How does Background Air Pressure Influence the Inner Edge of the Habitable Zone for Tidally Locked Planets in a 3D View?
arXiv:2010.01466 · doi:10.3847/2041-8213/abb87f
Abstract
We examine the effect of varying background N2 surface pressure (labelled as pN2) on the inner edge of the habitable zone for 1:1 tidally locked planets around M dwarfs, using the three-dimensional (3D) atmospheric general circulation model (AGCM) ExoCAM. In our experiments, the rotation period is fixed when varying the stellar flux, in order to more clearly isolate the role of pN2. We find that the stellar flux threshold for the runaway greenhouse is a non-monotonous function of pN2. This is due to the competing effects of five processes: pressure broadening, heat capacity, lapse rate, relative humidity, and clouds. These competing processes increase the complexity in predicting the location of the inner edge of the habitable zone. For a slow rotation orbit of 60 Earth days, the critical stellar flux for the runaway greenhouse onset is 1700--1750, 1900--1950, and 1750--1800 W m under 0.25, 1.0, and 4.0 bar of pN2, respectively, suggesting that the magnitude of the effect of pN2 is within ~13%. For a rapid rotation orbit, the effect of varying pN2 on the inner edge is smaller, within a range of ~7%. Moreover, we show that Rayleigh scattering effect as varying pN2 is unimportant for the inner edge due to the masking effect of cloud scattering and to the strong shortwave absorption by water vapor under hot climates. Future work using AGCMs having different cloud and convection schemes and cloud-resolving models having explicit cloud and convection are required to revise this problem.
14 Pages, 4 Figures, accepted for publication in ApJL
References in corpus (22)
- Habitable Zones Around Main-Sequence Stars: Dependence on Planetary Mass
- Habitable planets around the star Gl 581?
- Was Venus the First Habitable World of our Solar System?
- Strong Dependence of the Inner Edge of the Habitable Zone on Planetary Rotation Rate
- Abiotic oxygen-dominated atmospheres on terrestrial habitable zone planets
- Nitrogen Isotopic Composition and Density of the Archean Atmosphere
- The Nitrogen Budget of Earth
- Atmospheric dynamics of Earth-like tidally locked aquaplanets
- Atmospheric dynamics of terrestrial exoplanets over a wide range of orbital and atmospheric parameters
- K-H_2 Quasi-molecular absorption detected in the T-dwarf epsilon Indi Ba
- Transition to a Moist Greenhouse with CO and solar forcing
- Constraints on Climate and Habitability for Earth-like Exoplanets Determined from a General Circulation Model
- Deciphering thermal phase curves of dry, tidally locked terrestrial planets
- The atmospheric circulation and climate of terrestrial planets orbiting Sun-like and M-dwarf stars over a broad range of planetary parameters
- Water Trapping on Tidally Locked Terrestrial Planets Requires Special Conditions
- TRAPPIST-1 Habitable Atmosphere Intercomparison (THAI). Motivations and protocol version 1.0
- 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
- Keeping M-Earths Habitable in the Face of Atmospheric Loss by Sequestering Water in the Mantle
- Effects of Radius and Gravity on the Inner Edge of the Habitable Zone
- Stability of Nitrogen in Planetary Atmospheres in Contact with Liquid Water
- The effect of varying atmospheric pressure upon habitability and biosignatures of Earth-like planets