Transition to a Moist Greenhouse with CO and solar forcing
arXiv:1610.02283 · doi:10.1038/ncomms10627
Abstract
Water-rich planets such as Earth are expected to become eventually uninhabitable, because liquid water does not remain stable at the surface as surface temperatures increase with the solar luminosity over time. Whether a large increase of atmospheric concentrations of greenhouse gases such as CO could also destroy the habitability of water-rich planets has remained unclear. We show with three-dimensional aqua-planet numerical experiments that CO-induced forcing as readily destabilizes the climate as does solar forcing. The climate instability is caused by a positive cloud feedback. The climate does not run away, but instead attains a new steady state with global-mean sea-surface temperatures above 330 K. The upper atmosphere is considerably moister in this warm steady state than in the reference climate, implying that the planet would be subject to substantial loss of water to space. For either a certain range of elevated CO concentrations or solar irradiation, we find both cold and warm equilibrium states, implying that the transition to the warm state may not simply be reversed by removing the additional forcing.
30 pages, 8 figures
Cited by in corpus (18)
- Atmospheric Regimes and Trends on Exoplanets and Brown Dwarfs
- The habitability of a stagnant-lid Earth
- Constraints on Climate and Habitability for Earth-like Exoplanets Determined from a General Circulation Model
- The atmospheric circulation and climate of terrestrial planets orbiting Sun-like and M-dwarf stars over a broad range of planetary parameters
- Ocean Dynamics and the Inner Edge of the Habitable Zone for Tidally Locked Terrestrial Planets
- Simulations of Water Vapor and Clouds on Rapidly Rotating and Tidally Locked Planets: a 3D Model Intercomparison
- Origins Space Telescope Mission Concept Study Report
- Robustness of competing climatic states
- Episodic deluges in simulated hothouse climates
- Effects of Radius and Gravity on the Inner Edge of the Habitable Zone
- Climate sensitivity to ozone and its relevance on the habitability of Earth-like planets
- How does Background Air Pressure Influence the Inner Edge of the Habitable Zone for Tidally Locked Planets in a 3D View?
- How does the background atmosphere affect the onset of the runaway greenhouse ?
- Wetter Stratospheres on High Obliquity Planets
- Eta-Earth Revisited II: Deriving a Maximum Number of Earth-like Habitats in the Galactic Disk
- First exploration of the runaway greenhouse transition with a GCM
- Climate Sensitivity to Carbon Dioxide and Moist Greenhouse threshold of Earth-like planets under an increasing solar forcing
- High pCO reduces sensitivity to CO perturbations on temperate, Earth-like planets throughout most of habitable zone