Atmospheric Overturning Circulation on Dry, Tidally-locked Rocky Planets is Mainly Driven by Radiative Cooling
arXiv:2206.07249 · doi:10.3847/PSJ/ac6d65
Abstract
In this study, we examine the driving mechanism for the atmospheric overturning circulation on dry, tidally-locked rocky planets without the condensation of water vapor or other species. We find that the main driving process is the radiative cooling of CO2 (or other non-condensable greenhouse gases) rather than CO2 greenhouse warming or stellar radiation. Stellar radiation is the ultimate mechanism but not the direct mechanism. Due to the combination of the uneven distribution in the stellar radiation and effective horizontal energy transports in the free troposphere, there is strong temperature inversion in the area away from the substellar region. This inversion makes CO2 to have a radiative cooling effect rather than a radiative warming effect for the atmosphere, same as that in the stratosphere of Earth's atmosphere. This cooling effect produces negative buoyancy and drives large-scale downwelling, supporting the formation of a global-scale overturning circulation. If CO2 is excluded from the atmosphere, the overturning circulation becomes very weak, regardless the level of stellar radiation. This mechanism is completely different from that for the atmospheric overturning circulation on Earth or on moist, tidally-locked rocky planets, where latent heat release and/or baroclinic instability are the dominated mechanisms. Our study improves the understanding of the atmospheric circulation on tidally-locked exoplanets and also on other dry planets, such as Venus and Mars in the solar system.
References in corpus (19)
- Extreme Water Loss and Abiotic O Buildup On Planets Throughout the Habitable Zones of M Dwarfs
- Atmospheric dynamics of Earth-like tidally locked aquaplanets
- Predictions of the atmospheric composition of GJ 1132b
- Is Proxima Centauri b habitable? -- A study of atmospheric loss
- The Habitable Zones of Pre-Main-Sequence Stars
- Temporal evolution of the high-energy irradiation and water content of TRAPPIST-1 exoplanets
- Effects of Bulk Composition on The Atmospheric Dynamics on Close-in Exoplanets
- Constraints on Climate and Habitability for Earth-like Exoplanets Determined from a General Circulation Model
- The rotational and divergent components of atmospheric circulation on tidally locked planets
- Deciphering thermal phase curves of dry, tidally locked terrestrial planets
- The TRAPPIST-1 Habitable Atmosphere Intercomparison (THAI). Part II: Moist Cases -- The Two Waterworlds
- Connecting the dots: A versatile model for the atmospheres of tidally locked Super-Earths
- O2- and CO-Rich Atmospheres for Potentially Habitable Environments on TRAPPIST-1 Planets
- Implications of different stellar spectra for the climate of tidally-locked Earth-like exoplanets
- Effects of Radius and Gravity on the Inner Edge of the Habitable Zone
- How does Background Air Pressure Influence the Inner Edge of the Habitable Zone for Tidally Locked Planets in a 3D View?
- A New Line-By-Line General Circulation Model for Simulations of Diverse Planetary Atmospheres: Initial Validation and Application to the Exoplanet GJ 1132b
- Phase Shift of Planetary Waves and Wave--Jet Resonance on Tidally Locked Planets
- The Phase-curve Signature of Condensible Water-rich Atmospheres on Slowly Rotating Tidally Locked Exoplanets
Cited by in corpus (6)
- Stratospheric dayside-to-nightside circulation drives the 3-D ozone distribution on synchronously rotating rocky exoplanets
- 3D Global climate model of an exo-Venus: a modern Venus-like atmosphere for the nearby super-Earth LP 890-9 c
- Lorenz Energy Cycle: Another Way to Understand the Atmospheric Circulation on Tidally Locked Terrestrial Planets
- Potential Surface Ice Distribution on Close-in Terrestrial Exoplanets around M dwarfs
- The Feasibility of Asynchronous Rotation via Thermal Tides for Diverse Atmospheric Compositions
- Chemistry, Climate, and Transmission Spectra of TRAPPIST-1 e Explored with a Multimodel Sparse Sampled Ensemble