Exploring exomoon atmospheres with an idealized general circulation model
arXiv:1806.06822 · doi:10.1093/mnras/sty1630
Abstract
Recent studies have shown that large exomoons can form in the accretion disks around super-Jovian extrasolar planets. These planets are abundant at about 1 AU from Sun-like stars, which makes their putative moons interesting for studies of habitability. Technological advances could soon make an exomoon discovery with Kepler or the upcoming CHEOPS and PLATO space missions possible. Exomoon climates might be substantially different from exoplanet climates because the day-night cycles on moons are determined by the moon's synchronous rotation with its host planet. Moreover, planetary illumination at the top of the moon's atmosphere and tidal heating at the moon's surface can be substantial, which can affect the redistribution of energy on exomoons. Using an idealized general circulation model with simplified hydrologic, radiative, and convective processes, we calculate surface temperature, wind speed, mean meridional circulation, and energy transport on a 2.5 Mars-mass moon orbiting a 10-Jupiter-mass at 1 AU from a Sun-like star. The strong thermal irradiation from a young giant planet causes the satellite's polar regions to warm, which remains consistent with the dynamically-driven polar amplification seen in Earth models that lack ice-albedo feedback. Thermal irradiation from young, luminous giant planets onto water-rich exomoons can be strong enough to induce water loss on a planet, which could lead to a runaway greenhouse. Moons that are in synchronous rotation with their host planet and do not experience a runaway greenhouse could experience substantial polar melting induced by the polar amplification of planetary illumination and geothermal heating from tidal effects.
Accepted for publication in MNRAS
References in corpus (25)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- A terrestrial planet candidate in a temperate orbit around Proxima Centauri
- Strong Dependence of the Inner Edge of the Habitable Zone on Planetary Rotation Rate
- Atmospheric dynamics of terrestrial exoplanets over a wide range of orbital and atmospheric parameters
- Formation, Habitability, and Detection of Extrasolar Moons
- Demarcating circulation regimes of synchronously rotating terrestrial planets within the habitable zone
- HEK VI: On the Dearth of Galilean Analogs in Kepler and the Exomoon Candidate Kepler-1625b I
- The potential for Earth-mass planet formation around brown dwarfs
- Transition to a Moist Greenhouse with CO and solar forcing
- Habitable Climates
- Constraints on Climate and Habitability for Earth-like Exoplanets Determined from a General Circulation Model
- Detecting companions to extrasolar planets using mutual events
- The potential for tidally heated icy and temperate moons around exoplanets
- On the detection of Exomoons: A search in Kepler data for the orbital sampling effect and the scatter peak
- Detecting extrasolar moons akin to solar system satellites with an orbital sampling effect
- How to determine an exomoon's sense of orbital motion
- 3D climate modeling of Earth-like extrasolar planets orbiting different types of host stars
- Revisiting the exomoon candidate signal around Kepler-1625b
- Conditions for water ice lines and Mars-mass exomoons around accreting super-Jovian planets at 1 - 20 AU from Sun-like stars
- Exomoon Habitability and Tidal Evolution in Low-Mass Star Systems
- Origin and Stability of Exomoon Atmospheres - Implications for Habitability
- The Effect of Planetary Illumination on Climate Modelling of Earthlike Exomoons
- On The Feasibility of Exomoon Detection Via Exoplanet Phase Curve Spectral Contrast
- Geothermal heating enhances atmospheric asymmetries on synchronously rotating planets
- Search for possible exomoons with FAST telescope
Cited by in corpus (7)
- Presence of water on exomoons orbiting free-floating planets: a case study
- Exploring formation scenarios for the exomoon candidate Kepler 1625b I
- Effects of Spin-Orbit Resonances and Tidal Heating on the Inner Edge of the Habitable Zone
- The Impact of Planetary Rotation Rate on the Reflectance and Thermal Emission Spectrum of Terrestrial Exoplanets Around Sun-like Stars
- Presence of liquid water during the evolution of exomoons orbiting ejected free-floating planets
- Planetary climate under extremely high vertical diffusivity
- The habitable zone for Earthlike exomoons orbiting Kepler-1625b