Effects of Spin-Orbit Resonances and Tidal Heating on the Inner Edge of the Habitable Zone
arXiv:2012.07996 · doi:10.3847/1538-4357/ac135c
Abstract
Much attention has been given to the climate dynamics and habitable boundaries of synchronously rotating planets around low mass stars. However, other rotational states are possible, particularly when higher eccentricity orbits can be maintained in a system, including spin-orbit resonant configurations. Additionally, the oscillating strain as a planet moves from periastron to apoastron results in friction and tidal heating, which can be an important energy source. Here, we simulate the climate of ocean-covered planets near the inner edge of the habitable zone around M to solar stars with ROCKE-3D, and leverage the planetary evolution software package, VPLanet, to calculate tidal heating rates for Earth-sized planets orbiting 2600 K and 3000 K stars. This study is the first to use a 3-D General Circulation Model that implements tidal heating to investigate habitability for multiple resonant states. We find that in the absence of tidal heating, the resonant state has little impact on the inner edge, because for a given stellar flux, higher-order states tend to be warmer than synchronous rotators, but for a given temperature, have drier upper atmospheres. However, when strong tidal heating is present, the rotational component implies a strong dependence of habitable conditions on the system evolution and rotational state. Since tidal and stellar heating both decrease with orbital distance, this results in a compact orbital width separating temperate and uninhabitable climates. We summarize these results and also compare ROCKE-3D to previously published simulations of the inner edge that used a modified version of the NCAR CAM4 model.
References in corpus (25)
- Was Venus the First Habitable World of our Solar System?
- The habitability of Proxima Centauri b II. Possible climates and Observability
- Tidal friction in close-in satellites and exoplanets. The Darwin theory re-visited
- Strong Dependence of the Inner Edge of the Habitable Zone on Planetary Rotation Rate
- Exoplanet Orbital Eccentricities Derived From LAMOST-Kepler Analysis
- The habitability of Proxima Centauri b. I. Irradiation, rotation and volatile inventory from formation to the present
- Tidal Locking of Habitable Exoplanets
- Asynchronous rotation of Earth-mass planets in the habitable zone of lower-mass stars
- Atmospheric dynamics of Earth-like tidally locked aquaplanets
- Treatment of overlapping gaseous absorption with the correlated-k method in hot Jupiter and brown dwarf atmosphere models
- Is Gliese 581d habitable? Some constraints from radiative-convective climate modeling
- Deformation and tidal evolution of close-in planets and satellites using a Maxwell viscoelastic rheology
- The atmospheric circulation and climate of terrestrial planets orbiting Sun-like and M-dwarf stars over a broad range of planetary parameters
- TRAPPIST-1 Habitable Atmosphere Intercomparison (THAI). Motivations and protocol version 1.0
- Mercury's capture into the 3/2 spin-orbit resonance including the effect of core-mantle friction
- Ocean Dynamics and the Inner Edge of the Habitable Zone for Tidally Locked Terrestrial Planets
- Atmospheric convection plays a key role in the climate of tidally-locked terrestrial exoplanets: insights from high-resolution simulations
- Connecting the dots: A versatile model for the atmospheres of tidally locked Super-Earths
- Effects of variable eccentricity on the climate of an Earth-like world
- On the equilibrium rotation of Earth-like extra-solar planets
- Convection in Condensible-rich Atmospheres
- Dynamics of atmospheres with a non-dilute condensible component
- No Snowball on Habitable Tidally Locked Planets with a Dynamic Ocean
- The Effect of Substellar Continent Size on Ocean Dynamics of Proxima Centauri b
- Geothermal heating enhances atmospheric asymmetries on synchronously rotating planets