Modelling the impact of ocean warming on melting and water masses of ice shelves in the Eastern Weddell Sea

被引:0
|
作者
Malte Thoma
Klaus Grosfeld
Keith Makinson
Manfred A. Lange
机构
[1] Bayerische Akademie der Wissenschaften,Energy, Environment and Water Research Center (EEWRC)
[2] Kommission für Glaziologie,undefined
[3] Alfred Wegener Institute for Polar and Marine Research (AWI),undefined
[4] British Antarctic Survey (BAS),undefined
[5] The Cyprus Institute,undefined
来源
Ocean Dynamics | 2010年 / 60卷
关键词
Weddell sea; Ocean warming; Numerical ocean modelling; Ice-ocean interaction; Brunt ice shelf; Riiser–Larsen ice shelf; Antarctica;
D O I
暂无
中图分类号
学科分类号
摘要
The Eastern Weddell Ice Shelves (EWIS) are believed to modify the water masses of the coastal current and thus preconditions the water mass formation in the southern and western Weddell Sea. We apply various ocean warming scenarios to investigate the impact on the temperature–salinity distribution and the sub-ice shelf melting in the Eastern Weddell Sea. In our numerical experiments, the warming is imposed homogeneously along the open inflow boundaries of the model domain, leading to a warming of the warm deep water (WDW) further downstream. Our modelling results indicate a weak quadratic dependence of the melt rate at the ice shelf base on the imposed amount of warming, which is consistent with earlier studies. The total melt rate has a strong dependence on the applied ocean warming depth. If the warming is restricted to the upper ocean (above 1,000  m), the water column (aside from the mixed surface layer) in the vicinity of the ice shelves stabilises. Hence, reduced vertical mixing will reduce the potential of Antarctic Bottom Water formation further downstream with consequences on the global thermohaline circulation. If the warming extends to the abyss, the WDW core moves significantly closer to the continental shelf break. This sharpens the Antarctic Slope Front and leads to a reduced density stratification. In contrast to the narrow shelf bathymetry in the EWIS region, a wider continental shelf (like in the southern Weddell Sea) partly protects ice shelves from remote ocean warming. Hence, the freshwater production rate of, e.g., the Filchner–Ronne Ice Shelf increases much less compared with the EWIS for identical warming scenarios. Our study therefore indicates that the ice-ocean interaction has a significant impact on the temperature-salinity distribution and the water column stability in the vicinity of ice shelves located along a narrow continental shelf. The effects of ocean warming and the impact of increased freshwater fluxes on the circulation are of the same order of magnitude and superimposed. Therefore, a consideration of this interaction in large-scale climate studies is essential.
引用
收藏
页码:479 / 489
页数:10
相关论文
共 50 条
  • [1] Modelling the impact of ocean warming on melting and water masses of ice shelves in the Eastern Weddell Sea
    Thoma, Malte
    Grosfeld, Klaus
    Makinson, Keith
    Lange, Manfred A.
    OCEAN DYNAMICS, 2010, 60 (03) : 479 - 489
  • [2] Impact of the Eastern Weddell Ice Shelves on water masses in the Eastern Weddell Sea
    Thoma, Malte
    Grosfeld, Klaus
    Lange, Manfred A.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2006, 111 (C12)
  • [3] FRIS Revisited in 2018: On the Circulation and Water Masses at the Filchner and Ronne Ice Shelves in the Southern Weddell Sea
    Janout, Markus A.
    Hellmer, Hartmut H.
    Hattermann, Tore
    Huhn, Oliver
    Sueltenfuss, Juergen
    Osterhus, Svein
    Stulic, Lukrecia
    Ryan, Svenja
    Schroeder, Michael
    Kanzow, Torsten
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2021, 126 (06)
  • [4] Wind-driven spreading of fresh surface water beneath ice shelves in the Eastern Weddell Sea
    Zhou, Q.
    Hattermann, T.
    Nost, O. A.
    Biuw, M.
    Kovacs, K. M.
    Lydersen, C.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2014, 119 (06) : 3818 - 3833
  • [5] Ocean circulation and sea-ice thinning induced by melting ice shelves in the Amundsen Sea
    Jourdain, Nicolas C.
    Mathiot, Pierre
    Merino, Nacho
    Durand, Gael
    Le Sommer, Julien
    Spence, Paul
    Dutrieux, Pierre
    Madec, Gurvan
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2017, 122 (03) : 2550 - 2573
  • [6] WATER MASSES OF WEDDELL SEA
    HUFFORD, GL
    SEABROOK.JM
    ANTARCTIC JOURNAL OF THE UNITED STATES, 1970, 5 (01): : 13 - +
  • [7] SEA ICE RIDGING IN THE EASTERN WEDDELL SEA
    LYTLE, VI
    ACKLEY, SF
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1991, 96 (C10) : 18411 - 18416
  • [8] BACTERIA IN SEA-ICE AND UNDERLYING WATER OF THE EASTERN WEDDELL SEA IN MIDWINTER
    HELMKE, E
    WEYLAND, H
    MARINE ECOLOGY PROGRESS SERIES, 1995, 117 (1-3) : 269 - 287
  • [9] Sea ice growth in the eastern Weddell Sea in winter
    Kottmeier, C
    Frey, K
    Hasel, M
    Eisen, O
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2003, 108 (C4)
  • [10] Effects of ocean acidification, warming and melting of sea ice on aragonite saturation of the Canada Basin surface water
    Yamamoto-Kawai, M.
    McLaughlin, F. A.
    Carmack, E. C.
    GEOPHYSICAL RESEARCH LETTERS, 2011, 38