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1.
采用1968—2009年NCEP/NCAR逐候再分析资料,分析了季节转换期间中东急流的变化特征及其热力机制。结果表明:中东急流中心的强度和位置存在明显的季节变化特征,第67候—次年第24候偏强且位置稳定偏南(27.5 °N)、第38—44候偏弱且位置稳定偏北(45 °N)。200 hPa纬向风场EOF第1空间模态反映了中东急流在冬、夏季的位置,冬季主要位于埃及和沙特阿拉伯上空,夏季主要位于黑海东部至咸海东部上空,且中东急流在冬季比在夏季强。第26—31候和第54—61候分别是中东急流春夏季和秋冬季的季节转换期,其200 hPa西风演变与500~200 hPa平均南北温差演变的对应关系很好,表明南北温差的季节性转变导致了200 hPa西风的季节性转变。个例分析表明,印度夏季风爆发日期早晚与中东急流季节转换日期早晚的关系非常密切。印度夏季风爆发较早(晚)时,由于500~200 hPa南北温差大值区域向北推进较早(晚),因此,中东急流向北推进较早(晚),同时40~90 °E对流层低层西风急流出现也较早(晚)。   相似文献   

2.
利用1979-2013年NCEP/NCAR再分析资料研究了东亚副热带西风急流的变化特征。结果表明:东亚副热带西风急流中心位置、强度有明显的季节变化,冬季偏东偏南、强度最强,夏季偏北偏西、强度最弱。冬半年东亚副热带西风急流南界、北界年际变化的幅度大,夏半年幅度较小。冬季、春季东亚副热带西风急流范围较大,秋季、夏季小,一年内,偏大年或偏小年的出现不具有季节的连续性。  相似文献   

3.
东亚副热带西风急流季节变化特征及其热力影响机制探讨   总被引:19,自引:0,他引:19  
况雪源  张耀存 《气象学报》2006,64(5):564-575
利用1961—2000年NCEP/NCAR月平均再分析资料对东亚副热带西风急流强度和位置的季节变化进行了分析,指出急流位置季节变化不仅有明显的南北向移动,6—7月还存在东西方向的突变特征,同时急流轴在北进过程中具有东西向的不一致性,急流中心强度的变化超前于位置的南北移动。在此基础上,采用动态追随急流中心移动的方法,探讨东亚副热带西风急流季节变化的热力影响机制,发现东亚副热带西风急流强度变化及位置移动与对流层中上层气温南北差异的分布结构有很好的对应关系,这说明急流的季节演变是对辐射季节变化及由于东亚特殊的海陆分布和青藏高原大地形影响而造成纬向不均匀加热的响应。从各热量输送项与急流的关系来看,从冬半年到夏半年的增暖时段,急流中心南北温差减小,急流减弱北进;从夏半年到冬半年的降温时段,急流中心南北温差增大,急流加强南退。热量平流输送的经向差异是造成急流中心南北温差的主要原因,急流跟随热量平流输送最大经向梯度中心位置南北移动。非绝热加热对急流中心的东西移动有引导作用,青藏高原春夏季对对流层中上层强大的加热作用是导致6—7月急流中心位置西移突变的原因。  相似文献   

4.
利用1948-2008年NCEP/NCAR再分析风速资料,分析了亚洲副热带200hPa西风带急流(下称西风急流)时空变化的气候特征及其与我国江淮流域梅雨期降水和新疆夏季降水的关系。结果表明:(1)由冬入夏时,西风急流轴由30°N左右北进到45°N左右,中间有两次明显的快速北进,分别发生在4月和6~7月;由夏入冬时,急流轴再由45°N左右南撤至30°N附近。急流轴在北进过程中以90°E处出现最早,也最明显。(2)一年之中,西风急流中心主要位于西太平洋上空140°E处,只有两个月左右的时间停留在亚洲大陆上空。急流中心在6月中旬开始迅速西移,6月下旬移至江淮流域上空,7月底到达新疆天山地区上空,8~9月东退至冬季平均位置140°E左右。(3)江淮流域梅雨期的降水量与西风急流的位置有一定相关关系。若某年1月急流中心异常偏西,4~5月急流轴又异常偏南,则该年可能为丰梅年,江淮地区易出现暴雨洪涝灾害;否则相反。(4)盛夏季节新疆上空急流的强度及纬度位置与新疆降水也有一定关系。若某年4月中旬~5月下旬新疆和中亚地区西风急流轴明显偏北,该年夏季急流轴又偏南,且急流偏强,则新疆多雨;否则相反。  相似文献   

5.
张耀存  况雪源 《大气科学》2006,30(6):1177-1188
对IAP/LASG气候系统模式试验版(FGCM0)模拟对流层上层东亚副热带西风急流季节变化的能力进行评估, 分析FGCM0模拟的东亚副热带西风急流季节变化与NCEP/NCAR再分析资料的差异及其与对流层大气南北温差的关系.结果表明, FGCM0模拟的冬季和夏季西风急流垂直结构、水平结构和季节变化与NCEP/NCAR再分析资料基本一致, 但FGCM0模拟的东亚副热带西风急流在高原附近地区冬季和夏季都偏强, 沿115°E中国大陆地区上空模拟的急流强度冬季偏弱, 夏季明显偏强.夏季FGCM0模拟的急流中心位于高原东北部的40°N附近地区, 强度偏强, 位置偏东, 而此时NCEP/NCAR再分析资料中的急流中心却位于高原北侧.此外, FGCM0模拟的急流在5月份的北移和8月份的最北位置上与NCEP/NCAR再分析资料差异较大.分析副热带西风急流与对流层南北温差的季节变化发现, 急流出现的位置总是对应着对流层南北温度差较大区域, 与再分析资料相比, FGCM0模拟的温度差在冬季基本一致, 夏季差异较大.与降水的模拟相联系发现, FGCM0模拟得到的与实际不一致的偏西偏北的强降水中心与200 hPa上的东亚副热带急流位置和强度不合理具有密切关系.相关分析表明, 冬季西风急流强度与日本南部海区的感热通量、夏季与青藏高原地区的地面感热通量有明显的正相关关系, 而FGCM0能够较好地模拟冬季西风急流强度与地面感热通量之间的相关关系, 但模拟夏季青藏高原地区感热通量和副热带西风急流之间相关关系的能力相对较差, 夏季西风急流强度与OLR之间却有一定的关系.由于与强降水区相联系的OLR低值区对应着较大的对流凝结加热, 再加上模式中位于青藏高原东南部较大的地面感热加热, 增强了对流层的南北向温度差, 进而影响东亚副热带急流强度和位置.因此, FGCM0模拟的夏季副热带急流位置和强度偏差与高原附近地区的地面感热加热、大气射出长波辐射等的模拟偏差具有密切的关系.  相似文献   

6.
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   

7.
利用1954-2007年中国国家气象信息中心提供的强沙尘暴序列数据集和美国国家环境预报中心与国家大气研究中心(NCEP/NCAR)提供的再分析资料,分析了30°N以北的中国北方沙尘暴活动与东亚高空西风急流变化的联系。结果表明,中国北方春季沙尘暴出现频数与亚洲大陆对流层高层200 hPa中纬度西风急流的位置和强度变化存在着密切的联系。这种关系在年际和年代际时间尺度上均得到体现,在多(少)沙尘暴活动年,急流轴位置比正常年偏北(南)。在研究时段内,沙尘暴活动呈现减少的趋势,同时高空西风急流表现出系统性南移趋势。这种相关性存在内在的联系,反映了高空西风急流轴位置变化对地面沙尘暴活动的影响:当春季200 hPa高空西风急流轴位置比正常偏南时,中国北边界至蒙古国一带的一个关键区(70°E-120°E,42.5°N-52.5°N)对流层高层西风显著减弱,该区高空急流减弱一方面通过动量下传造成沙尘源区低层西风减小,削弱沙尘暴产生所需的动力条件,另一方面使风切变和斜压性减小,不利于地面气旋的生成,从而使沙尘暴活动减少。  相似文献   

8.
夏季东亚西风急流扰动异常与副热带高压关系研究   总被引:7,自引:1,他引:7       下载免费PDF全文
利用1979—2003年NCEP/NCAR月平均再分析资料, 探讨夏季 (6—8月) 200 hPa东亚西风急流扰动异常与南亚高压和西太平洋副热带高压的关系。研究指出:夏季200 hPa东亚西风急流扰动动能加强 (减弱), 东亚西风急流位置偏南 (偏北)、强度偏强 (偏弱); 东亚西风急流扰动动能强弱不仅与北半球西风急流强弱和沿急流的定常扰动有关, 而且还与东亚地区高、中、低纬南北向的扰动波列有关, 亚洲地区是北半球中纬度环球带状波列异常最大的区域。夏季200 hPa东亚西风急流扰动动能加强 (减弱), 南亚高压的特征为位置偏东 (偏西)、强度加强 (减弱); 西太平洋副热带高压的特征为位置偏南 (偏北)。东亚环流特别是500 hPa西太平洋副热带高压对东亚西风带扰动异常的响应由高空东亚西风急流南侧的散度场及其对流层中下层热带和副热带地区的垂直速度距平场变化完成。  相似文献   

9.
东亚副热带急流的空间结构及其与中国冬季气温的关系   总被引:5,自引:1,他引:4  
姚慧茹  李栋梁 《大气科学》2013,37(4):881-890
本文利用1950~2012 年NCEP/NCAR 逐月再分析风场资料和中国542 个台站逐日观测资料研究东亚副热带急流(EAJ)的空间结构及其与中国冬季气温的关系。结果表明,东亚副热带急流在空间呈不规则管状结构,冬季急流体积最大,垂直厚度范围自500 hPa 至100 hPa;夏季急流体积最小,仅存在于200 hPa 附近。急流管在秋、冬、春季略呈西南—东北走向,在夏季呈西—东走向。不同高度上的最大风速轴线在南北方向的移动不尽一致,春、秋季低层风速轴比高层偏北。东亚急流管不同区域下方的垂直运动及其年变化存在差异。冬季东亚副热带急流强度与同期中国气温关系密切,特别是高原上空的急流越强时,中国大部分地区冬季气温偏低。  相似文献   

10.
春季长江中下游旱涝的环流特征及对前期海温异常的响应   总被引:1,自引:0,他引:1  
李超  张庆云 《气象学报》2013,71(3):452-461
春季长江中下游降水有显着的年际、年代际变化特征,进入21世纪以来长江中下游春季降水偏少现象频繁发生.根据中国国家气候中心160站月平均降水资料和美国国家环境预报中心/国家大气研究中心(NCEP/NCAR)月平均再分析资料,重点探讨春季(3-5月)长江中下游地区降水异常的环流特征、可能成因、机理以及对外强迫的响应.春季长江中下游降水异常偏多(少)的环流主要特征是:高层200hPa风场上东亚副热带西风急流中心位置比气候态偏北(南);中层500hPa亚洲地区的阻塞高压主要发生在乌拉尔山(鄂霍次克海)附近、西太平洋副热带高压位置偏北(南);低层850hPa风场的东亚沿海地区为偏南(北)风距平,有利于(不利于)水汽向长江中下游地区输送.大气环流内部动力过程的分析指出:东亚地区上空Eliassen-Palm(EP)通量散度在40°N为正(负)异常、30°N为负(正)异常,有利于东亚高空西风急流中心位置偏北(南),从而导致春季长江中下游降水偏多(偏少).春季长江中下游降水异常偏多(少)年最显着的前期外强迫信号表现为赤道太平洋海温呈现厄尔尼诺(拉尼娜)型.  相似文献   

11.
By using the NCEP/NCAR pentad reanalysis data from 1968 to 2009, the variation characteristics of Middle East jet stream(MEJS) and its thermal mechanism during seasonal transition are studied. Results show that the intensity and south-north location of MEJS center exhibit obvious seasonal variation characteristics. When MEJS is strong, it is at 27.5°N from the 67 th pentad to the 24 th pentad the following year; when MEJS is weak, it is at 45°N from the 38 th pentad to the 44 th pentad. The first Empirical Orthogonal Function(EOF) mode of 200-hPa zonal wind field shows that MEJS is mainly over Egypt and Saudi Arabia in winter and over the eastern Black Sea and the eastern Aral Sea in summer. MEJS intensity markedly weakens in summer in comparison with that in winter. The 26th-31 st pentad is the spring-summer transition of MEJS, and the 54th-61 st pentad the autumn-winter transition. During the two seasonal transitions, the temporal variations of the 500-200 hPa south-north temperature difference(SNTD) well match with 200-hPa zonal wind velocity, indicating that the former leads to the latter following the principle of thermal wind. A case analysis shows that there is a close relation between the onset date of Indian summer monsoon and the transition date of MEJS seasonal transition. When the outbreak date of Indian summer monsoon is earlier than normal, MEJS moves northward earlier because the larger SNTD between 500-200 hPa moves northward earlier, with the westerly jet in the lower troposphere over 40°-90°E appearing earlier than normal, and vice versa.  相似文献   

12.
区域气候模式对东亚冬季风多年平均特征的模拟   总被引:9,自引:3,他引:6       下载免费PDF全文
利用改进的区域气候模式(RegCM-NCC)对东亚区域进行了连续5年(1998~2002年)的气候模拟,并对模拟的东亚冬季风情况进行了全面分析.结果表明该模式能够较好地模拟出东亚地区冬季平均环流特征,较真实反映出冬季低层大陆冷高压的平均位置与强度,也能够揭示出冬季风场变化的主要特征,如低层的冬季风气流及高层的西风急流;对冬季风强度及年际变化也有较好的反映,对冬季季风涌出现的频率、主要区域以及温度的演变等气候特征的模拟与实况一致.通过比较分析,对该模式在东亚冬季风等方面模拟性能有较全面的认识,便于模式的应用及进一步改进.  相似文献   

13.
The structure and seasonal variation of the East Asian Subtropical Westerly Jet (EAWJ) and associations with heating fields over East Asia are examined by using NCEP/NCAR reanalysis data. Obvious differences exist in the westerly jet intensity and location in different regions and seasons due to the ocean-land distribution and seasonal thermal contrast, as well as the dynamic and thermodynamic impacts of the Tibetan Plateau. In winter, the EAWJ center is situated over the western Pacific Ocean and the intensity is reduced gradually from east to west over the East Asian region. In summer, the EAWJ center is located over the north of the Tibetan Plateau and the jet intensity is reduced evidently compared with that in winter. The EAWJ seasonal evolution is characterized by the obvious longitudinal inconsistency of the northward migration and in-phase southward retreat of the EAWJ axis. A good correspondence between the seasonal variations of EAWJ and the meridional differences of air temperature (MDT) in the mid-upper troposphere demonstrates that the MDT is the basic reason for the seasonal variation of EAWJ. Correlation analyses indicate that the Kuroshio Current region to the south of Japan and the Tibetan Plateau are the key areas for the variations of the EAWJ intensities in winter and in summer, respectively. The strong sensible and latent heating in the Kuroshio Current region is closely related to the intensification of EAWJ in winter. In summer, strong sensible heating in the Tibetan Plateau corresponds to the EAWJ strengthening and southward shift, while the weak sensible heating in the Tibetan Plateau is consistent with the EAWJ weakening and northward migration.  相似文献   

14.
This study aims to explore the interdecadal variation of South Asian High (SAH) and its relationship with SST (Sea surface temperature) of the tropical and subtropical regions by using the NCEP/NCAR monthly reanalysis data from 1948 to 2012, based on the NCAR CAM 3.0 general circulation model. The results show that: 1) the intensity of SAH represents a remarkable interdecadal variation characteristic, the intensity of SAH experienced from weak to strong at the late 1970s, and after the late 1970s , its strength is enhanced and the area is expanded in the east-west direction. The expansion degree is greater westward than eastward, while it is opposite in summer. 2) Corresponding to the interdecadal variation of SAH intensity, after the late 1970s, the divergent component of wind field has two ascending and three descending areas. Of the two ascending areas, one is located in the East Pacific, the other location varies with the season from the Indian Ocean in winter to the South China Sea and West Pacific in summer. Three descending areas are located in the north-central Africa, the East Asia and the Middle Pacific region respectively. 3) Corresponding to the interdecadal variation of SAH intensity, the rotational component of wind field at the lower level is an anomalous cyclone over the South China Sea and West Pacific in summer, while in winter, it is an anomalous cyclone over the Indian Ocean, and an anomalous anticyclone over the equatorial Middle Pacific. 4) Numerical simulations show that the interdecadal variation of SAH is closely related to the SST of the tropical and subtropical regions. The SST of Indian Ocean plays an important role in winter, while in summer, the SST of the South China Sea and West Pacific plays an important role, and the SST of the East Pacific also plays a certain role.  相似文献   

15.
Aerosols make a considerable contribution to the climate system through their radiative and cloud condensation nuclei effects, which underlines the need for understanding the origin of aerosols and their transport pathways. Seasonal distribution of mineral dust around the globe and its correlation with atmospheric circulation is investigated using satellite data, and meteorological data from ECMWF. The most important sources of dust are located in North Africa, the Middle East and Southwest Asia with an observed summer maximum, and East Asia with a spring peak. Maximum dust activity over North Africa and the Middle East in summer is attributed to dry convection associated with the summertime low-pressure system, while unstable weather and dry conditions are responsible for the spring peak in dust emission in East Asia. Intercontinental transport of mineral dust by atmospheric circulation has been observed, including trans-Atlantic transport of North African dust, trans-Pacific transport of Asian dust, and transport of dust from the Middle East across the Indian Ocean. The extent of African dust over the Atlantic Ocean and its latitudinal variation with season is related to the large-scale atmospheric circulation, including seasonal changes in the position of the intertropical convergence zone (ITCZ) and variation of wind patterns. North African aerosols extend over longer distances across the North Atlantic in summer because of greater dust emission, an intensified easterly low level jet (LLJ) and strengthening of the Azores-Bermuda anticyclonic circulation. Transport of East Asian aerosol is facilitated by the existence of a LLJ that extends from East Asia to the west coast of North America.  相似文献   

16.
冬夏东亚季风环流对太平洋热状况的响应   总被引:9,自引:3,他引:6  
冬夏隔季韵律关系一直是我国长期天气预报和短期气候预测的一个重要依据,然而迄今为止对它们之间的物理过程及成因机理并不十分清楚。利用NCEP/NCAR全球2.5°×2.5°网格月平均再分析资料,研究1951~2000年冬夏东亚季风环流异常变化与太平洋海面温度(SST)的关系及对关键海温区响应机理。研究指出:冬夏东亚季风环流隔季韵律关系及其年际变化与赤道东太平洋海面温度异常(SSTA)变化密切相关,冬季赤道东太平洋出现La Ni~na(El Ni~no)型的SST分布,有利冬、夏东亚季风环流加强(减弱),其影响过程通过赤道Walker环流强(弱)以及东亚地区Hadley环流强(弱)过程完成。冬季赤道东太平洋海温变化是冬、夏东亚环流季节以及年际变化的一个重要外强迫因子。  相似文献   

17.
The seasonal variations of the intensity and location of the East Asian subtropical westerly jet (EAWJ) and the thermal mechanism are analyzed by using NCEP/NCAR monthly reanalysis data from 1961 to 2000. It is found that the seasonal variation of the EAWJ center not only has significant meridional migration, but also shows the rapid zonal displacements during June-July. Moreover, there exists zonal inconsistency in the northward shift process of the EAWJ axis. Analysis on the thermal mechanism of the EAWJ seasonal variations indicates that the annual cycle of the EAWJ seasonal variation matches very well with the structure of the meridional difference of air temperature, suggesting that the EAWJ seasonal variation is closely related to the inhomogeneous heating due to the solar radiation and the land-sea thermal contrast. Through investigating the relation between the EAWJ and the heat transport, it is revealed that the EAWJ weakens and shifts northward during the warming period from wintertime to summertime, whereas the EAWJ intensifies and shifts southward during the cooling period from summertime to wintertime. The meridional difference of the horizontal heat advection transport is the main factor determining the meridional temperature difference. The meridional shift of the EAWJ follows the location of the maximum meridional gradient of the horizontal heat advection transport. During the period from April to October, the diabatic heating plays the leading role in the zonal displacement of the EAWJ center. The diabatic heating of the Tibetan Plateau to the mid-upper troposphere leads to the rapid zonal displacement of the EAWJ center during June-July.  相似文献   

18.
利用NCEP/NCAR发布的850 hPa风场和OLR场以及福建38个站月降水资料, 分析了福建夏季旱涝与东亚夏季风及西太平洋副高的关系。结果表明夏季旱涝与夏季风强弱及副高南北位置密切相关。涝 (旱) 年在东亚季风系统中的热带季风环流出现异常加强 (减弱), 副热带季风环流则出现异常减弱 (加强); 涝年副高平均脊线位置偏北于27°N附近, 旱年则偏南于24°N附近; 由春入夏, 再由夏入秋副高南北位置的季节位移, 涝年先是急速北跳, 而后又急速南撤, 旱年却进退平缓。旱涝年东亚中高纬度环流亦表现出不同特征, 涝 (旱) 年一般没有 (有) 出现阻塞形势, 中纬度纬 (经) 向环流发展, 副热带锋区北抬 (南压), 研究还进一步揭示了夏季副高位置南北偏离影响夏季各月降水及其分布的不同形式。  相似文献   

19.
The features of the temperate jet stream including its location, intensity, structure, seasonal evolution and the relationship with the Asian monsoon are examined by using NCEP/NCAR reanalysis data. It is indicated that the temperate jet stream is prominent and active at 300 hPa in winter over the region from 45°-60°N and west of 120°E. The temperate jet stream is represented by a ridge area of high wind speed and dense stream lines in the monthly or seasonal mean wind field, but it .corresponds to an area frequented by a large number of jet cores in the daily wind field and exhibits a distinct boundary that separates itself with the subtropical jet. A comparison of the meridional wind component of the temperate jet stream with that of the subtropical jet shows that the northerly wind in the temperate jet stream is stronger than the southerly component of the subtropical jet, which plays an important role in the temperate jet stream formation and seasonal evolution, and thus the intensity change of the meridional wind component can be used to represent the temperate jet stream's seasonal variation. Analysis of the temperature gradient in the upper troposphere indicates that the temperate jet stream is accompanied by a maximum zonal temperature gradient and a large meridional temperature gradient, leading to a unique jet stream structure and particular seasonal evolution features, which are different from the subtropical jet. The zonal temperature gradient related to the land-sea thermal contrast along the East China coastal lines is responsible for the seasonal evolution of the temperate jet. In addition, there exists a coordinated synchronous change between the movement of the temperate jet and that of the subtropical jet. The seasonal evolution of the meridional wind intensity is closely related to the seasonal shift of the atmospheric circulation in East Asia, the onset of the Asian summer monsoon and the start of Meiyu in the Yangtze and Huaihe River Valleys, and it correlates well with summer and wint  相似文献   

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