Evidence linking Arctic amplification to extreme weather in mid-latitudes

被引:1267
作者
Francis, Jennifer A. [1 ]
Vavrus, Stephen J. [2 ]
机构
[1] Rutgers State Univ, Inst Marine & Coastal Sci, New Brunswick, NJ 08901 USA
[2] Univ Wisconsin, Ctr Climat Res, Madison, WI 53706 USA
关键词
SEA-ICE; ATMOSPHERIC RESPONSE;
D O I
10.1029/2012GL051000
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Arctic amplification (AA) - the observed enhanced warming in high northern latitudes relative to the northern hemisphere - is evident in lower-tropospheric temperatures and in 1000-to-500 hPa thicknesses. Daily fields of 500 hPa heights from the National Centers for Environmental Prediction Reanalysis are analyzed over N. America and the N. Atlantic to assess changes in north-south (Rossby) wave characteristics associated with AA and the relaxation of poleward thickness gradients. Two effects are identified that each contribute to a slower eastward progression of Rossby waves in the upper-level flow: 1) weakened zonal winds, and 2) increased wave amplitude. These effects are particularly evident in autumn and winter consistent with sea-ice loss, but are also apparent in summer, possibly related to earlier snow melt on high-latitude land. Slower progression of upper-level waves would cause associated weather patterns in mid-latitudes to be more persistent, which may lead to an increased probability of extreme weather events that result from prolonged conditions, such as drought, flooding, cold spells, and heat waves. Citation: Francis, J. A., and S. J. Vavrus (2012), Evidence linking Arctic amplification to extreme weather in mid-latitudes, Geophys. Res. Lett., 39, L06801, doi:10.1029/2012GL051000.
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页数:6
相关论文
共 30 条
[1]   The Atmospheric Response to Projected Terrestrial Snow Changes in the Late Twenty-First Century [J].
Alexander, Michael A. ;
Tomas, Robert ;
Deser, Clara ;
Lawrence, David M. .
JOURNAL OF CLIMATE, 2010, 23 (23) :6430-6437
[2]   Polar amplification of surface warming on an aquaplanet in "ghost forcing" experiments without sea ice feedbacks [J].
Alexeev, VA ;
Langen, PL ;
Bates, JR .
CLIMATE DYNAMICS, 2005, 24 (7-8) :655-666
[3]  
[Anonymous], 1969, Atmospheric circulation systems: Their Structural and Physical Interpretation
[4]   Historical trends in the jet streams [J].
Archer, Cristina L. ;
Caldeira, Ken .
GEOPHYSICAL RESEARCH LETTERS, 2008, 35 (08)
[5]   A climatology of northern hemisphere blocking [J].
Barriopedro, D ;
García-Herrera, R ;
Lupo, AR ;
Hernández, E .
JOURNAL OF CLIMATE, 2006, 19 (06) :1042-1063
[6]   Atmospheric response to the extreme Arctic sea ice conditions in 2007 [J].
Bluthgen, Jonas ;
Gerdes, Ruediger ;
Werner, Martin .
GEOPHYSICAL RESEARCH LETTERS, 2012, 39
[7]   A tropospheric assessment of the ERA-40, NCEP, and JRA-25 global reanalyses in the polar regions [J].
Bromwich, David H. ;
Fogt, Ryan L. ;
Hodges, Kevin I. ;
Walsh, John E. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2007, 112 (D10)
[8]   A multi-data set analysis of variability and change in Arctic spring snow cover extent, 1967-2008 [J].
Brown, Ross ;
Derksen, Chris ;
Wang, Libo .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2010, 115
[9]   Role of Arctic sea ice in global atmospheric circulation: A review [J].
Budikova, Dagmar .
GLOBAL AND PLANETARY CHANGE, 2009, 68 (03) :149-163
[10]   The Seasonal Atmospheric Response to Projected Arctic Sea Ice Loss in the Late Twenty-First Century [J].
Deser, Clara ;
Tomas, Robert ;
Alexander, Michael ;
Lawrence, David .
JOURNAL OF CLIMATE, 2010, 23 (02) :333-351