Emergent Constraints in Climate Projections: A Case Study of Changes in High-Latitude Temperature Variability

被引:27
作者
Borodina, Aleksandra [1 ]
Fischer, Erich M. [1 ]
Knutti, Reto [1 ]
机构
[1] Swiss Fed Inst Technol, Inst Atmospher & Climate Sci, Zurich, Switzerland
基金
欧盟地平线“2020”;
关键词
SEA-ICE LOSS; OBSERVATIONAL CONSTRAINTS; ARCTIC AMPLIFICATION; PRECIPITATION EXTREMES; INTERNAL VARIABILITY; VERTICAL STRUCTURE; FUTURE CHANGES; SENSITIVITY; CIRCULATION; MODELS;
D O I
10.1175/JCLI-D-16-0662.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Climate projections from phase 5 of the Coupled Model Intercomparison Project (CMIP5) ensemble show a decrease in interannual surface temperature variability over high latitudes with a large intermodel spread, in particular over the areas of sea ice retreat. Here relationships are found between the models' present-day performance in sea ice-related metrics and future changes in temperature variability. These relations, so-called emergent constraints, can produce ensembles of models calibrated with present-day observations with a narrower spread across their members than across the full ensemble. The underlying assumption is that models in better agreement with observations or reanalyses in a carefully selected metric probably have a more realistic representation of local processes, and therefore are more reliable for projections. Thus, the reliability of this method depends on the availability of high-quality observations or reanalyses. This work represents a step toward formalization of the emergent constraints framework, as so far there is no consensus on how the constraints should be best implemented. The authors quantify the reduction in spread from emerging constraints for various metrics and their combinations, different emission scenarios, and seasons. Some of the general features of emerging constraints are discussed, and how to effectively aggregate information across metrics and seasons to achieve the largest reduction in model spread. It is demonstrated, based on the case of temperature variability, that a robust constraint can be obtained by combining relevant metrics across all seasons. Such a constraint results in a strongly reduced spread across model projections, which is consistent with a process understanding of variability changes due to sea ice retreat.
引用
收藏
页码:3655 / 3670
页数:16
相关论文
共 102 条
[1]   Climate Model Dependence and the Ensemble Dependence Transformation of CMIP Projections [J].
Abramowitz, G. ;
Bishop, C. H. .
JOURNAL OF CLIMATE, 2015, 28 (06) :2332-2348
[2]   Vertical structure of recent arctic warming from observed data and reanalysis products [J].
Alexeev, Vladimir A. ;
Esau, Igor ;
Polyakov, Igor V. ;
Byam, Sarah J. ;
Sorokina, Svetlana .
CLIMATIC CHANGE, 2012, 111 (02) :215-239
[3]   Constraints on future changes in climate and the hydrologic cycle [J].
Allen, MR ;
Ingram, WJ .
NATURE, 2002, 419 (6903) :224-+
[4]   Extreme climatic events and their evolution under changing climatic conditions [J].
Beniston, M ;
Stephenson, DB .
GLOBAL AND PLANETARY CHANGE, 2004, 44 (1-4) :1-9
[5]   The changing seasonal climate in the Arctic [J].
Bintanja, R. ;
van der Linden, E. C. .
SCIENTIFIC REPORTS, 2013, 3
[6]   Arctic warming aloft is data set dependent [J].
Bitz, Cecilia M. ;
Fu, Qiang .
NATURE, 2008, 455 (7210) :E3-E4
[7]   The Transient and Equilibrium Climate Response to Rapid Summertime Sea Ice Loss in CCSM4 [J].
Blackport, Russell ;
Kushner, Paul J. .
JOURNAL OF CLIMATE, 2016, 29 (02) :401-417
[8]   September sea-ice cover in the Arctic Ocean projected to vanish by 2100 [J].
Boe, Julien ;
Hall, Alex ;
Qu, Xin .
NATURE GEOSCIENCE, 2009, 2 (05) :341-343
[9]   The importance of sea ice area biases in 21st century multimodel projections of Antarctic temperature and precipitation [J].
Bracegirdle, Thomas J. ;
Stephenson, David B. ;
Turner, John ;
Phillips, Tony .
GEOPHYSICAL RESEARCH LETTERS, 2015, 42 (24) :10832-10839
[10]   On the Robustness of Emergent Constraints Used in Multimodel Climate Change Projections of Arctic Warming [J].
Bracegirdle, Thomas J. ;
Stephenson, David B. .
JOURNAL OF CLIMATE, 2013, 26 (02) :669-678