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Long-Term Trend of Temperature Derived by Statistical Downscaling Based on EOF Analysis

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【作者】 范丽军符淙斌陈德亮

【Author】 FAN Lijun1,2,3,FU Congbin1,2,and CHEN Deliang31 Key Laboratory of Regional Climate–Environment Research for Temperate East Asia(RCE–TEA),Institute of Atmospheric Physics,Chinese Academy of Sciences,Beijing 100029,China2 College of Atmospheric Sciences,Lanzhou University,Lanzhou 730000,China3 Department of Earth Sciences,University of Gothenburg,Gteborg 40530,Sweden

【机构】 Key Laboratory of Regional Climate-Environment Research for Temperate East Asia(RCE-TEA),Institute of Atmospheric Physics,Chinese Academy of SciencesCollege of Atmospheric Sciences,Lanzhou UniversityDepartment of Earth Sciences,University of Gothenburg

【摘要】 This study analyzes the ability of statistical downscaling models in simulating the long-term trend of temperature and associated causes at 48 stations in northern China in January and July 1961-2006.Thestatistical downscaling models are established through multiple stepwise regressions of predictor principal components(PCs).The predictors in this study include temperature at 850 hPa(T850),and the combination of geopotential height and temperature at 850 hPa(H850+T850).For the combined predictors,Empirical Orthogonal Function(EOF)analysis of the two combined fields is conducted.The modeling results fromHadCM3 and ECHAM5 under 20C3M and SERS A1B scenarios are applied to the statistical downscaling models to construct local present and future climate change scenarios for each station,during which the projected EOF analysis and the common EOF analysis are utilized to derive EOFs and PCs from the two general circulation models(GCMs).The results show that(1)the trend of temperature in July is associated with the first EOF pattern of the two combined fields,not with the EOF pattern of the regional warming;(2)although HadCM3 and ECHAM5 have simulated a false long-term trend of temperature,the statistical downscaling method is able to well reproduce a correct long-term trend of temperature in northern Chinadue to the successful simulation of the trend of main PCs of the GCM predictors;(3)when the two-field combination and the projected EOF analysis are used,temperature change scenarios have a similar season alvariation to the observed one;and(4)compared with the results of the common EOF analysis,those of the projected EOF analysis have been much more strongly determined by the observed large-scale atmospheric circulation patterns.

【Abstract】 This study analyzes the ability of statistical downscaling models in simulating the long-term trend of temperature and associated causes at 48 stations in northern China in January and July 1961-2006.Thestatistical downscaling models are established through multiple stepwise regressions of predictor principal components(PCs).The predictors in this study include temperature at 850 hPa(T850),and the combination of geopotential height and temperature at 850 hPa(H850+T850).For the combined predictors,Empirical Orthogonal Function(EOF)analysis of the two combined fields is conducted.The modeling results fromHadCM3 and ECHAM5 under 20C3M and SERS A1B scenarios are applied to the statistical downscaling models to construct local present and future climate change scenarios for each station,during which the projected EOF analysis and the common EOF analysis are utilized to derive EOFs and PCs from the two general circulation models(GCMs).The results show that(1) the trend of temperature in July is associated with the first EOF pattern of the two combined fields,not with the EOF pattern of the regional warming;(2)although HadCM3 and ECHAM5 have simulated a false long-term trend of temperature,the statistical downscaling method is able to well reproduce a correct long-term trend of temperature in northern Chinadue to the successful simulation of the trend of main PCs of the GCM predictors;(3)when the two-field combination and the projected EOF analysis are used,temperature change scenarios have a similar season alvariation to the observed one;and(4)compared with the results of the common EOF analysis,those of the projected EOF analysis have been much more strongly determined by the observed large-scale atmospheric circulation patterns.

【基金】 Supported by the National Natural Science Foundation of China(40705030);Knowledge Innovation Project(KZCX2-EW-202);Strategic Priority Research Program(XDA05090103)of the Chinese Academy of Sciences
  • 【文献出处】 Acta Meteorologica Sinica ,气象学报(英文版) , 编辑部邮箱 ,2011年03期
  • 【分类号】P467
  • 【被引频次】6
  • 【下载频次】151
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