Published October 2017 | Version Supplemental Material + Submitted
Journal Article Open

Methane bursts as a trigger for intermittent lake-forming climates on post-Noachian Mars

  • 1. ROR icon University of Chicago
  • 2. ROR icon Ames Research Center
  • 3. ROR icon University of California, Berkeley
  • 4. ROR icon University of Victoria
  • 5. ROR icon Jet Propulsion Lab
  • 6. ROR icon Astrogeology Science Center
  • 7. ROR icon California Institute of Technology

Abstract

Lakes existed on Mars later than 3.6 billion years ago, according to sedimentary evidence for deltaic deposition. The observed fluviolacustrine deposits suggest that individual lake-forming climates persisted for at least several thousand years (assuming dilute flow). But the lake watersheds' little-weathered soils indicate a largely dry climate history, with intermittent runoff events. Here we show that these observational constraints, although inconsistent with many previously proposed triggers for lake-forming climates, are consistent with a methane burst scenario. In this scenario, chaotic transitions in mean obliquity drive latitudinal shifts in temperature and ice loading that destabilize methane clathrate. Using numerical simulations, we find that outgassed methane can build up to atmospheric levels sufficient for lake-forming climates, if methane clathrate initially occupies more than 4% of the total volume in which it is thermodynamically stable. Such occupancy fractions are consistent with methane production by water–rock reactions due to hydrothermal circulation on early Mars. We further estimate that photochemical destruction of atmospheric methane curtails the duration of individual lake-forming climates to less than a million years, consistent with observations. We conclude that methane bursts represent a potential pathway for intermittent excursions to a warm, wet climate state on early Mars.

Additional Information

© 2017 Macmillan Publishers Limited, part of Springer Nature. Received 25 May 2017; Accepted 23 August 2017; Published online 02 October 2017. We are grateful for input from D. E. Archer, J. C. Armstrong, B. L. Ehlmann, V. E. Hamilton, A. D. Howard, R. P. III Irwin, M. C. Palucis, D. Stolper, R. M. E. Williams and R. Wordsworth. We thank J. F. Kasting and A. G. Fairén for useful reviews. Part of the research was carried out at the Jet Propulsion Laboratory, California Institute of Technology, under a contract with the National Aeronautics and Space Administration. We acknowledge the University of Chicago's Research Computing Center and financial support from NASA (NNX16AG55G, NNX15AM49G). Author Contributions: E.S.K. designed research; M.A.M., Y.L.Y. and D.P.M. contributed new models, model output, and analyses; E.S.K., C.G. and P.G. carried out research; and E.S.K. wrote the paper. The authors declare no competing financial interests. Code availability: The methane burst code is available from the corresponding author upon request. The GCM and photochemical codes are not available. Data availability: The materials that support the findings of this study and the figures in this paper, including computer code, are available from the corresponding author upon request.

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Submitted - 1611.01717.pdf

Supplemental Material - ngeo3033-s1.pdf

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Additional details

Additional titles

Alternative title
Duration and rapid shutdown of post-Naochian lake-forming climates on Mars explained by methane bursts

Identifiers

Eprint ID
80639
DOI
10.1038/ngeo3033
Resolver ID
CaltechAUTHORS:20170821-105332756

Related works

Funding

NASA/JPL/Caltech
NASA
NNX16AG55G
NASA
NNX15AM49G

Dates

Created
2017-10-02
Created from EPrint's datestamp field
Updated
2021-11-15
Created from EPrint's last_modified field