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    Importance of the Antarctic Slope Current in the Southern Ocean Response to Ice Sheet Melt and Wind Stress Change

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    Name:
    JGR Oceans - 2022 - Beadling - ...
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    Author
    Beadling, R.L.
    Krasting, J.P.
    Griffies, S.M.
    Hurlin, W.J.
    Bronselaer, B.
    Russell, J.L.
    MacGilchrist, G.A.
    Tesdal, J.-E.
    Winton, M.
    Affiliation
    Department of Geosciences, University of Arizona
    Issue Date
    2022
    Keywords
    Antarctic Slope Current
    climate modeling
    ocean circulation
    Southern Ocean
    
    Metadata
    Show full item record
    Publisher
    John Wiley and Sons Inc
    Citation
    Beadling, R. L., Krasting, J. P., Griffies, S. M., Hurlin, W. J., Bronselaer, B., Russell, J. L., MacGilchrist, G. A., Tesdal, J.-E., & Winton, M. (2022). Importance of the Antarctic Slope Current in the Southern Ocean Response to Ice Sheet Melt and Wind Stress Change. Journal of Geophysical Research: Oceans, 127(5).
    Journal
    Journal of Geophysical Research: Oceans
    Rights
    © 2022 American Geophysical Union. All Rights Reserved.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    We use two coupled climate models, GFDL-CM4 and GFDL-ESM4, to investigate the physical response of the Southern Ocean to changes in surface wind stress, Antarctic meltwater, and the combined forcing of the two in a pre-industrial control simulation. The meltwater cools the ocean surface in all regions except the Weddell Sea, where the wind stress warms the near-surface layer. The limited sensitivity of the Weddell Sea surface layer to the meltwater is due to the spatial distribution of the meltwater fluxes, regional bathymetry, and large-scale circulation patterns. The meltwater forcing dominates the Antarctic shelf response and the models yield strikingly different responses along West Antarctica. The disagreement is attributable to the mean-state representation and meltwater-driven acceleration of the Antarctic Slope Current (ASC). In CM4, the meltwater is efficiently trapped on the shelf by a well resolved, strong, and accelerating ASC which isolates the West Antarctic shelf from warm offshore waters, leading to strong subsurface cooling. In ESM4, a weaker and diffuse ASC allows more meltwater to escape to the open ocean, the West Antarctic shelf does not become isolated, and instead strong subsurface warming occurs. The CM4 results suggest a possible negative feedback mechanism that acts to limit future melting, while the ESM4 results suggest a possible positive feedback mechanism that acts to accelerate melt. Our results demonstrate the strong influence the ASC has on governing changes along the shelf, highlighting the importance of coupling interactive ice sheet models to ocean models that can resolve these dynamical processes. © 2022. American Geophysical Union. All Rights Reserved.
    Note
    6 month embargo; first published: 28 April 2022
    ISSN
    2169-9275
    DOI
    10.1029/2021JC017608
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.1029/2021JC017608
    Scopus Count
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    UA Faculty Publications

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