Linkage between autumn sea ice loss and ensuing spring Eurasian temperature

被引:22
作者
Ding, Shuoyi [1 ,2 ,3 ,4 ]
Wu, Bingyi [1 ,2 ,3 ,4 ]
机构
[1] Fudan Univ, Dept Atmospher & Ocean Sci, Shanghai 200438, Peoples R China
[2] Fudan Univ, Inst Atmospher Sci, Shanghai 200438, Peoples R China
[3] Fudan Univ, CMA FDU Joint Lab Marine Meteorol, Shanghai 200438, Peoples R China
[4] CMA FDU Joint Lab Marine Meteorol, Shanghai 200438, Peoples R China
基金
中国国家自然科学基金; 美国国家科学基金会;
关键词
Sea ice loss; Spring northern Eurasian cooling; CAM4 sensitive experiment; SURFACE AIR-TEMPERATURE; NORTHERN-HEMISPHERE WINTER; WAVE-ACTIVITY FLUX; ATMOSPHERIC CIRCULATION; ARCTIC OSCILLATION; ATLANTIC SST; COLD WINTERS; ANOMALIES; CLIMATE; IMPACT;
D O I
10.1007/s00382-021-05839-0
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
This study investigated the relationship between East Siberian-Chukchi-Beaufort (EsCB) sea ice concentration (SIC) anomaly in the early autumn (September-October, SO) and northern Eurasian surface temperature (Ts) variability in the early spring (March-April, MA). Results reveal that the early autumn sea ice decrease in the EsCB Seas excites an Arctic anticyclonic anomaly in the lower troposphere in the early spring, leading to cold anomalies over central Russia. The mean temperature over central Russia drops by nearly 0.8 degrees C, and the probability of cold anomalies increases by about 30% when the EsCB SIC reduces by one standard deviation. As responses to SO EsCB sea ice loss, atmospheric anomalies of the planetary wave 2 dominate the Arctic since October-November (ON) and are in phase with the climatological mean in the troposphere. This in-phase resonance produces much more wave energy propagating into the lower stratosphere and generates an EP flux convergence anomaly in December-January (DJ), then decelerating the zonal westerly winds. One month later (January-February, JF), the attenuation of the polar vortex reaches the peak and propagates downward into the troposphere in the next 2 months with two major branches. One branch is located in Greenland and induces a zonal wave train from the North Atlantic to eastern Eurasia. Another branch is to maintain the anticyclonic anomaly in low-level over the Arctic. This configuration of atmospheric circulation anomalies provides favorable conditions for the southward invasion of Arctic cold air and makes northern Eurasia experience a colder early spring.
引用
收藏
页码:2793 / 2810
页数:18
相关论文
共 50 条
  • [41] The Influence of North Atlantic Sea Surface Temperature and Sea Ice in the Barents Sea on Spring Mongolian Cyclone Activity
    Wang, Jing
    Chen, Lei
    Li, Shuanglin
    [J]. JOURNAL OF CLIMATE, 2025, 38 (04) : 877 - 889
  • [42] Enhanced impact of Arctic sea ice change during boreal autumn on the following spring Arctic oscillation since the mid-1990s
    Chen, Shangfeng
    Wu, Renguang
    Chen, Wen
    [J]. CLIMATE DYNAMICS, 2019, 53 (9-10) : 5607 - 5621
  • [43] On the association between spring Arctic sea ice concentration and Chinese summer rainfall
    Wu, Bingyi
    Zhang, Renhe
    Wang, Bin
    D'Arrigo, Rosanne
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2009, 36
  • [44] Twenty-five winters of unexpected Eurasian cooling unlikely due to Arctic sea-ice loss
    McCusker, Kelly E.
    Fyfe, John C.
    Sigmond, Michael
    [J]. NATURE GEOSCIENCE, 2016, 9 (11) : 838 - +
  • [45] Enhanced Relationship between Central Tropical Pacific Sea Surface Temperature and Eurasian Surface Air Temperature during Boreal Summers
    Ming, Jing
    Sun, Jianqi
    [J]. JOURNAL OF CLIMATE, 2021, 34 (14) : 5939 - 5953
  • [46] On the linkage between future Arctic sea ice retreat, Euro-Atlantic circulation regimes and temperature extremes over Europe
    Riebold, Johannes
    Richling, Andy
    Ulbrich, Uwe
    Rust, Henning
    Semmler, Tido
    Handorf, Doerthe
    [J]. WEATHER AND CLIMATE DYNAMICS, 2023, 4 (03): : 663 - 682
  • [47] The linkage between wintertime sea ice drift and atmospheric circulation in an Arctic ice-ocean coupled simulation
    Liang, Xi
    Bi, Haibo
    Liu, Chengyan
    Li, Xichen
    Wang, Dakui
    Zhao, Fu
    Tian, Zhongxiang
    Li, Ming
    Liu, Na
    [J]. OCEAN MODELLING, 2024, 189
  • [48] Joint influence of the North Atlantic sea surface temperature and the Barents sea-ice concentration on the dipole pattern of Eurasian surface air temperature in March
    Yuan, Yuan
    Li, Huixin
    Sun, Bo
    He, Shengping
    Li, Fei
    Li, Hua
    [J]. ATMOSPHERIC RESEARCH, 2024, 305
  • [49] Intermittency of Arctic-mid-latitude teleconnections: stratospheric pathway between autumn sea ice and the winter North Atlantic Oscillation
    Siew, Peter Yu Feng
    Li, Camille
    Sobolowski, Stefan Pieter
    King, Martin Peter
    [J]. WEATHER AND CLIMATE DYNAMICS, 2020, 1 (01): : 261 - 275
  • [50] Role of Atmosphere-Ocean-Ice Interaction in the Linkage between December Bering Sea Ice and Subsequent February Surface Air Temperature over North America
    Zhao, Jiazhen
    He, Shengping
    Wang, Huijun
    [J]. JOURNAL OF CLIMATE, 2023, 36 (06) : 1679 - 1696