- The deep composition of Uranus and Neptune from in situ exploration and thermochemical modeling
- Planetesimals in Rarefied Gas: Wind Erosion in Slip Flow
- Ariel Planetary Interiors White Paper
- Super stellar abundances of alkali metals suggest significant migration for Hot Jupiters
- How planets form by pebble accretion V. Silicate rainout delays contraction of sub-Neptunes
- Breaking degeneracies in exoplanetary parameters through self-consistent atmosphere-interior modelling
- An Approximation for the Capture Radius of Gaseous Protoplanets
- Destruction of eccentric planetesimals by ram pressure and erosion
- Accretion of eroding pebbles and planetesimals in planetary envelopes
- Planet Formation
- Possible in situ formation of Uranus and Neptune via Pebble Accretion