Differing roles of North Atlantic oceanic and atmospheric transports in the winter Eurasian Arctic sea-ice interannual-to-decadal variability

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作者
Jiaqi Shi
Binhe Luo
Dehai Luo
Yao Yao
Tingting Gong
Yimin Liu
机构
[1] Chinese Academy of Sciences and University of Chinese Academy of Sciences,Key Laboratory of Regional Climate
[2] Beijing Normal University,Environment for Temperate East Asia, Institute of Atmospheric Physics
[3] Chinese Academy of Sciences,State Key Laboratory of Earth Surface Processes and Resource Ecology
[4] Pilot National Laboratory for Marine Science and Technology,CAS Key Laboratory of Ocean Circulation and Waves, Institute of Oceanology
[5] Chinese Academy of Science,LASG, Institute of Atmospheric Physics
[6] University of Chinese Academy of Sciences,undefined
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npj Climate and Atmospheric Science | / 7卷
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摘要
In recent decades, winter Arctic sea-ice concentration (SIC) has experienced a most prominent decline over Barents-Kara Seas (BKS). However, what regulates the time scale and spatial structure of the SIC variability over the Eurasian Arctic is unclear. Here, we find that the SIC variability over the Eurasian Arctic exhibits two major modes: decadal dipole mode with antiphase variation between the BKS and East Greenland (EG), and interannual monopole mode with in-phase variation between the BKS and EG. This decadal mode mainly results from interdecadal changes in ocean heat transports (OHTs) through Barents Sea Opening (BSO) and EG, lagging the Atlantic Multidecadal Oscillation by 7–16 years. The positive SIC dipole mode with a decrease over the BKS and an increase over the EG is also tied to the negative Arctic Oscillation comprised of Ural blocking and the negative North Atlantic Oscillation (NAO). However, the SIC loss of the interannual monopole mode mainly stems from the positive Arctic dipole comprised of Ural blocking and positive NAO through interannual changes in the BSO OHT and atmospheric moisture or heat transport. We further highlight that interannual atmospheric transports and BSO OHT associated with the Arctic dipole contribute to ~66% and ~34% of the interannual variability of the Eurasian Arctic SIC during 1960-2017, respectively. On decadal timescales, the relative contributions of atmospheric transports associated with Arctic Oscillation and OHT to the Eurasian Arctic SIC variability are ~19% and ~81%, respectively. Especially, the contribution of decadal atmospheric transports is significantly intensified during 2000–2017.
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[1]  
Comiso JC(2006)Abrupt decline in the Arctic winter sea ice cover Geophys. Res. Lett. 33 L18504-1536
[2]  
Comiso JC(2008)Accelerated decline in the Arctic Sea ice cover Geophys. Res. Lett. 35 L01703-1337
[3]  
Parkinson CL(2007)Perspectives on the Arctic’s shrinking sea-ice cover Science 315 1533-63
[4]  
Gersten R(2010)The central role of diminishing sea ice in recent Arctic temperature amplification Nature 464 1334-637
[5]  
Stock L(2019)Arctic amplification is caused by sea-ice loss under increasing CO Nat. Commun. 10 L06801-873
[6]  
Serreze MC(2012)Evidence linking Arctic amplification to extreme weather in mid-latitudes Geophys. Res. Lett. 39 52-249
[7]  
Holland MM(2014)Intensified warming of the Arctic: causes and impacts on middle latitudes Glob. Planet. Change 117 627-999
[8]  
Stroeve J(2014)Recent Arctic amplification and extreme mid-latitude weather Nat. Geosci. 7 869-62
[9]  
Screen JA(2014)Robust Arctic sea-ice influence on the frequent Eurasian cold winters in past decades Nat. Geosci. 7 238-889
[10]  
Simmonds I(2018)The influence of Arctic amplification on mid-latitude weather and climate Curr. Clim. Chang. Rep. 4 992-20856