The effect of high nitrogen pressures on the habitable zone and an appraisal of greenhouse states
arXiv:2004.00229 · doi:10.1093/mnras/staa603
Abstract
The habitable zone is the main tool that mission architectures utilize to select potentially habitable planets for follow up spectroscopic observation. Given its importance, the precise size and location of the habitable zone remains a hot topic, as many studies, using a hierarchy of models, have assessed various factors including: atmospheric composition, time, and planetary mass. However, little work has assessed how the habitable zone changes with variations in background nitrogen pressure, which is directly connected to the habitability and life bearing potential of planets. Here, I use an advanced energy balance model with clouds to show that our solar system habitable zone is about 0.9 to 1.7 AU, assuming a 5 bar nitrogen background pressure and a maximum 100 percent cloud cover at the inner edge. This width is about 20 percent wider than the conservative habitable zone estimate. Similar extensions are calculated for A to M stars. I also show that cooling clouds and hazes and high background pressures can decrease the runaway greenhouse threshold temperature to approximately 300 K (or less) for planets orbiting any star type. This is because the associated increase in planetary albedo enables stable climates closer to the star, where rapid destabilization can be triggered from a lower mean surface temperature. Enhanced longwave emission for planets with very high stratospheric temperatures also permits stable climates at smaller orbital distances. The model predicts a runaway greenhouse above approximately 330 K for planets orbiting the Sun, which is consistent with previous work. However, moist greenhouses only occur for planets orbiting A-stars.
Published in The Monthly Notices of the Royal Astronomical Society (27 pages, 7 figures)
References in corpus (10)
- Habitable Zones Around Main-Sequence Stars: Dependence on Planetary Mass
- Was Venus the First Habitable World of our Solar System?
- Warming early Mars with CO2 and H2
- Abiotic oxygen-dominated atmospheres on terrestrial habitable zone planets
- The Habitable Zones of Pre-Main-Sequence Stars
- A Volcanic Hydrogen Habitable Zone
- Transition to a Moist Greenhouse with CO and solar forcing
- Climate Cycling on Early Mars Caused by the Carbonate-Silicate Cycle
- A Low-order Model of Water Vapor, Clouds, and Thermal Emission for Tidally Locked Terrestrial Planets
- The Moist Greenhouse is Sensitive to Stratospheric Temperature
Cited by in corpus (9)
- Thermodynamic and Energetic Limits on Continental Silicate Weathering Strongly Impact the Climate and Habitability of Wet, Rocky Worlds
- Super-Earths and Earth-like Exoplanets
- Life as the Only Reason for the Existence of N2-O2-Dominated Atmospheres
- 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 ?
- An Energy Balance Model for Rapidly and Synchronously Rotating Terrestrial Planets
- The influence of surface condensation on the evolution of warm and cold rocky planets orbiting Sun-like stars
- Absence of a Runaway Greenhouse Limit on Lava Planets
- Bioverse: Potentially Observable Exoplanet Biosignature Patterns Under the UV Threshold Hypothesis for the Origin of Life