Internal water storage capacity of terrestrial planets and the effect of hydration on the M-R relation
arXiv:2012.06455 · doi:10.1051/0004-6361/202038839
Abstract
Understanding the chemical interactions between water and Mg-silicates or iron is essential to constrain the interiors of water-rich planets. Hydration effects have, however, been mostly neglected by the astrophysics community so far. As such effects are unlikely to have major impacts on theoretical mass-radius relations this is justified as long as the measurement uncertainties are large. However, upcoming missions, such as the PLATO mission (scheduled launch 2026), are envisaged to reach a precision of up to and for radii and masses, respectively. As a result, we may soon enter an area in exoplanetary research where various physical and chemical effects such as hydration can no longer be ignored. Our goal is to construct interior models for planets that include reliable prescriptions for hydration of the cores and the mantles. These models can be used to refine previous results for which hydration has been neglected and to guide future characterization of observed exoplanets. We have developed numerical tools to solve for the structure of multi-layered planets with variable boundary conditions and compositions. Here we consider three types of planets: dry interiors, hydrated interiors and dry interiors + surface ocean where the ocean mass fraction corresponds to the mass fraction of equivalent in the hydrated case. We find H/OH storage capacities in the hydrated planets equivalent to corresponding to up to deep ocean layers. In the mass range the effect of hydration on the total radius is found to be whereas the effect of differentiation into an isolated surface ocean is . Furthermore, we find that our results are very sensitive to the bulk composition.
34 pages
References in corpus (12)
- The origins and concentrations of water, carbon, nitrogen and noble gases on Earth
- Mass-Radius Relationships for Solid Exoplanets
- Most 1.6 Earth-Radius Planets are not Rocky
- Can we constrain interior structure of rocky exoplanets from mass and radius measurements?
- Ocean Planet or Thick Atmosphere: On the Mass-Radius Relationship for Solid Exoplanets with Massive Atmospheres
- A generalized bayesian inference method for constraining the interiors of super Earths and sub-Neptunes
- Effects of Extreme Obliquity Variations on the Habitability of Exoplanets
- Could we identify hot Ocean-Planets with CoRoT, Kepler and Doppler velocimetry?
- Kepler-93b: A Terrestrial World Measured to within 120 km, and a Test Case for a New Spitzer Observing Mode
- The unstable CO2 feedback cycle on ocean planets
- Impacts of stellar evolution and dynamics on the habitable zone: The role of rotation and magnetic activity
- Runaway climate cooling of ocean planets in the habitable zone: a consequence of seafloor weathering enhanced by melting of high-pressure ice
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- Linking Uranus' temperature profile to wind-induced magnetic fields
- A Validated Low-to-Intermediate Mass Planetary Interior Structure Model and New Mass-Radius Relations