The Respective Roles of Ocean Heat Transport and Surface Heat Fluxes in Driving Arctic Ocean Warming and Sea Ice Decline

被引:5
作者
Oldenburg, Dylan [1 ]
Kwon, Young-Oh [1 ]
Frankignoul, Claude [1 ,2 ]
Danabasoglu, Gokhan [3 ]
Yeager, Stephen [3 ]
Kimc, Who M. [3 ]
机构
[1] Woods Hole Oceanog Inst, Falmouth, MA 02543 USA
[2] Sorbonne Univ, LOCEAN, IPSL, Paris, France
[3] Natl Sci Fdn, Natl Ctr Atmospher Res, Boulder, CO USA
基金
美国国家科学基金会;
关键词
Arctic; Sea ice; Climate; Climate change; Climate models; Oceanic variability; ATLANTIC WATER; CLIMATE-CHANGE; MODEL; CIRCULATION; VARIABILITY; MECHANISMS; TEMPERATURE; FEEDBACK; INFLOW; IMPACT;
D O I
10.1175/JCLI-D-23-0399.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Arctic Ocean warming and sea ice loss are closely linked to increased ocean heat transport (OHT) into the Arctic and changes in surface heat fluxes. To quantitatively assess their respective roles, we use the 100-member Community Earth System Model, version 2 (CESM2), Large Ensemble over the 1920-2100 period. We first examine the Arctic Ocean warming in a heat budget framework by calculating the contributions from heat exchanges with atmosphere and sea ice and OHT across the Arctic Ocean gateways. Then we quantify how much anomalous heat from the ocean directly translates to sea ice loss and how much is lost to the atmosphere. We find that Arctic Ocean warming is driven primarily by increased OHT through the Barents Sea Opening, with additional contributions from the Fram Strait and Bering Strait OHTs. These OHT changes are driven mainly by warmer inflowing water rather than changes in volume transports across the gateways. The Arctic Ocean warming driven by OHT is partially damped by increased heat loss through the sea surface. Although absorbed shortwave radiation increases due to reduced surface albedo, this increase is compensated by increasing upwelling longwave radiation and latent heat loss. We also explicitly calculate the contributions of ocean-ice and atmosphere-ice heat fluxes to sea ice heat budget changes. Throughout the entire twentieth century as well as the early twenty-first century, the atmosphere is the main contributor to ice heat gain in summer, though the ocean's role is not negligible. Over time, the ocean progressively becomes the main heat source for the ice as the ocean warms.
引用
收藏
页码:1431 / 1448
页数:18
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共 80 条
  • [1] Warming in the Nordic Seas, North Atlantic storms and thinning Arctic sea ice
    Alexeev, Vladimir A.
    Walsh, John E.
    Ivanov, Vladimir V.
    Semenov, Vladimir A.
    Smirnov, Alexander V.
    [J]. ENVIRONMENTAL RESEARCH LETTERS, 2017, 12 (08):
  • [2] Quantifying the Influence of Atlantic Heat on Barents Sea Ice Variability and Retreat
    Arthun, M.
    Eldevik, T.
    Smedsrud, L. H.
    Skagseth, O.
    Ingvaldsen, R. B.
    [J]. JOURNAL OF CLIMATE, 2012, 25 (13) : 4736 - 4743
  • [3] Mechanisms Underlying Recent Arctic Atlantification
    Asbjornsen, Helene
    Arthun, Marius
    Skagseth, Oystein
    Eldevik, Tor
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (15)
  • [4] The Role of Ocean Heat Transport in Rapid Sea Ice Declines in the Community Earth System Model Large Ensemble
    Auclair, Gabriel
    Tremblay, L. Bruno
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2018, 123 (12) : 8941 - 8957
  • [5] A Synthesis of Exchanges Through the Main Oceanic Gateways to the Arctic Ocean
    Beszczynska-Moeller, Agnieszka
    Woodgate, Rebecca A.
    Lee, Craig
    Melling, Humfrey
    Karcher, Michael
    [J]. OCEANOGRAPHY, 2011, 24 (03) : 82 - 99
  • [6] Minimal influence of reduced Arctic sea ice on coincident cold winters in mid-latitudes
    Blackport, Russell
    Screen, James A.
    van der Wiel, Karin
    Bintanja, Richard
    [J]. NATURE CLIMATE CHANGE, 2019, 9 (09) : 697 - +
  • [7] Dark Warming
    Burt, Melissa A.
    Randall, David A.
    Branson, Mark D.
    [J]. JOURNAL OF CLIMATE, 2016, 29 (02) : 705 - 719
  • [8] Quantifying the role of ocean coupling in Arctic amplification and sea-ice loss over the 21st century
    Chemke, Rei
    Polvani, Lorenzo M.
    Kay, Jennifer E.
    Orbe, Clara
    [J]. NPJ CLIMATE AND ATMOSPHERIC SCIENCE, 2021, 4 (01)
  • [9] Annual Mean Arctic Amplification 1970-2020: Observed and Simulated by CMIP6 Climate Models
    Chylek, Petr
    Folland, Chris
    Klett, James D.
    Wang, Muyin
    Hengartner, Nick
    Lesins, Glen
    Dubey, Manvendra K.
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2022, 49 (13)
  • [10] The Community Earth System Model Version 2 (CESM2)
    Danabasoglu, G.
    Lamarque, J. -F.
    Bacmeister, J.
    Bailey, D. A.
    DuVivier, A. K.
    Edwards, J.
    Emmons, L. K.
    Fasullo, J.
    Garcia, R.
    Gettelman, A.
    Hannay, C.
    Holland, M. M.
    Large, W. G.
    Lauritzen, P. H.
    Lawrence, D. M.
    Lenaerts, J. T. M.
    Lindsay, K.
    Lipscomb, W. H.
    Mills, M. J.
    Neale, R.
    Oleson, K. W.
    Otto-Bliesner, B.
    Phillips, A. S.
    Sacks, W.
    Tilmes, S.
    Van Kampenhout, L.
    Vertenstein, M.
    Bertini, A.
    Dennis, J.
    Deser, C.
    Fischer, C.
    Fox-Kemper, B.
    Kay, J. E.
    Kinnison, D.
    Kushner, P. J.
    Larson, V. E.
    Long, M. C.
    Mickelson, S.
    Moore, J. K.
    Nienhouse, E.
    Polvani, L.
    Rasch, P. J.
    Strand, W. G.
    [J]. JOURNAL OF ADVANCES IN MODELING EARTH SYSTEMS, 2020, 12 (02)