A One-Dimensional Energy Balance Model Parameterization for the Formation of CO2 Ice on the Surfaces of Eccentric Extrasolar Planets

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Main Authors: Venkatesan, Vidya, Shields, Aomawa L., Deitrick, Russell, Wolf, Eric T., Rushby, Andrew, Physics, Department of, Astronomy, California, University of, Irvine, California, USA, Earth, School of, Sciences, Ocean, Victoria, University of, Victoria, Canada, Atmospheric, Laboratory for, Physics, Space, Boulder, University of Colorado, Boulder, Colorado, Collaboration, Sellers Exoplanet Environment, Center, NASA Goddard Space Flight, Greenbelt, Maryland, Science, Blue Marble Space Institute of, Seattle, Washington, Earth, Department of, Sciences, Planetary, London, Birkbeck University of, London, Kingdom, United
Format: Preprint
Published: 2025
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_version_ 1866910792088027136
author Venkatesan, Vidya
Shields, Aomawa L.
Deitrick, Russell
Wolf, Eric T.
Rushby, Andrew
Physics, Department of
Astronomy
California, University of
Irvine
California
USA
Earth, School of
Sciences, Ocean
Victoria, University of
Victoria
Canada
Atmospheric, Laboratory for
Physics, Space
Boulder, University of Colorado
Boulder
Colorado
USA
Collaboration, Sellers Exoplanet Environment
Center, NASA Goddard Space Flight
Greenbelt
Maryland
USA
Science, Blue Marble Space Institute of
Seattle
Washington
USA
Earth, Department of
Sciences, Planetary
London, Birkbeck University of
London
Kingdom, United
author_facet Venkatesan, Vidya
Shields, Aomawa L.
Deitrick, Russell
Wolf, Eric T.
Rushby, Andrew
Physics, Department of
Astronomy
California, University of
Irvine
California
USA
Earth, School of
Sciences, Ocean
Victoria, University of
Victoria
Canada
Atmospheric, Laboratory for
Physics, Space
Boulder, University of Colorado
Boulder
Colorado
USA
Collaboration, Sellers Exoplanet Environment
Center, NASA Goddard Space Flight
Greenbelt
Maryland
USA
Science, Blue Marble Space Institute of
Seattle
Washington
USA
Earth, Department of
Sciences, Planetary
London, Birkbeck University of
London
Kingdom, United
contents Eccentric planets may spend a significant portion of their orbits at large distances from their host stars, where low temperatures can cause atmospheric CO2 to condense out onto the surface, similar to the polar ice caps on Mars. The radiative effects on the climates of these planets throughout their orbits would depend on the wavelength-dependent albedo of surface CO2 ice that may accumulate at or near apoastron and vary according to the spectral energy distribution of the host star. To explore these possible effects, we incorporated a CO2 ice-albedo parameterization into a one-dimensional energy balance climate model. With the inclusion of this parameterization, our simulations demonstrated that F-dwarf planets require 29% more orbit-averaged flux to thaw out of global water ice cover compared with simulations that solely use a traditional pure water ice-albedo parameterization. When no eccentricity is assumed, and host stars are varied, F-dwarf planets with higher bond albedos relative to their M-dwarf planet counterparts require 30% more orbit-averaged flux to exit a water snowball state. Additionally, the intense heat experienced at periastron aids eccentric planets in exiting a snowball state with a smaller increase in instellation compared with planets on circular orbits; this enables eccentric planets to exhibit warmer conditions along a broad range of instellation. This study emphasizes the significance of incorporating an albedo parameterization for the formation of CO2 ice into climate models to accurately assess the habitability of eccentric planets, as we show that, even at moderate eccentricities, planets with Earth-like atmospheres can reach surface temperatures cold enough for the condensation of CO2 onto their surfaces, as can planets receiving low amounts of instellation on circular orbits.
format Preprint
id arxiv_https___arxiv_org_abs_2501_11667
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A One-Dimensional Energy Balance Model Parameterization for the Formation of CO2 Ice on the Surfaces of Eccentric Extrasolar Planets
Venkatesan, Vidya
Shields, Aomawa L.
Deitrick, Russell
Wolf, Eric T.
Rushby, Andrew
Physics, Department of
Astronomy
California, University of
Irvine
California
USA
Earth, School of
Sciences, Ocean
Victoria, University of
Victoria
Canada
Atmospheric, Laboratory for
Physics, Space
Boulder, University of Colorado
Boulder
Colorado
USA
Collaboration, Sellers Exoplanet Environment
Center, NASA Goddard Space Flight
Greenbelt
Maryland
USA
Science, Blue Marble Space Institute of
Seattle
Washington
USA
Earth, Department of
Sciences, Planetary
London, Birkbeck University of
London
Kingdom, United
Earth and Planetary Astrophysics
Eccentric planets may spend a significant portion of their orbits at large distances from their host stars, where low temperatures can cause atmospheric CO2 to condense out onto the surface, similar to the polar ice caps on Mars. The radiative effects on the climates of these planets throughout their orbits would depend on the wavelength-dependent albedo of surface CO2 ice that may accumulate at or near apoastron and vary according to the spectral energy distribution of the host star. To explore these possible effects, we incorporated a CO2 ice-albedo parameterization into a one-dimensional energy balance climate model. With the inclusion of this parameterization, our simulations demonstrated that F-dwarf planets require 29% more orbit-averaged flux to thaw out of global water ice cover compared with simulations that solely use a traditional pure water ice-albedo parameterization. When no eccentricity is assumed, and host stars are varied, F-dwarf planets with higher bond albedos relative to their M-dwarf planet counterparts require 30% more orbit-averaged flux to exit a water snowball state. Additionally, the intense heat experienced at periastron aids eccentric planets in exiting a snowball state with a smaller increase in instellation compared with planets on circular orbits; this enables eccentric planets to exhibit warmer conditions along a broad range of instellation. This study emphasizes the significance of incorporating an albedo parameterization for the formation of CO2 ice into climate models to accurately assess the habitability of eccentric planets, as we show that, even at moderate eccentricities, planets with Earth-like atmospheres can reach surface temperatures cold enough for the condensation of CO2 onto their surfaces, as can planets receiving low amounts of instellation on circular orbits.
title A One-Dimensional Energy Balance Model Parameterization for the Formation of CO2 Ice on the Surfaces of Eccentric Extrasolar Planets
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2501.11667