Historical and Future Projected Warming of Antarctic Shelf Bottom Water in CMIP6 Models

被引:48
作者
Purich, Ariaan [1 ,2 ]
England, Matthew H. [1 ,2 ]
机构
[1] ARC Ctr Excellence Climate Extremes, Sydney, NSW, Australia
[2] Univ New South Wales, Climate Change Res Ctr, Sydney, NSW, Australia
基金
澳大利亚研究理事会;
关键词
Antarctic shelf bottom water; climate change; CMIP6; Southern Annular Mode; Southern Ocean; SOUTHERN-OCEAN CONVECTION; SEA-ICE; CONTINENTAL-SHELF; FRESH-WATER; VARIABILITY; TRANSPORT; RETREAT; DRIVEN; FRONT; EDDY;
D O I
10.1029/2021GL092752
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Understanding warming on the Antarctic shelf is critical for projecting changes in Antarctic ice shelves and ice sheets. Here we assess Antarctic Shelf Bottom Water (ASBW) temperature mean-state and trends in CMIP6 models. While CMIP6 models do not resolve ice shelves, future shelf water warming will impact ice shelf vulnerability. The CMIP6 multi-model mean zonal temperature structure and mean-state ASBW spatial pattern resemble observations, although there is considerable spread across the models and a multi-model mean warm bias. The multi-model mean projects an average ASBW warming of 0.36 degrees C (interdecile range 0.07 degrees C-0.60 degrees C) under SSP245 and 0.62 degrees C (interdecile range 0.16 degrees C-0.95 degrees C) under SSP585 by 2100, emphasizing the influence future emissions have on shelf water warming around Antarctica. Changes in the transport of Circumpolar Deep Water onto the shelf associated with changes in the Southern Annular Mode, as well as Circumpolar Deep Water warming, are predicted to conspire to warm ASBW in the future.
引用
收藏
页数:15
相关论文
共 82 条
  • [1] Ocean variability contributing to basal melt rate near the ice front of Ross Ice Shelf, Antarctica
    Arzeno, Isabella B.
    Beardsley, Robert C.
    Limeburner, Richard
    Owens, Breck
    Padman, Laurie
    Springer, Scott R.
    Stewart, Craig L.
    Williams, Michael J. M.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2014, 119 (07) : 4214 - 4233
  • [2] Variability of Circumpolar Deep Water transport onto the Amundsen Sea continental shelf through a shelf break trough
    Assmann, K. M.
    Jenkins, A.
    Shoosmith, D. R.
    Walker, D. P.
    Jacobs, S. S.
    Nicholls, K. W.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2013, 118 (12) : 6603 - 6620
  • [3] Representation of Southern Ocean Properties across Coupled Model Intercomparison Project Generations: CMIP3 to CMIP6
    Beadling, R. L.
    Russell, J. L.
    Stouffer, R. J.
    Mazloff, M.
    Talley, L. D.
    Goodman, P. J.
    Sallee, J. B.
    Hewitt, H. T.
    Hyder, P.
    Pandde, Amarjiit
    [J]. JOURNAL OF CLIMATE, 2020, 33 (15) : 6555 - 6581
  • [4] The response of the Antarctic Circumpolar Current to recent climate change
    Boening, C. W.
    Dispert, A.
    Visbeck, M.
    Rintoul, S. R.
    Schwarzkopf, F. U.
    [J]. NATURE GEOSCIENCE, 2008, 1 (12) : 864 - 869
  • [5] Boucher Olivier, 2018, WDCC, V20191018, DOI 10.22033/ESGF/CMIP6.5195
  • [6] Improvements in Circumpolar Southern Hemisphere Extratropical Atmospheric Circulation in CMIP6 Compared to CMIP5
    Bracegirdle, T. J.
    Holmes, C. R.
    Hosking, J. S.
    Marshall, G. J.
    Osman, M.
    Patterson, M.
    Rackow, T.
    [J]. EARTH AND SPACE SCIENCE, 2020, 7 (06)
  • [7] Change in future climate due to Antarctic meltwater
    Bronselaer, Ben
    Winton, Michael
    Griffies, Stephen M.
    Hurlin, William J.
    Rodgers, Keith B.
    Sergienko, Olga V.
    Stouffer, Ronald J.
    Russell, Joellen L.
    [J]. NATURE, 2018, 564 (7734) : 53 - +
  • [8] Cao J., 2019, NUIST NESMV3 MODEL O, DOI [10.22033/ESGF/CMIP6.8769, DOI 10.22033/ESGF/CMIP6.8769]
  • [9] Ocean forcing of glacier retreat in the western Antarctic Peninsula
    Cook, A. J.
    Holland, P. R.
    Meredith, M. P.
    Murray, T.
    Luckman, A.
    Vaughan, D. G.
    [J]. SCIENCE, 2016, 353 (6296) : 283 - 286
  • [10] Danabasoglu G., 2019, **DATA OBJECT**, DOI 10.22033/ESGF/CMIP6.7627