Sea ice and the ocean mixed layer over the Antarctic shelf seas

被引:52
|
作者
Petty, A. A. [1 ]
Holland, P. R. [2 ]
Feltham, D. L. [3 ]
机构
[1] UCL, Dept Earth Sci, Ctr Polar Observat & Modelling, London WC1E 6BT, England
[2] British Antarctic Survey, Cambridge CB3 0ET, England
[3] Univ Reading, Dept Meteorol, Ctr Polar Observat & Modelling, Reading RG6 6BB, Berks, England
来源
CRYOSPHERE | 2014年 / 8卷 / 02期
关键词
CIRCUMPOLAR DEEP-WATER; BOTTOM WATER; ROSS-SEA; CONTINENTAL-SHELF; AMUNDSEN SEA; WEDDELL SEA; THERMODYNAMIC MODEL; COASTAL POLYNYAS; SURFACE WIND; WARM-WATER;
D O I
10.5194/tc-8-761-2014
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
An ocean mixed-layer model has been incorporated into the Los Alamos sea ice model CICE to investigate regional variations in the surface-driven formation of Antarctic shelf waters. This model captures well the expected sea ice thickness distribution, and produces deep (>500 m) mixed layers in the Weddell and Ross shelf seas each winter. This results in the complete destratification of the water column in deep southern coastal regions leading to high-salinity shelf water (HSSW) formation, and also in some shallower regions (no HSSW formation) of these seas. Shallower mixed layers are produced in the Amundsen and Bellingshausen seas. By deconstructing the surface processes driving the mixed-layer depth evolution, we show that the net salt flux from sea ice growth/melt dominates the evolution of the mixed layer in all regions, with a smaller contribution from the surface heat flux and a negligible input from wind stress. The Weddell and Ross shelf seas receive an annual surplus of mixing energy at the surface; the Amundsen shelf sea energy input in autumn/winter is balanced by energy extraction in spring/summer; and the Bellingshausen shelf sea experiences an annual surface energy deficit, through both a low energy input in autumn/winter and the highest energy loss in spring/summer. An analysis of the sea ice mass balance demonstrates the contrasting mean ice growth, melt and export in each region. The Weddell and Ross shelf seas have the highest annual ice growth, with a large fraction exported northwards each year, whereas the Bellingshausen shelf sea experiences the highest annual ice melt, driven by the advection of ice from the northeast. A linear regression analysis is performed to determine the link between the autumn/winter mixed-layer deepening and several atmospheric variables. The Weddell and Ross shelf seas show stronger spatial correlations (temporal mean - intra-regional variability) between the autumn/winter mixed-layer deepening and several atmospheric variables compared to the Amundsen and Bellingshausen. In contrast, the Amundsen and Bellingshausen shelf seas show stronger temporal correlations (shelf sea mean interannual variability) between the autumn/winter mixed-layer deepening and several atmospheric variables.
引用
收藏
页码:761 / 783
页数:23
相关论文
共 50 条
  • [1] Sea Ice-Ocean Feedbacks in the Antarctic Shelf Seas
    Frew, R. C.
    Feltham, D. L.
    Holland, P. R.
    Petty, A. A.
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2019, 49 (09) : 2423 - 2446
  • [2] Decadal Sea Ice Prediction in the West Antarctic Seas with Ocean and Sea Ice Initializations
    Morioka, Yushi
    Iovino, Doroteaciro
    Cipollone, Andrea
    Masina, Simona
    Behera, Swadhin K.
    COMMUNICATIONS EARTH & ENVIRONMENT, 2022, 3 (01):
  • [3] Decadal Sea Ice Prediction in the West Antarctic Seas with Ocean and Sea Ice Initializations
    Yushi Morioka
    Doroteaciro Iovino
    Andrea Cipollone
    Simona Masina
    Swadhin K. Behera
    Communications Earth & Environment, 3
  • [4] Antarctic ice shelf disintegration triggered by sea ice loss and ocean swell
    Massom, Robert A.
    Scambos, Theodore A.
    Bennetts, Luke G.
    Reid, Phillip
    Squire, Vernon A.
    Stammerjohn, Sharon E.
    NATURE, 2018, 558 (7710) : 383 - +
  • [5] Antarctic ice shelf disintegration triggered by sea ice loss and ocean swell
    Robert A. Massom
    Theodore A. Scambos
    Luke G. Bennetts
    Phillip Reid
    Vernon A. Squire
    Sharon E. Stammerjohn
    Nature, 2018, 558 : 383 - 389
  • [6] Impact of Antarctic ice shelf basal melting on sea ice and deep ocean properties
    Hellmer, HH
    GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (10) : L103071 - 4
  • [7] Enhanced wind mixing and deepened mixed layer in the Pacific Arctic shelf seas with low summer sea ice
    Wang, Yuanqi
    Feng, Zhixuan
    Lin, Peigen
    Song, Hongjun
    Zhang, Jicai
    Wu, Hui
    Jin, Haiyan
    Chen, Jianfang
    Qi, Di
    Grebmeier, Jacqueline M.
    NATURE COMMUNICATIONS, 2024, 15 (01)
  • [8] Amundsen and Bellingshausen Seas simulation with optimized ocean, sea ice, and thermodynamic ice shelf model parameters
    Nakayama, Y.
    Menemenlis, D.
    Schodlok, M.
    Rignot, E.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2017, 122 (08) : 6180 - 6195
  • [9] Quantifying predictability of sea ice around the Indian Antarctic stations using coupled ocean sea ice model with shelf ice
    Kumar, Anurag
    Dwivedi, Suneet
    Pandey, Avinash C.
    POLAR SCIENCE, 2018, 18 : 83 - 93
  • [10] Observed platelet ice distributions in Antarctic sea ice: An index for ocean-ice shelf heat flux
    Langhorne, P. J.
    Hughes, K. G.
    Gough, A. J.
    Smith, I. J.
    Williams, M. J. M.
    Robinson, N. J.
    Stevens, C. L.
    Rack, W.
    Price, D.
    Leonard, G. H.
    Mahoney, A. R.
    Haas, C.
    Haskell, T. G.
    GEOPHYSICAL RESEARCH LETTERS, 2015, 42 (13) : 5442 - 5451