Blue marble, stagnant lid: Could dynamic topography avert a waterworld?
arXiv:2201.05636 · doi:10.3847/PSJ/ac562e
Abstract
Topography on a wet rocky exoplanet could raise land above its sea level. Although land elevation is the product of many complex processes, the large-scale topographic features on any geodynamically-active planet are the expression of the convecting mantle beneath the surface. This so-called "dynamic topography" exists regardless of a planet's tectonic regime or volcanism; its amplitude, with a few assumptions, can be estimated via numerical simulations of convection as a function of the mantle Rayleigh number. We develop new scaling relationships for dynamic topography on stagnant lid planets using 2D convection models with temperature-dependent viscosity. These scalings are applied to 1D thermal history models to explore how dynamic topography varies with exoplanetary observables over a wide parameter space. Dynamic topography amplitudes are converted to an ocean basin capacity, the minimum water volume required to flood the entire surface. Basin capacity increases less steeply with planet mass than does the amount of water itself, assuming a water inventory that is a constant planetary mass fraction. We find that dynamically-supported topography alone could be sufficient to maintain subaerial land on Earth-size stagnant lid planets with surface water inventories of up to approximately times their mass, in the most favourable thermal states. By considering only dynamic topography, which has ~1-km amplitudes on Earth, these results represent a lower limit to the true ocean basin capacity. Our work indicates that deterministic geophysical modelling could inform the variability of land propensity on low-mass planets.
33 pages, 9 figures, submitted to The Planetary Science Journal
References in corpus (25)
- Most 1.6 Earth-Radius Planets are not Rocky
- Building Terrestrial Planets
- The habitability of Proxima Centauri b II. Possible climates and Observability
- Geodynamics and Rate of Volcanism on Massive Earth-like Planets
- The habitability of a stagnant-lid Earth
- Phase transitions in MgSiO3 post-perovskite in super-Earth mantles
- Detecting Ocean Glint on Exoplanets Using Multiphase Mapping
- Characterisation of the hydrospheres of TRAPPIST-1 planets
- Thermodynamic and Energetic Limits on Continental Silicate Weathering Strongly Impact the Climate and Habitability of Wet, Rocky Worlds
- Was Venus Ever Habitable? Constraints from a Coupled Interior-Atmosphere-Redox Evolution Model
- The Chemical Composition of τ Ceti and Possible Effects on Terrestrial Planets
- Detectability of Life Using Oxygen on Pelagic Planets and Water Worlds
- Host-star and exoplanet compositions: a pilot study usinga wide binary with a polluted white dwarf
- Low volcanic outgassing rates for a stagnant lid Archean Earth with graphite-saturated magmas
- Radiogenic Heating and its Influence on Rocky Planet Dynamos and Habitability
- Global Mapping of an Exo-Earth using Sparse Modeling
- The Effect of Land Fraction and Host Star Spectral Energy Distribution on the Planetary Albedo of Terrestrial Worlds
- Polarimetric signature of the oceans as detected by near-infrared Earthshine observations
- Finding Mountains with Molehills: The Detectability of Exotopography
- Bifurcation in the growth of continental crust
- Topography of (exo)planets
- Mapping the Surface of Partially Cloudy Exoplanets is Hard
- A Geologically Robust Procedure For Observing Rocky Exoplanets to Ensure that Detection of Atmospheric Oxygen is an Earth-Like Biosignature
- The Diversity of Exoplanets: From Interior Dynamics to Surface Expressions
- The Composition and Mineralogy of Rocky Exoplanets: A Survey of >4,000 Stars from the Hypatia Catalog