The Interior Dynamics of Water Planets
arXiv:1001.2890 · doi:10.1088/0004-637X/708/2/1326
Abstract
The ever-expanding catalog of detected super-Earths calls for theoretical studies of their properties in the case of a substantial water layer. This work considers such water planets with a range of masses and water mass fractions (2 to 5 M_Earth, 0.02% to 50% H2 O). First, we model the thermal and dynamical structure of the near-surface for icy and oceanic surfaces, finding separate regimes where the planet is expected to maintain a subsurface liquid ocean and where it is expected to exhibit ice tectonics. Newly discovered exoplanets may be placed into one of these regimes given estimates of surface temperature, heat flux, and gravity. Second, we construct a parameterized convection model for the underlying ice mantle of higher ice phases, finding that materials released from the silicate iron core should traverse the ice mantle on the timescale of 0.1 to 100 megayears. We present the dependence of the overturn times of the ice mantle and the planetary radius on total mass and water mass fraction. Finally, we discuss the implications of these internal processes on atmospheric observables.
9 page 4 figures
References in corpus (9)
- Planetary Radii across Five Orders of Magnitude in Mass and Stellar Insolation: Application to Transits
- Mass-Radius Relationships for Solid Exoplanets
- Detailed Models of super-Earths: How well can we infer bulk properties?
- Inevitability of Plate Tectonics on Super-Earths
- Radius and Structure models for the First Super-Earth Planet
- A Study of the Accuracy of Mass-Radius Relationships for Silicate-Rich and Ice-Rich Planets up to 100 Earth Masses
- Could we identify hot Ocean-Planets with CoRoT, Kepler and Doppler velocimetry?
- Planet formation around low mass stars: the moving snow line and super-Earths
- Are extrasolar oceans common throughout the Galaxy?
Cited by in corpus (31)
- Impact of Space Weather on Climate and Habitability of Terrestrial Type Exoplanets
- How to Characterize Habitable Worlds and Signs of Life
- Thermal evolution and structure models of the transiting super-Earth GJ 1214b
- Water loss from terrestrial planets with CO2-rich atmospheres
- The nature and origins of sub-Neptune size planets
- Indication of insensitivity of planetary weathering behavior and habitable zone to surface land fraction
- Superhabitable Worlds
- Habitability of Exoplanet Waterworlds
- Water/Icy Super-Earths: Giant Impacts and Maximum Water Content
- The Compositional Diversity of Extrasolar Terrestrial Planets: II. Migration Simulations
- The Steppenwolf: A proposal for a habitable planet in interstellar space
- Isotopic enrichment of forming planetary systems from supernova pollution
- LHS 1140 b is a potentially habitable water world
- The unstable CO2 feedback cycle on ocean planets
- The effect of temperature evolution on the interior structure of HO-rich planets
- Water Planets in the Habitable Zone: Atmospheric Chemistry, Observable Features, and the case of Kepler-62e and -62f
- Interior Structure of Water Planets: Implications for their dynamo source regions
- Subsurface Exolife
- Detectability of Life Using Oxygen on Pelagic Planets and Water Worlds
- The Fundamental Connections Between the Solar System and Exoplanetary Science
- Structure and Dynamics of Cold Water Super-Earths: The Case of Occluded CH4 and its Outgassing
- High pressure ionic and molecular crystals of ammonia monohydrate within density functional theory
- Runaway climate cooling of ocean planets in the habitable zone: a consequence of seafloor weathering enhanced by melting of high-pressure ice
- Volatile Transport inside Super-Earths by Entrapment in the Water Ice Matrix
- Internal Structure and CO Reservoirs of Habitable Water-Worlds
- Tidal Dissipation in Dual-Body, Highly Eccentric, and Non-synchronously Rotating Systems: Applications to Pluto-Charon and the Exoplanet TRAPPIST-1e
- Internal water storage capacity of terrestrial planets and the effect of hydration on the M-R relation
- In Situ and Ex Situ Formation Models of Kepler 11 Planets
- A Geologically Robust Procedure For Observing Rocky Exoplanets to Ensure that Detection of Atmospheric Oxygen is an Earth-Like Biosignature
- H-Atmospheres of Icy Super-Earths Formed in situ in the Outer Solar System: An Application to a Possible Planet Nine
- Impact of Clouds on the Atmosphere-Mantle Interface of Sub-Neptunes