The thermodynamic state of the Arctic atmosphere observed by AIRS: comparisons during the record minimum sea ice extents of 2007 and 2012

被引:36
作者
Devasthale, A. [1 ]
Sedlar, J. [1 ]
Koenigk, T. [2 ]
Fetzer, E. J. [3 ]
机构
[1] Swedish Meteorol & Hydrol Inst, Dept Res & Dev, Atmospher Remote Sensing Unit, S-60176 Norrkoping, Sweden
[2] Swedish Meteorol & Hydrol Inst, Rossby Ctr Climate Res, S-60176 Norrkoping, Sweden
[3] NASA, JPL CALTECH, Pasadena, CA USA
关键词
TEMPERATURE; SUMMER; RADIOSONDES; SATELLITES; RETREAT;
D O I
10.5194/acp-13-7441-2013
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The record sea ice minimum (SIM) extents observed during the summers of 2007 and 2012 in the Arctic are stark evidence of accelerated sea ice loss during the last decade. Improving our understanding of the Arctic atmosphere and accurate quantification of its characteristics becomes ever more crucial, not least to improve predictions of such extreme events in the future. In this context, the Atmospheric Infrared Sounder (AIRS) instrument onboard NASA's Aqua satellite provides crucial insights due to its ability to provide 3-D information on atmospheric thermodynamics. Here, we facilitate comparisons in the evolution of the thermodynamic state of the Arctic atmosphere during these two SIM events using a decade-long AIRS observational record (2003-2012). It is shown that the meteorological conditions during 2012 were not extreme, but three factors of preconditioning from winter through early summer played an important role in accelerating sea ice melt. First, the marginal sea ice zones along the central Eurasian and North Atlantic sectors remained warm throughout winter and early spring in 2012 preventing thicker ice build-up. Second, the circulation pattern favoured efficient sea ice transport out of the Arctic in the Atlantic sector during late spring and early summer in 2012 compared to 2007. Third, additional warming over the Canadian archipelago and southeast Beaufort Sea from May onward further contributed to accelerated sea ice melt. All these factors may have lead the already thin and declining sea ice cover to pass below the previous sea ice extent minimum of 2007. In sharp contrast to 2007, negative surface temperature anomalies and increased cloudiness were observed over the East Siberian and Chukchi seas in the summer of 2012. The results suggest that satellite-based monitoring of atmospheric preconditioning could be a critical source of information in predicting extreme sea ice melting events in the Arctic.
引用
收藏
页码:7441 / 7450
页数:10
相关论文
共 41 条
[1]  
Cavalieri D.J., 1996, SEA ICE CONCENTRATIO
[2]   Improving weather forecasting and providing new data on greenhouse gases [J].
Chahine, Moustafa T. ;
Pagano, Thomas S. ;
Aumann, Hartmut H. ;
Atlas, Robert ;
Barnet, Christopher ;
Blaisdell, John ;
Chen, Luke ;
Divakarla, Murty ;
Fetzer, Eric J. ;
Goldberg, Mitch ;
Gautier, Catherine ;
Granger, Stephanie ;
Hannon, Scott ;
Irion, Fredrick W. ;
Kakar, Ramesh ;
Kalnay, Eugenia ;
Lambrigtsen, Bjorn H. ;
Lee, Sung-Yung ;
Le Marshall, John ;
McMillan, W. Wallace ;
McMillin, Larry ;
Olsen, Edward T. ;
Revercomb, Henry ;
Rosenkranz, Philip ;
Smith, William L. ;
Staelin, Did ;
Strow, L. Larrabee ;
Susskind, Joel ;
Tobin, David ;
Wolf, Walter ;
Zhou, Lihang .
BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2006, 87 (07) :911-+
[3]   Large Decadal Decline of the Arctic Multiyear Ice Cover [J].
Comiso, Josefino C. .
JOURNAL OF CLIMATE, 2012, 25 (04) :1176-1193
[4]   Evolution of Arctic sea ice concentration trends and the role of atmospheric circulation forcing, 1979-2007 [J].
Deser, Clara ;
Teng, Haiyan .
GEOPHYSICAL RESEARCH LETTERS, 2008, 35 (02)
[5]   Influence of the Arctic Oscillation on the vertical distribution of clouds as observed by the A-Train constellation of satellites [J].
Devasthale, A. ;
Tjernstrom, M. ;
Caian, M. ;
Thomas, M. A. ;
Kahn, B. H. ;
Fetzer, E. J. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2012, 12 (21) :10535-10544
[6]   Characteristics of water-vapour inversions observed over the Arctic by Atmospheric Infrared Sounder (AIRS) and radiosondes [J].
Devasthale, A. ;
Sedlar, J. ;
Tjernstrom, M. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (18) :9813-9823
[7]   Quantifying the clear-sky temperature inversion frequency and strength over the Arctic Ocean during summer and winter seasons from AIRS profiles [J].
Devasthale, A. ;
Willen, U. ;
Karlsson, K. -G. ;
Jones, C. G. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2010, 10 (12) :5565-5572
[8]   Validation of Atmospheric Infrared Sounder temperature and water vapor retrievals with matched radiosonde measurements and forecasts [J].
Divakarla, MG ;
Barnet, CD ;
Goldberg, MD ;
McMillin, LM ;
Maddy, E ;
Wolf, W ;
Zhou, LH ;
Liu, XP .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D9)
[9]   Preface to special section: Validation of Atmospheric Infrared Sounder Observations [J].
Fetzer, Eric J. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D9)
[10]   Relative humidity over Antarctica from radiosondes, satellites, and a general circulation model [J].
Gettelman, A ;
Walden, VP ;
Miloshevich, LM ;
Roth, WL ;
Halter, B .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D9)