A new perspective on interiors of ice-rich planets: Ice-rock mixture instead of ice on top of rock
arXiv:2011.00602 · doi:10.3847/1538-4357/ac458c
Abstract
Ice-rich planets are formed exterior to the water ice-line and thus are expected to contain a substantial amount of ices. The high ice content leads to unique conditions in the interior, under which the structure of a planet is affected by ice interaction with other metals. We apply experimental data of ice-rock interaction at high pressure, and calculate detailed thermal evolution for possible interior configurations of ice-rich planets, in the mass range of super-Earth to Neptunes (5-15 Earth masses). We model the effect of migration inward on the ice-rich interior by including the influences of stellar flux and envelope mass loss. We find that ice and rock are expected to remain mixed, due to miscibility at high pressure, in substantial parts of the planetary interior for billions of years. We also find that the deep interior of planetary twins that have migrated to different distances from the star are usually similar, if no mass loss occurs. Significant mass loss results in separation of the water from the rock on the surface and emergence of a volatile atmosphere of less than 1 percent of the planet's mass. The mass of the atmosphere of water/steam is limited by the ice-rock interaction. We conclude that when ice is abundant in planetary interiors the planet structure may differ significantly from the standard layered structure of a water shell on top of a rocky core. Similar structure is expected in both close-in and further-out planets.
Accepted for publication in ApJ. Updated with extensive appendices on ice-rock interaction. Results and conclusions are unchanged
References in corpus (28)
- Mass-Radius Relationships for Solid Exoplanets
- Growth Model Interpretation of Planet Size Distribution
- Line and Mean Opacities for Ultracool Dwarfs and Extrasolar Planets
- Comparing Jupiter interior structure models to Juno gravity measurements and the role of a dilute core
- Mass-Metallicity Trends in Transiting Exoplanets from Atmospheric Abundances of HO, Na, and K
- A generalized bayesian inference method for constraining the interiors of super Earths and sub-Neptunes
- 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
- A water budget dichotomy of rocky protoplanets from Al-heating
- Saturn Ring Seismology: Evidence for Stable Stratification in the Deep Interior of Saturn
- Phase separation in hydrogen-helium mixtures at Mbar pressures
- Layered convection as the origin of Saturn's luminosity anomaly
- Mass-radius relationships for irradiated ocean planets
- The structure of terrestrial bodies: Impact heating, corotation limits and synestias
- Superabundance of Exoplanet Sub-Neptunes Explained by Fugacity Crisis
- The opacity of grains in protoplanetary atmospheres
- Influence of sub- and super-solar metallicities on the compositions of solid planetary building blocks
- The Challenge of Forming a Fuzzy Core in Jupiter
- Jupiter's formation and its primordial internal structure
- Convection and Mixing in Giant Planet Evolution
- Why do warm Neptunes present nonzero eccentricity?
- A Hubble PanCET Study of HAT-P-11b: A Cloudy Neptune with a Low Atmospheric Metallicity
- Superionic silica-water and silica-hydrogen compounds under high pressure
- The dynamical history of the evaporating or disrupted ice giant planet around white dwarf WD J0914+1914
- Internal water storage capacity of terrestrial planets and the effect of hydration on the M-R relation
- Ariel Planetary Interiors White Paper
- Steamworlds: atmospheric structure and critical mass of planets accreting icy pebbles
Cited by in corpus (38)
- Conclusive evidence for a population of water-worlds around M-dwarfs remains elusive
- Majority of water hides deep in the interiors of exoplanets
- LHS 1140 b is a potentially habitable water world
- 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
- Super-Earths and Earth-like Exoplanets
- The distribution of volatile elements during rocky planet formation
- A super-massive Neptune-sized planet
- Escaping Helium and a Highly Muted Spectrum Suggest a Metal-Enriched Atmosphere on Sub-Neptune GJ3090b from JWST Transit Spectroscopy
- Empirical Structure Models of Uranus and Neptune
- Unveiling the internal structure and formation history of the three planets transiting HIP 29442 (TOI-469) with CHEOPS
- GASTLI: An open-source coupled interior-atmosphere model to unveil gas giant composition
- The metal-poor atmosphere of a Neptune/Sub-Neptune planet progenitor
- Planet Mass and Metallicity: The Exoplanets and Solar System Connection
- Detailed chemical compositions of planet-hosting stars: II. Exploration of the interiors of terrestrial-type exoplanets
- Asynchronous accretion can mimic diverse white dwarf pollutants II: water content
- First Comparative Exoplanetology Within a Transiting Multi-planet System: Comparing the atmospheres of V1298 Tau b and c
- H-HO demixing in Uranus and Neptune: Adiabatic structure models
- Interior-atmosphere modelling to assess the observability of rocky planets with JWST
- Evolution of steam worlds: energetic aspects
- How planets form by pebble accretion V. Silicate rainout delays contraction of sub-Neptunes
- Constraining exoplanet interiors using observations of their atmospheres
- Rocky sub-Neptunes formed by pebble accretion: Rain of rocks from polluted envelopes
- Building Wet Planets through High-Pressure Magma-Hydrogen Reactions
- A Bayesian Analysis of Technological Intelligence in Land and Oceans
- The Possibility of Hydrogen-Water Demixing in Uranus, Neptune, K2-18b and TOI-270d
- Characterisation of TOI-406 as showcase of the THIRSTEE program: A 2-planet system straddling the M-dwarf density gap
- Searching for Hot Water World Candidates with CHEOPS: Refining the radii and analysing the internal structures and atmospheric lifetimes of TOI-238 b and TOI-1685 b
- The SPACE Program. I. The featureless spectrum of HD 86226 c challenges sub-Neptune atmosphere trends
- Discovery of an icy and nitrogen-rich extrasolar planetesimal
- An Equation of State of CO for use in Planetary Modeling
- About the loss of a primordial atmosphere of super-Earths by planetesimal impacts
- The linear-mixing approximation in silica-water mixtures at planetary conditions
- Structure and Melting of Fe, MgO, SiO2, and MgSiO3 in Planets: Database, Inversion, and Phase Diagram
- The Effect of Accretion Rate and Composition on the Structure of Ice-rich Super-Earths
- Discovery of a transiting hot water-world candidate orbiting Ross 176 with TESS and CARMENES
- Chemical diversity of the atmospheres and interiors of sub-Neptunes: a case study of GJ 436 b
- TOI-1438: A rare system with two short-period sub-Neptunes and a tentative long-period Jupiter-like planet orbiting a K0V star