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1.
利用夏季川渝地区30个台站降水和NCEP/NCAR 2.5°×2.5°的高度场、风场等再分析资料,通过CCA、相关、回归等分析方法,分析了近50年夏季东亚副热带高空西风急流与川渝地区降水的关系。结果表明,东亚副热带西风急流南北位置异常对川渝降水有重要影响。当西风急流轴线偏北(南)时,造成四川盆地西部降水偏多(少),盆地东部和川西高原降水偏少(多),夏季平均急流轴线指数对降水的预报指示意义要好于夏季各月。当西风急流轴线偏北(南)时,对应南亚高压东伸脊点偏西(东)、面积偏小(大),西太平洋副热带高压脊线偏北(南)、西伸脊点偏东(西)、面积偏小(大),这种高低层环流的异常配置造成了川渝地区夏季降水的变化。同时,西风急流轴线南北位置的年代际变化,是导致1965-1982年和1983-2006年四川盆地东部、川西高原降水由少转多、盆地西部由多转少的主要原因之一。  相似文献   

2.
华南6月降水异常及其与东亚—太平洋遥相关的关系   总被引:3,自引:0,他引:3  
利用1959~2010年共52年的大气环流和降水资料,我们分析了华南前汛期季风降水 (6月降水) 的变化特征,发现6月华南降水与同期EAP (East Asia-Pacific,东亚—太平洋) 遥相关型有显著的相关关系,两者之间的相关系数为0.35.EAP指数为正时,长江中下游以南的地区降水偏多,而长江以北和黄河之间的地区降水偏少.将华南6月降水分为与EAP相关的降水序列和与EAP独立的降水序列,比较了二者所对应环流异常的异同点.结果表明,与EAP相关的降水异常对应着EAP相关型的环流异常分布特征,降水为正异常时,850hPa风场从低纬度到高纬度呈现“反气旋、气旋、反气旋”的异常分布,湿的偏南风和干的偏北风在华南上空交汇,降水增多;而整个淮河流域上空为偏北风异常,导致南风带来的水汽输送减少,降水偏少,因此降水异常呈现偶极子分布.相比之下,与EAP独立的降水正异常对应的环流异常表现为热带西北太平洋上空的反气旋性环流异常,华南地区上空为显著的西南风异常,输送到华南地区的水汽增多,导致降水偏多.  相似文献   

3.
利用欧洲中期天气预报中心的ERA5再分析资料,分析中高纬度大尺度环流异常对2022年盛夏长江中下游地区大范围极端高温事件的影响。结果表明,此次极端高温异常主要受到东亚副热带异常反气旋和北部异常气旋的影响。该经向偶极型环流异常与北大西洋涛动(North Atlantic Oscillation,NAO)和英国-鄂霍次克海走廊型遥相关型(British-Okhotsk Corridor,BOC)密切相关。NAO正位相关联的副热带急流波列有利于副热带反气旋的形成。同时,正位相的BOC与丝绸之路遥相关耦合,有利于经向偶极型环流模态的形成。在该环流模态的影响下,对流层高层的南亚高压和西风急流明显增强且东伸,中低层西太平洋副热带高压增强西伸。异常高压控制下的下沉气流以及西风急流出口区右侧的下沉气流通过绝热下沉增温与晴空短波辐射增温,促进地表气温升高,进而引发极端高温异常。  相似文献   

4.
王晓芳  何金海  廉毅 《气象学报》2013,71(2):305-317
利用日本气象厅历史海温资料、NCEP/NCAR再分析资料、哈得来环流中心海表温度资料和降水资料,研究了1951—2010年中国东北地区夏季降水与前期西太平洋暖池(简称暖池)热含量异常的关系,并对可能影响途径进行了探讨。结果表明,中国东北地区夏季降水与前期暖池热含量有密切的负相关,前期10—11月暖池关键区(15.5°—20.5°N,125.5°—135.5°E)0—200 m热含量高(低)是预报中国东北地区夏季旱(涝)的一个很好的指标。前期暖池热含量异常激发的夏季东亚-太平洋型遥相关(EAP)和中纬度高层沿亚洲西风急流东传波列的存在,可能是影响中国东北地区夏季降水的主要原因。当前期10-11月暖池区热含量为负异常时,菲律宾反气旋异常持续存在,夏季东亚-太平洋遥相关型出现,导致西太平洋副热带高压西伸加强,中国东北地区局地异常低气压和鄂霍次克海阻塞高压形成。同时,高空存在沿西风急流传播的遥相关波列,使得中国东北地区局地异常低气压和西太平洋副热带高压在日本附近增强,有利于中国东北地区夏季降水偏多;反之亦然。  相似文献   

5.
我国华南3月份降水异常的可能影响因子分析   总被引:4,自引:3,他引:1  
利用1951~2005年华南地区3月份的降水资料、NOAA海温资料、Ni?o3.4指数和NCEP再分析资料,分析了华南3月份降水异常与同期环流场、全球海温场的关系,从环流和海温的角度揭示了华南3月份降水异常的可能原因。结果表明,当华南3月份降水偏多(少)时,在对流层中低层,北太平洋海区存在气旋(反气旋)性环流异常,西太平洋及南海海面上存在反气旋(气旋)性环流异常,这样的环流异常有利(不利)于东南暖湿气流与北方东部异常冷空气在华南地区形成水汽辐合,导致降水显著增多(减少)。进一步的分析表明,ENSO和北印度洋及南海附近海温是影响华南3月份降水异常的重要外强迫因子,ENSO对华南3月降水异常的影响是通过影响春季西太平洋副热带高压和低层风场异常实现的,而北印度洋及南海附近海温对华南3月降水异常的影响则是通过垂直环流场异常和低层风场以及西太平洋副热带高压异常来实现的。  相似文献   

6.
杨凯  胡田田  王澄海 《大气科学》2017,41(2):345-356
青藏高原冬、春积雪有着显著的南、北空间差异,本文利用通用地球系统模式(CESM)设计了增加高原南、北冬、春积雪的敏感性试验,结果表明:当高原南部冬、春积雪异常偏多,长江及其以北地区夏季降水偏多,华南大部分地区夏季降水偏少;而当高原北部冬、春积雪异常偏多,华北及东北地区夏季降水偏多,长江下游南部地区夏季降水偏少,雨带更偏北。青藏高原南、北部冬、春积雪异常影响中国东部夏季降水的物理机制的分析结果表明,高原不同区域(南部和北部)冬、春积雪异常引起的非绝热加热异常效应都可持续到夏季,且北部积雪异常持续时间更长。高原南部和北部积雪异常偏多均会减弱高原北侧上空大气的水平温度梯度,进而减弱高原北侧西风急流的位置及强度,进而影响下游出口区处急流的强度和位置,且高原北部积雪异常偏多的影响更大。当高原南部积雪异常偏多,急流出口区的西风急流加强且偏南;而高原北部积雪异常偏多,出口区的西风急流减弱且偏北。相应地,对流层中层500 hPa西太平洋副热带高压减弱,低层850 hPa异常反气旋环流,影响中国东部地区水汽输送,从而影响了中国东部地区夏季雨带的变化。当高原南部积雪异常偏多,异常反气旋性环流位于东海附近,有利于更多水汽输送至长江流域,华南水汽输送减少;当高原北部积雪异常偏多,异常反气旋性环流相对偏北,更有利于华北及东北水汽输送,雨带偏北。  相似文献   

7.
李辑  李菲  胡春丽  林蓉 《高原气象》2014,(4):1076-1085
利用1961 2010年辽宁省53个气象站逐日降水量和NCEP/NCAR全球再分析资料,对盛夏辽宁降水异常的大尺度环流特征进行了物理诊断分析,并对2010年盛夏主汛期辽宁降水异常偏多的环流特征进行系统研究。结果表明,副热带西风急流位置偏北偏强、西太平洋副热带高压脊线西伸北抬以及低空偏南急流带来的水汽和动力抬升作用,是造成2010年盛夏降水异常偏多的大尺度环流因子。  相似文献   

8.
淮河梅雨洪涝与西太平洋副热带高压季节推进异常   总被引:11,自引:4,他引:7  
基于台站观测和卫星观测资料及再分析数据集,本文研究了6月淮河洪涝发生时中国东部降雨型及与雨带异常相联系的环流特征、环流的季节推进异常及其机理.结果发现6月淮河流域洪涝与亚洲环流和中国东部降水联合模态的第二模态密切相关.该模态在我国东部降水表现为以长江为界北增南减的“梅雨偶极型”分布,对应的低层风场呈现出倾斜的以台湾为界,以南西太平洋是异常气旋环流,以北为反气旋环流,即西太平洋副热带高压偏北,淮河流域上存在异常西南风;同时阿拉伯海上是异常反气旋,印度上空西风偏强、降水显著偏多.这些特征是东亚和西太平洋季风区季节推进超前的反映,且与前期春季澳大利亚东北向海域海洋热含量异常偏高显著相关.该关键区海洋热含量变化是太平洋热含量变化第一模态——三极型变化的一部分,即当菲律宾以东的西太平洋和澳大利亚东北向海域海洋热含量增加,赤道中东太平洋热含量减少.该三极型海洋热含量异常从春到夏信号稳定,它激发正感热加热异常控制菲律宾以东到夏威夷以北的广大热带—副热带西太平洋地区,其北侧黑潮延伸区为负感热区.两者共同作用激发出局地反气旋在北、气旋在南,使对流层低层西太平洋副热带高压偏北.因此春季三极型海洋热含量通过影响对流层低层西太平洋副热带高压异常北移对东亚—西太平洋季节推进提前和6月淮河梅雨洪涝发生起重要作用,可作为季节预测的前期因子之一.  相似文献   

9.
亚洲夏季西风指数与中国夏季降水的关系   总被引:6,自引:4,他引:6  
对1958—2000年亚洲纬向风和我国160站夏季降水进行SVD分析,发现两者具有良好的耦合关系。根据分析结果定义了一个可以表征我国夏季降水的亚洲夏季西风指数(IASW)。西风指数高(低)年,长江中下游夏季降水偏少(多),华南、河套和东北地区降水偏多(少)。同时分析了高、低西风指数年的环流特征,发现当长江中下游夏季降水偏多而华南、河套和东北地区降水偏少时,500 hPa呈负EAP型,鄂霍茨克海和乌拉尔山有阻高建立,西太平洋副热带高压偏南,105°E越赤道气流偏弱,东亚夏季风偏弱,高纬的偏北气流和低纬的偏南气流在我国长江中下游地区汇合,梅雨锋加强,使得雨带在此维持。前期鄂霍茨克海区域平均位势高度以及前期1—3月西太平洋的热带对流活动可以作为预测夏季西风强弱的前兆信号。  相似文献   

10.
利用国家气象信息中心提供的1960~2015年中国753站汛期(4~9月)逐日降水资料,对华南地区汛期旱涝急转现象进行了分析,定义了一个旱涝急转评价指标,分析了旱涝急转事件的特点及其大气环流特征。结果表明:华南在56年汛期中共发生了17次旱涝急转事件,发生频率由1960年代的3次下降到1970年代、1980年代的1次,后迅速增加到1990年代的4次、21世纪初的8次。将其按急转时间分为春末初夏旱转涝事件和盛夏涝转旱事件。春末初夏旱转涝事件,旱期西太平洋副热带高压主体偏南,中国东部主要受干冷高压脊控制,华南低层负涡度发展伴随着辐散、下沉运动的加强和水汽输送的减弱,降水偏少;涝期西太平洋副热带高压北抬,孟加拉湾南支槽异常偏强,华南位于副热带高压西侧和南亚高压东南侧,低层正涡度发展伴随着辐合、上升运动和水汽输送的加强,降水偏多。盛夏涝转旱事件,涝期西太平洋副热带高压主体偏西,华南处于副热带高压西北侧和南亚高压东南侧,低层水汽输送、辐合和上升运动均加强,正涡度发展,降水增多;旱期西太平洋副热带高压显著北跳,南亚高压向东向北扩展至长江中下游地区,华南为西太平洋副热带高压和高空东风急流所控制,低层水汽输送减弱,辐散和下沉运动加强,负涡度发展,干旱少雨。  相似文献   

11.
北方雨季中国东部降水异常模态的环流特征及成因分析   总被引:2,自引:2,他引:0  
郭恒  张庆云 《大气科学》2016,40(5):946-964
根据1958~2011年中国东部(105°E以东)316站逐日降水资料及NCEP/NCAR逐日再分析资料,利用统计分析、物理量诊断等方法,探讨北方雨季(7月11日至8月31日)中国东部降水异常模态及同期、前期的大气环流特征。分析发现,北方雨季中国东部降水异常表现为三个相互独立的降水模态:第一模态为偏西型,当其时间系数为正(负)时,河套地区降水偏多(少),江淮流域上游降水偏少(多),南方大部降水偏多(少);第二模态为北方一致型,当其时间系数为正(负)时,北方降水一致偏多(少),长江流域降水偏少(多);第三模态为偏东型,当其时间系数为正(负)时,东北南部至长江中游降水偏多(少),华东沿海降水偏少(多)。研究发现,造成北方雨季三个降水异常模态的环流特征各不相同:偏西型降水主要受西亚高空副热带西风急流位置南北偏移影响;北方一致型降水主要由东亚-太平洋遥相关波列导致;偏东型降水主要与海陆气压异常对比造成的东亚夏季风变化有关。此外,三个模态与前期环流异常有密切联系。第一模态的正(负)异常由7月上旬200 hPa来自北大西洋的异常波列造成乌拉尔山位势高度负(正)异常和巴尔喀什湖以南位势高度正(负)异常引起。第二模态的正(负)异常与前期7月上旬200 hPa北大西洋上位势高度负(正)异常产生的沿中纬度(高纬度)路径向下游传播的波列有关。第三模态的正(负)异常由春季3月份低层蒙古上空异常的气旋(反气旋)持续至同期造成。  相似文献   

12.
On the interannual timescale, the meridional displacement of the East Asian upper-tropospheric jet stream (EAJS) is significantly associated with the rainfall anomalies in East Asia in summer. In this study, using the data from the National Centers for Environmental Prediction-Department of Energy (NCEP/DOE) reanalysis-2 from 1979 to 2002, the authors investigate the interannual variations of the EAJS‘s meridional displacement in summer and their associations with the variations of the South Asian high (SAH) and the western North Pacific subtropical high (WNPSH), which are dominant circulation features in the upper and lower troposhere, respectively. The result from an EOF analysis shows that the meridional displacement is the most remarkable feature of the interannual variations of the EAJS in each month of summer and in summer as a whole. A composite analysis indicates that the summer (June-July-August, JJA) EAJS index, which is intended to depict the interannual meridional displacement of the EAJS, is not appropriate because the anomalies of the zonal wind at 200 hPa (U200) in July and August only, rather than in June, significantly contribute to the summer EAJS index. Thus, the index for each month in summer is defined according to the location of the EAJS core in each month. Composite analyses based on the monthly indexes show that corresponding to the monthly equatorward displacement of the EAJS, the South Asian high (SAH) extends southeastward clearly in July and August, and the western North Pacific subtropical high (WNPSH) withdraws southward in June and August.  相似文献   

13.
马音  陈文  冯瑞权 《大气科学》2012,36(2):397-410
基于我国160站59年(1951~2009年)的月降水观测资料、美国气象环境预报中心和国家大气研究中心(NCEP/NCAR)提供的再分析资料和Hadley中心的海表温度(Sea Surface Temperature,简称SST)资料,对我国东部(100°E以东,15°N~40°N)梅雨期(6月和7月)降水的时空变化特...  相似文献   

14.
利用1979~2015年NCEP/NCAR发布的月平均全球再分析资料,分析了热带印度洋-西太平洋水汽输送异常对中国东部夏季降水的影响及其形成机理。研究结果表明:热带印度洋-西太平洋地区(10°S~30°N,60°~140°E)夏季异常水汽输送主要包括两个模态,他们可以解释总的水汽输送异常34%的方差。其中,第一模态(EOF1)表现为异常水汽沿反气旋从热带西太平洋经过南海及孟加拉湾输送到中国东部上空,对应南海、孟加拉湾水汽路径输送均偏多,此时西太平洋副热带高压显著偏强,异常水汽在长江中下游地区辐合并伴随显著上升运动,有利于长江中下游降水偏多;第二模态(EOF2)表现为异常水汽从热带印度洋沿阿拉伯海、印度半岛、中南半岛等呈反气旋式输送,华南上空相应出现气旋式水汽输送异常,并对应异常水汽辐合和上升运动,有利于华南降水偏多。就可能的外部成因而言,EOF1与ENSO关系密切,表现为前冬热带中东太平洋显著偏暖,夏季同期热带北印度洋、南海上空显著偏暖,造成西太平洋副热带高压显著偏强,异常水汽主要来源于热带西太平洋和南海;EOF2与同期热带印度洋偶极子(TIOD)异常有关,TIOD为正位相时热带印度洋上空出现异常东风,华南上空出现异常气旋并伴随水汽异常辐合,异常水汽主要来源于热带南印度洋。  相似文献   

15.
冬季东亚中纬度西风急流对我国气候的影响   总被引:26,自引:1,他引:26       下载免费PDF全文
利用1957—2001年欧洲中期数值天气预报中心再分析资料及地面台站观测资料,分析了冬季东亚西风急流与我国气候的关系。首先定义了冬季东亚西风急流强度指数(区域30°~35°N,127.5°~155°E冬季200 hPa纬向风u200平均值的标准化值)和切变指数(区域15°~25°N,100°~115°E与区域30°~40°N,100°~115°E的平均u200之差的标准化值),这两个指数能较好地反映冬季东亚西风急流的强度变化和位置的南北移动,二者相关系数为-0.48,通过99%信度检验。西风急流强度与亚洲和西太平洋大范围的大气环流有密切关系,而西风急流位置移动则与印度洋、中东太平洋的大气环流有密切关系,并分析了冬季急流强度指数和切变指数与我国温度和降水的关系。结果表明:当西风急流强度偏强时,西风急流位置偏北,此时在急流入口区左侧由于气流辐合造成低层气压上升,在出口区左侧则由于气流发生强烈辐散,引起低层气压下降,所以西伯利亚地区上空从对流层低层到中层高度值升高,北太平洋高度值降低,东西向气压差加大的形势,同时东亚大槽偏强,海陆气压差加大和东亚大槽偏强,导致冬季风强度偏强,引起我国从北到南的陆面降温,同时30°~40°N低层有下沉气流,使得华北、华中和长江中下游地区降水偏少;当西风急流强度偏弱时,西风急流位置偏南,整个东亚地区存在南风异常,东亚冬季风较弱,在25°N附近有上升气流,此时华南和内蒙古、华北降水偏多,内蒙古地表温度偏高。  相似文献   

16.
Extreme precipitation events in the upper Yangtze River Valley (YRV) have recently become an increasingly important focus in China because they often cause droughts and floods. Unfortunately, little is known about the climate processes responsible for these events. This paper investigates factors favorable to frequent extreme precipitation events in the upper YRV. Our results reveal that a weakened South China Sea summer monsoon trough, intensified Eurasian-Pacific blocking highs, an intensified South Asian High, a southward subtropical westerly jet and an intensified Western North Pacific Subtropical High (WNPSH) increase atmospheric instability and enhance the convergence of moisture over the upper YRV, which result in more extreme precipitation events. The snow depth over the eastern Tibetan Plateau (TP) in winter and sea surface temperature anomalies (SSTAs) over three key regions in summer are important external forcing factors in the atmospheric circulation anomalies. Deep snow on the Tibetan Plateau in winter can weaken the subsequent East Asian summer monsoon circulation above by increasing the soil moisture content in summer and weakening the land–sea thermal contrast over East Asia. The positive SSTA in the western North Pacific may affect southwestward extension of the WNPSH and the blocking high over northeastern Asia by arousing the East Asian-Pacific pattern. The positive SSTA in the North Atlantic can affect extreme precipitation event frequency in the upper YRV via a wave train pattern along the westerly jet between the North Atlantic and East Asia. A tripolar pattern from west to east over the Indian Ocean can strengthen moisture transport by enhancing Somali cross-equatorial flow.  相似文献   

17.
The regional characteristics of precipitation anomalies of total summer precipitation of June,July and August and individual monthly precipitation are analyzed by using the method of Varimax EOF and correlation analysis.The data set used is the precipitation of a 5°Lat.×5°Long.spatial uniform network over China in the period of 1959 to 1994.The analysis of total summer precipitation shows that the most significant regional characteristic is the existence of negative correlation in precipitation anomalies between the lower reaches of the Changjiang River and the Huaihe River Valley(the LRCH region) and the middle reaches of the Huanghe River Valley(the MRH region),and between the LRCH region and South China.The precipitation anomaly over the Sichuan Basin is negatively correlated with that over eastern part of Qinghai-Xizang Plateau and that over the LRCH region.The regional characteristics of summer precipitation anomalies in western China are that there exists negative correlation between the summer precipitation anomalies over the southern part of the central and eastern Qinghai-Xizang Plateau and that over its northern part.There also exists positive correlation between the southern part of the central and eastern Qinghai-Xizang Plateau and the eastern part of North China and the southern part of Northeast China.The above spatial correlation modes have significant periods of about 3 years and ten years.The analysis of the monthly precipitation shows that in June there exists positive correlation among the precipitation anomalies over the LRCH region,the eastern part of North China and Northeast China.In July,the precipitations in the MRH region and the LRCH region are negatively correlated.The regional characteristic of precipitation anomalies in August is very similar to that of the total summer precipitation anomalies.  相似文献   

18.
East Asian summer climate is strongly affected by extratropical circulation disturbances.In this study,impacts of four atmospheric teleconnections over Eurasia on East Asian summer rainfall are investigated using National Centers for Environmental Prediction/National Center for Atmospheric Research (NCEP/NCAR) reanalysis data and Climatic Research Unit (CRU) land precipitation data during 1979-2009.The four teleconnections include the Scandinavian (SCA),the Polar/Eurasian (PEU),the East Atlantic/Western Russian (EAWR),and the circumglobal teleconnection (CGT).Moreover,the related changes of lower-tropospheric circulation are explored,specifically,the low pressure over northern East Asia (NEAL) and the subtropical high over the western North Pacific (WNPSH).The results presented are in the positive phase.The PEU and SCA induce significant negative anomalies in North China rainfall (NCR),while the CGT induces significant positive anomalies.In the past three decades,the PEU and SCA explain more than 20% of the variance in NCR,twice that explained by the CGT,suggesting a more important role of the former two teleconnections in NCR variation than the latter one.Meanwhile,the PEU and SCA reduce rainfall in Northeast China and South Korea,respectively,and the CGT enhances rainfall in Japan.The rainfall responses are attributed to the SCA-induced northward shift of the NEAL,and PEU-induced northward shift and weakening of the NEAL,respectively.For the CGT,the dipole pattern of rainfall anomalies between North China and Japan is affected by both westward extension of the NEAL and northwestward expansion of the WNPSH.In addition,the EAWR leads to an increase of sporadic rainfall in South China as a result of the eastward retreat of the WNPSH.  相似文献   

19.
利用中国北方季风区46站盛夏降水观测资料,采用经验正交函数分解(EOF)、合成分析和相关分析等方法,将盛夏北方季风区划分为4类雨型:A型全区一致偏多、B型全区一致偏少、C型华北偏多东北偏少和D型华北偏少东北偏多,并对比分析了四类雨型同期大气环流和前期至同期海温演变特征的差异,以探讨其形成机制及前期预测信号.结果表明:四...  相似文献   

20.
《大气与海洋》2012,50(4):295-306
ABSTRACT

Summer precipitation in the northern China monsoon region (NCMR; 35°–55°N, 108°–135°E) shows significant intraseasonal variability. The early-summer (June) and late-summer (July–August) precipitation patterns show clear differences in their formation mechanisms and the systems that affect them. We used empirical orthogonal function (EOF) analysis to investigate the two leading modes of July–August precipitation over the NCMR and their associated atmospheric circulation anomalies using linear regression. The results show that the first (EOF1) and second (EOF2) modes correspond to a pan-NCMR precipitation variation pattern and a precipitation oscillation pattern between North China (NC) and Northeast China (NEC), respectively. These two modes account for 22.1% and 10.1% of the total variance, respectively. The associated principal components (PCs) both have significant interannual variability with a period of 2–4 years. In addition, PC1 has significant interdecadal variability with a period of 20–30 years. Further analysis suggests that EOF1 and EOF2 clearly have a different relationship with the summer monsoon circulation system. In the positive phase of PC1, the East Asian subtropical westerly jet stream (EAWJS) shows a northward trend with higher intensity than normal the blocking high at mid- to high latitudes is inactive; and the western Pacific subtropical high (WPSH) is located to the north of its normal position. The NCMR is controlled by stronger southerly winds, which cause the convergence of water vapour, favouring more precipitation in this region and vice versa. In the positive phase of PC2, the EAWJS swings to the south of Lake Baikal. Significant positive height anomalies exist from western NC to NEC. Significant negative height anomalies occur to the subtropical northwestern Pacific. This indicates that the cold vortex in Northeast China is inactive, the WPSH tends to be weaker and located to the south of its normal position, and NEC (NC) is dominated by anomalous northeasterly (southeasterly) winds. The convergence (divergence) of water vapour in NC (NEC) favours more (less) precipitation in NC (NEC) and vice versa. Therefore, EOF1 is related to the large-scale circulation anomalies over East Asia and the northwest Pacific in July and August, whereas EOF2 is more closely related to the anomalies in the regional circulation over the NCMR and the subtropical northwestern Pacific.  相似文献   

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