Present-day and future Antarctic ice sheet climate and surface mass balance in the Community Earth System Model

Journal Article (2016)
Author(s)

Jan T. M. Lenaerts (Universiteit Utrecht)

Miren Vizcaino (TU Delft - Mathematical Geodesy and Positioning)

Jeremy Fyke (Los Alamos National Laboratory)

Leo van Kampenhout (Universiteit Utrecht)

M. R. R. Van Den Broeke (Universiteit Utrecht)

Research Group
Mathematical Geodesy and Positioning
Copyright
© 2016 Jan T M Lenaerts, M. Vizcaino, Jeremy Fyke, Leo van Kampenhout, Michiel R. van den Broeke
DOI related publication
https://doi.org/10.1007/s00382-015-2907-4
More Info
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Publication Year
2016
Language
English
Copyright
© 2016 Jan T M Lenaerts, M. Vizcaino, Jeremy Fyke, Leo van Kampenhout, Michiel R. van den Broeke
Research Group
Mathematical Geodesy and Positioning
Issue number
5-6
Volume number
47
Pages (from-to)
1367-1381
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Abstract

We present climate and surface mass balance (SMB) of the Antarctic ice sheet (AIS) as simulated by the global, coupled ocean–atmosphere–land Community Earth System Model (CESM) with a horizontal resolution of ∼ 1 in the past, present and future (1850–2100). CESM correctly simulates present-day Antarctic sea ice extent, large-scale atmospheric circulation and near-surface climate, but fails to simulate the recent expansion of Antarctic sea ice. The present-day Antarctic ice sheet SMB equals 2280 ± 131 Gtyear-1, which concurs with existing independent estimates of AIS SMB. When forced by two CMIP5 climate change scenarios (high mitigation scenario RCP2.6 and high-emission scenario RCP8.5), CESM projects an increase of Antarctic ice sheet SMB of about 70 Gtyear-1 per degree warming. This increase is driven by enhanced snowfall, which is partially counteracted by more surface melt and runoff along the ice sheet’s edges. This intensifying hydrological cycle is predominantly driven by atmospheric warming, which increases (1) the moisture-carrying capacity of the atmosphere, (2) oceanic source region evaporation, and (3) summer AIS cloud liquid water content.