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Effects of Extreme Obliquity Variations on the Habitability of ExoplanetsWe explore the impact of obliquity variations on planetary habitability in hypothetical systems with high mutual inclination. We show that large-amplitude, high-frequency obliquity oscillations on Earth-like exoplanets can suppress the ice-albedo feedback, increasing the outer edge of the habitable zone. We restricted our exploration to hypothetical systems consisting of a solar-mass star, an Earth-mass planet at 1 AU, and 1 or 2 larger planets. We verified that these systems are stable for 108 years with N-body simulations and calculated the obliquity variations induced by the orbital evolution of the Earth-mass planet and a torque from the host star. We ran a simplified energy balance model on the terrestrial planet to assess surface temperature and ice coverage on the planet's surface, and we calculated differences in the outer edge of the habitable zone for planets with rapid obliquity variations. For each hypothetical system, we calculated the outer edge of habitability for two conditions: (1) the full evolution of the planetary spin and orbit and (2) the eccentricity and obliquity fixed at their average values. We recovered previous results that higher values of fixed obliquity and eccentricity expand the habitable zone, but we also found that obliquity oscillations further expand habitable orbits in all cases. Terrestrial planets near the outer edge of the habitable zone may be more likely to support life in systems that induce rapid obliquity oscillations as opposed to fixed-spin planets. Such planets may be the easiest to directly characterize with space-borne telescopes.
Document ID
20150008371
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Armstrong, J. C.
(Weber State Univ. Ogden, UT, United States)
Barnes, R.
(Washington Univ. Seattle, WA, United States)
Domagal-Goldman, S.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Breiner, J.
(Washington Univ. Seattle, WA, United States)
Quinn, T. R.
(Washington Univ. Seattle, WA, United States)
Meadows, V. S.
(Washington Univ. Seattle, WA, United States)
Date Acquired
May 19, 2015
Publication Date
March 10, 2014
Publication Information
Publication: Astrobiology
Publisher: Mary Ann Liebert, Inc.
Volume: 14
Issue: 4
Subject Category
Lunar And Planetary Science And Exploration
Report/Patent Number
GSFC-E-DAA-TN21694
Report Number: GSFC-E-DAA-TN21694
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
habitability of exoplanets
exoplantes
extreme obliquity variations
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