Water Cycling Between Ocean and Mantle: Super-Earths Need Not be Waterworlds
arXiv:1401.0720 · doi:10.1088/0004-637X/781/1/27
Abstract
Large terrestrial planets are expected to have muted topography and deep oceans, implying that most super-Earths should be entirely covered in water, so-called waterworlds. This is important because waterworlds lack a silicate weathering thermostat so their climate is predicted to be less stable than that of planets with exposed continents. In other words, the continuously habitable zone for waterworlds is much narrower than for Earth-like planets. A planet's water is partitioned, however, between a surface reservoir, the ocean, and an interior reservoir, the mantle. Plate tectonics transports water between these reservoirs on geological timescales. Degassing of melt at mid-ocean ridges and serpentinization of oceanic crust depend negatively and positively on seafloor pressure, respectively, providing a stabilizing feedback on long-term ocean volume. Motivated by Earth's approximately steady-state deep water cycle, we develop a two-box model of the hydrosphere and derive steady-state solutions to the water partitioning on terrestrial planets. Critically, hydrostatic seafloor pressure is proportional to surface gravity, so super-Earths with a deep water cycle will tend to store more water in the mantle. We conclude that a tectonically active terrestrial planet of any mass can maintain exposed continents if its water mass fraction is less than ~0.2%, dramatically increasing the odds that super-Earths are habitable. The greatest source of uncertainty in our study is Earth's current mantle water inventory: the greater its value, the more robust planets are to inundation. Lastly, we discuss how future missions can test our hypothesis by mapping the oceans and continents of massive terrestrial planets.
8 pages, 2 figures, ApJ in press
References in corpus (5)
Cited by in corpus (43)
- Habitable Zones Around Main-Sequence Stars: Dependence on Planetary Mass
- Whole planet coupling between climate, mantle, and core: Implications for the evolution of rocky planets
- Habitability of Exoplanet Waterworlds
- The Feeding Zones of Terrestrial Planets and Insights into Moon Formation
- Water Trapping on Tidally Locked Terrestrial Planets Requires Special Conditions
- The persistence of oceans on Earth-like planets: insights from the deep-water cycle
- Predicted diversity in water content of terrestrial exoplanets orbiting M dwarfs
- Oceanographic Considerations for Exoplanet Life Detection
- Isotopic enrichment of forming planetary systems from supernova pollution
- Predictions for Observable Atmospheres of Trappist-1 Planets from a Fully Coupled Atmosphere-Interior Evolution Model
- Thermodynamic and Energetic Limits on Continental Silicate Weathering Strongly Impact the Climate and Habitability of Wet, Rocky Worlds
- Water and the interior structure of terrestrial planets and icy bodies
- Was Venus Ever Habitable? Constraints from a Coupled Interior-Atmosphere-Redox Evolution Model
- Oxygen False Positives on Habitable Zone Planets Around Sun-Like Stars
- Super-Earths and Earth-like Exoplanets
- Understanding planetary context to enable life detection on exoplanets and test the Copernican principle
- Detectability of Life Using Oxygen on Pelagic Planets and Water Worlds
- The Fundamental Connections Between the Solar System and Exoplanetary Science
- The First Habitable Zone Earth-sized Planet from TESS. III: Climate States and Characterization Prospects for TOI-700 d
- Dependence of Biological Activity on the Surface Water Fraction of Planets
- exocartographer: A Bayesian Framework for Mapping Exoplanets in Reflected Light
- Waterworlds Probably Do Not Experience Magmatic Outgassing
- Implications of atmospheric nondetections for Trappist-1 inner planets on atmospheric retention prospects for outer planets
- Realistic collisional water transport during terrestrial planet formation: Self-consistent modeling by an N-body--SPH hybrid code
- Keeping M-Earths Habitable in the Face of Atmospheric Loss by Sequestering Water in the Mantle
- Ultrahigh-Pressure Magnesium Hydrosilicates as Reservoirs of Water in Early Earth
- Bayesian evidence for the prevalence of waterworlds
- Effect of surface-mantle water exchange parameterizations on exoplanet ocean depths
- Mantle mineralogy limits to rocky planet water inventories
- Potential long-term habitable conditions on planets with primordial H-He atmospheres
- Internal water storage capacity of terrestrial planets and the effect of hydration on the M-R relation
- Mapping Exoplanets
- Eta-Earth Revisited II: Deriving a Maximum Number of Earth-like Habitats in the Galactic Disk
- Bifurcation in the growth of continental crust
- A Geologically Robust Procedure For Observing Rocky Exoplanets to Ensure that Detection of Atmospheric Oxygen is an Earth-Like Biosignature
- Assessing the Interior Structure of Terrestrial Exoplanets with Implications for Habitability
- Water versus land on temperate rocky planets
- Characteristics of aquatic biospheres on temperate planets around Sun-like stars and M-dwarfs
- Geoastronomy: Rocky planets as the Lavosier-Lomonosov Bridge from the non-living to the living world
- Exo-Geoscience Perspectives Beyond Habitability
- The Most Common Habitable Planets II -- Salty Oceans in Low Mass Habitable Planets and Global Climate Evolution
- Carbon Cycle Imbalances on Arid Terrestrial Planets with Implications for Venus
- Mantle Degassing Lifetimes through Galactic Time and the Maximum Age Stagnant-lid Rocky Exoplanets can Support Temperate Climates