首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 140 毫秒
1.
北太平洋持续SSTA影响东亚初夏大气环流的数值试验   总被引:3,自引:1,他引:3  
应用一个在NCARCCM3(T42L18)气候模式基础上发展的CCM3(R15L9)长期预报模式,模拟研究了北太平洋海区持续暖海温对东亚初夏大气环流的影响。结果表明,北太平洋海区海温持续偏暖引起亚洲—太平洋地区(20~40°N)对流层出现明显的增温带,有利于初夏东亚南支西风急流的减弱、北跳,东风急流加强北移和西太平洋副热带高压加强北抬,还有利于亚洲夏季风发展和东亚大陆近地面平均温度回升。上述环流特征,加速了东亚初夏季节转换过程。  相似文献   

2.
用改进的CCM1(R15L12)气候模式,模拟研究了1991年热带印度洋持续暖海温对东亚初夏季节大气环流的影响。结果表明,热带印度洋海温持续偏暖有利于初夏高原上空大气增温,从而有利于热带东风急流的发展北移和东亚南支西风急流的北跳,并引起5月份西太平洋副热带高压明显加强北抬。印度洋暖海温还引起初夏东亚大陆温度场回升。对南半球越赤道气流发展和南海夏季风的加强起到积极作用。上述特征加速了东亚初夏季节转换过程,有利于江淮梅雨较早发生。  相似文献   

3.
使用ERA40再分析的月资料和逐日资料,从大尺度特征和瞬变扰动活动两个角度对冬季东亚副热带急流(EASJ)和东亚温带急流(EAPJ)进行了比较分析.结果表明,使用月资料分析的EASJ与EAPJ在高层风场上没有清晰的地理分界区,而使用逐日资料计算得到的冬季逐日急流发生数则以高原北部上空所处的纬度带为分界岭,存在两个急流中心集中区,分别对应于EASJ和EAPJ区域.通过分析东亚上空天气尺度瞬变扰动活动(STEA)表明,与强盛的冬季EASJ相伴随的是较弱的南支STEA,而与较弱的EAPJ相伴随的北支STEA却十分活跃,显示出EAPJ是与瞬变活动相伴而存的急流.进一步的诊断分析揭示了冬季东亚温带急流的两种主要异常模态,一种是EAPJ区域反气旋性/气旋性异常环流型,另一种是局地西风的减弱/增加.与第1种异常模态相关的北半球大尺度环流异常主要集中在欧亚中高纬地区,其形成受中高纬大气环流以及东亚上游大气环流异常的共同影响.当EAPJ局地西风减弱/增加时.EASJ东段至西太平洋上空的西风急流呈现出与之相反的变化型,北半球大气环流异常表现为大气遥相关的欧亚(EU)型.冬季EAPJ的两种异常模态还与东亚上空STEA异常密切联系,其中在北支STEA区域出现的瞬变异常以波列的形式沿STEA北支轴线传播到达东亚沿海上空,然后东传入洋面上空,而对于靠近STEA南支轴线的异常扰动活动则只能存在于东亚东部及其沿海上空的200 hPa层上.  相似文献   

4.
段廷扬 《气象学报》1994,52(2):194-200
由于青藏高原500hPa层出现高压系统的活动,使高原大气产生"上高下高"的气压场结构,从而东亚大气环流也发生某些相应的变化。本文统计分析了高原500hPa高压的散度与垂直速度分布、高原大气热源的演变和100hPa层涡度、纬向风以及经圈环流的变化等。结果认为,由于夏季高原500hPa高压的活动,使高原上空垂直上升运动和对流加热受到抑制,100hPa南亚高压强度减弱、位置北抬、有向西部型过渡的特征.高原北侧西风急流减弱,东风急流南支与北支合并后位于原北文东风急流位置以南,侵入高原南麓的西南季风减弱。与此同时,孟加拉湾上空上升运动有所增强,其对流加热对维持东风急流乃至南亚季风将起重要作用。  相似文献   

5.
以往的研究已证实,西太平洋副热带高压(副高)在1970s后期减弱东退.基于大气模式(CAM4)的理想型海温强迫试验,结果表明:副高的东退可能是大气对于正位相太平洋年代际振荡(PDO)的相应.伴随着PDO转变为正位相,西太平洋至印度半岛以及热带东太平洋的对流加热增强,大气表现为Gill型响应,在亚洲大陆至西太平洋上空低层产生气旋性异常,有利于副高东退.同时,高层产生反气旋异常,使得东亚西风急流加强和向南扩展,进而调节西太平洋上空的次级环流,进一步有利于副高东退.  相似文献   

6.
夏季亚洲大陆上空大气环流的结构   总被引:17,自引:3,他引:17  
陶诗言  陈隆勳 《气象学报》1957,28(3):233-247
作者分析了1951—55时期中850、700及500毫巴的7月平均气流场的构造,以及1956年7、8两月亚洲上空200毫巴平均等高线图.又作了1956年7、8两月东经75度、90度、105度和120度经线上平均风场和温度场的剖面.我们发现,在夏季有三种基本气流组成亚洲大陆上空三度空间的气流场:即,(1)中纬度的西风气流,(2)高空热带和副热带的东风气流,(3)位于高空热带和副热带东风气流下面的西南季风.此外,对于1956年从春季到夏季的过渡时期中,亚洲上空大气环流的转变,亦作了研究.我们发现,从春季到夏季的过渡时期中,亚洲上空的大气环流有着一个跳躍的转变.在这个时期中,喜马拉雅山南边的高空副热带西风急流向北撤退,在西藏高原的纬度上空,建立一个副热带高压脊线,并且在亚洲南部上空(北纬12度以南)建立一支高空东空急流.同时印度的西南季风和我国长江流域的梅雨时期开始出现.作者又发现,夏季在中国大陆上,雨带的北移和西风带北撤以及相应的西风带强度的削弱有着密切的联系.  相似文献   

7.
以往的研究已证实,西太平洋副热带高压(副高)在1970s后期减弱东退.基于大气模式(CAM4)的理想型海温强迫试验,结果表明:副高的东退可能是大气对于正位相太平洋年代际振荡(PDO)的相应.伴随着PDO转变为正位相,西太平洋至印度半岛以及热带东太平洋的对流加热增强,大气表现为Gill型响应,在亚洲大陆至西太平洋上空低层产生气旋性异常,有利于副高东退.同时,高层产生反气旋异常,使得东亚西风急流加强和向南扩展,进而调节西太平洋上空的次级环流,进一步有利于副高东退.  相似文献   

8.
利用NCAR CAM3.1模式及NCEP/NCAR (version 1)再分析资料计算出来的几种大气热源分布情况,分别讨论亚洲各地区和南半球上空夏季大气加热场(热源或冷源)对东亚季风环流系统和印度季风环流系统形成的影响.结果表明:(1)东亚地区上空的大气热源和澳大利亚冷源与东亚夏季风环流关系密切,东亚大陆上空及西太平...  相似文献   

9.
中国东南部冬季降水变化及其环流特征   总被引:2,自引:2,他引:0       下载免费PDF全文
利用1951-2011年中国160站降水资料及NCEP/NCAR再分析资料,分析了中国东南部冬季降水的年际变化及与之相关的环流和水汽输送特征。结果表明:中国东南部冬季降水年际差异较明显,当降水异常偏多(少)时,蒙古高压及中国广大南方地区海平面气压异常偏低(高),而亚洲附近的洋面上则异常偏高(低);500 hPa上,巴尔喀什湖附近的高压脊和东亚大槽均偏弱(强);高层东亚西风急流异常偏弱(强),中东地区急流异常偏强(弱);中国东部20~30°N出现显著异常上升(下沉)运动,低纬度地区出现异常下沉(上升)运动。影响中国东南部冬季降水的水汽输送主要有两支:来自西风带绕高原的南支气流,经过阿拉伯海和孟加拉湾向华南的输送水汽;来自低纬西太平洋,经南海向中国西南的水汽输送。此外,东亚冬季风与中国东南部冬季降水关系密切。  相似文献   

10.
2008年1月我国南方严重冰雪灾害过程分析   总被引:72,自引:9,他引:63  
2008年1月中旬至2月初,我国南方地区出现大范围持续性雨雪天气过程。江淮流域降水出现类似某些夏季强梅雨期的降水过程,而且,江南的冻雨在历史上属少见。这次大范围冰雪天气过程的成因是由于欧亚大陆出现异常的大气环流。1月中下旬亚洲中高纬60~100°E地区的阻塞形势稳定维持20余天,里海以东地区长期维持一个切断低压系统,在这个切断低压下游地区有3次低气压扰动沿青藏高原向东移入我国上空;这时欧亚大陆20~35°N地区南支高空西风急流异常偏强,来自大西洋的大气扰动沿这条急流波导向下游地区传播,欧亚地区Rossby波列的下游发展效应显著。从1月16日开始到2月初,在20~40°N范围内,30°W、15°E和85°E(青藏高原附近)地区持续有高空槽发展,而在5°W、50°E和135°E(日本南部)稳定有高空脊维持。我国南方地区处于80°E的“南支槽”前,大量暖湿空气被输送到我国南方。此外,1月中下旬原来位于15°N的西太平洋副热带高压移到20°N,副高西北侧的西南气流有利于将来自南海的暖湿空气输送到中国南部大陆。在这样稳定的异常环流形势下,当一次次从高原西侧过来的高空高位涡扰动移到位于华南上空的静止锋上时,诱发低层静止锋锋生引起一次次降水过程。另一方面,由于大量暖湿空气沿着锋面抬升,在江南南部和华南北部形成了持久的温度高于0 ℃的逆温层(暖盖),使得在这些地区出现严重的持续性冻雨天气。  相似文献   

11.
索马里急流是北半球夏季最为强盛的越赤道气流,南亚高压则是出现在对流层高层、平流层低层最大最稳定的反气旋环流系统,基于近60年NECP/NCAR再分析资料,本文研究了年代际尺度上夏季索马里急流与南亚高压的联系。研究结果表明:年代际尺度上,索马里急流与南亚高压存在显著的正相关关系,当索马里急流偏弱(强)时,夏季南亚高压偏弱西退(偏强东进)。对不同年代际背景下南亚高压东西部的经向垂直环流的分析发现,当索马里急流处于偏弱位相时,南亚高压西半部(20°~70°E)经向垂直环流偏强,而其东半部(75°~120°E)经向垂直环流减弱;反之亦然。南亚高压南北两侧的纬向垂直环流的变化也有差异,索马里急流偏弱(强)时,北部南亚高压(27.5°~35°N)的青藏高原上空纬向垂直环流显著减弱(增强),而南部南亚高压(20°~27.5°N)的伊朗高原上空纬向垂直环流减弱(增强)明显。进一步的研究发现,年代际尺度上索马里急流与南亚高压的联系受到PDO(Pacific Decadal Oscillation)年代际变化的调制。PDO正负位相的转折,首先改变了对流层高层副热带西风急流的强弱变化,从而使得位于其南部的南亚高压强度和热带东风急流发生相应的改变,热带东风急流的变化又通过热带印度洋上空的局地纬向垂直环流将异常信号传递到对流低层,改变热带地区索马里急流的强弱变化。  相似文献   

12.
TheEarlySummerSeasonalChangeofLarge-scaleCirculationoverEastAsiaandItsRelationtoChangeofTheFrontalFeaturesandFrontalRainfallE...  相似文献   

13.
A global atmospheric general circulation model has been used to perform eleven idealized numerical experiments, i.e., TP10, TP10, .., TP100, corresponding to different percentages of the Tibetan Plateau altitude. The aim is to explore the sensitivity of East Asian climate to the uplift and expansion of the Tibetan Plateau under the reconstructed boundary conditions for the mid-Pliocene about 3 Ma ago. When the plateau is progressively uplifted, global annual surface temperature is gradually declined and statistically significant cooling signals emerge only in the Northern Hemisphere, especially over and around the Tibetan Plateau, with larger magnitudes over land than over the oceans. On the contrary, annual surface temperature rises notably over Central Asia and most parts of Africa, as well as over northeasternmost Eurasia in the experiments TP60 to TP100. Meanwhile, the plateau uplift also leads to annual precipitation augmentation over the Tibetan Plateau but a reduction in northern Asia, the Indian Peninsula, much of Central Asia, parts of western Asia and the southern portions of northeastern Europe. Additionally, it is found that an East Asian summer monsoon system similar to that of the present initially exists in the TP60 and is gradually intensified with the continued plateau uplift. At 850 hPa the plateau uplift induces an anomalous cyclonic circulation around the Tibetan Plateau in summertime and two anomalous westerly currents respectively located to the south and north of the Tibetan Plateau in wintertime. In the mid-troposphere, similarto-modern spatial pattern of summertime western North Pacific subtropical high is only exhibited in the experiments TP60 to TP100, and the East Asian trough is steadily deepened in response to the progressive uplift and expansion of the Tibetan Plateau.  相似文献   

14.
利用1961~ 2007年NCEP/NCAR的再分析逐日资料,分析高原主体上空大气环流的季节变化和受到高原影响的东亚大型环流系统的季节变化,以此证明本文得到的“高原普适性划分方法”的合理性.得到的初步结论概括如下:高原主体上空的位势高度、风场、高空温度、降水的季节变化和高原普适性季节划分方法划分的高原四季变化一致,高原南亚高压、副热带高压、副热带西风急流的三个特征指数季节变化和高原普适性季节划分方法划分的高原四季变化一致,这些结论都说明高原普适性季节划分方法划分的高原四季是合理的;风场季节率(500hPa、100hPa)显著区随高度升高向赤道靠近,风场季节率的变化主要和东亚季风的变化有关,大气环流系统季节率的显著说明了大气环流的季节变化,同时也证明了高原普适性季节划分方法的合理性.  相似文献   

15.
本文是系列文章的第二篇,首先分析了1989年亚洲夏季风爆发时期青藏高原及邻近地区地表感热通量和大气温度场季节变化的基本特征,着重讨论了春季高原地表感热加热和亚洲季风爆发的联系,然后分析了1980~1989年10a南海季风爆发的气候学特征。上述工作表明,在春末初夏过渡季节,高原上空大气温度变化出现阶段性的跃升,并同亚洲夏季风阶段性的爆发有很好的对应关系。高原地表感热通量的持续增大导致了对流层高层局地反气旋式扰动环流的出现,使南亚反气旋北进的过程明显受到高原局地热力环流的调制,而热带东风急流入口区所产生的强烈的高层辐散,提供了有利于热带季风对流在南海地区首先爆发的动力学条件。此外,从5月份至6月中下旬,青藏高原、伊朗—阿富汗上空强大暖中心相继建立的结果,直接导致了热带地区上空大气南北温度梯度的反向依次在南海—孟加拉湾东部和阿拉伯海—印度次大陆由东向西相继建立,从而决定了亚洲季风建立的过程在不同地区爆发的时间不同。  相似文献   

16.
The role of the heat source of the Tibetan Plateau in the general circulation   总被引:21,自引:0,他引:21  
Summary In this paper, the thermal features of the atmosphere over the Tibetan Plateau in summer and their effects on the general circulation are reviewed. Some recent research results are reported. It is shown that the Plateau acts as a heat source in summer. Particularly the strong surface heating makes the air stratification very unstable and produces strong near-surface convergence and positive vorticity and upper layer divergence and negative vorticity. Intense convective activity generated thereby not only maintains such particular large-scale circulation pattern over the Plateau, but also transports large amounts of sensible heat, moisture, chemical pollutants, as well as air with low ozone concentration from near-surface layers to upper layers. A minimum centre of total ozone concentiation and a huge upper layer anticyclone with a warm and moist core are thus observed over the Plateau in summer. The strong divergent flow and anticyclonic vorticity source in the upper atmosphere have a strong influence on the general circulation over the world via meridional as well as longitudinal circulations, and energy, dispersion on a spherical surface. It is shown that the surface sensiole heating of the Plateau is essential for the occurrence of the abrupt seasonal change of the general circulation there, and for the persisten maintenance of the Asian monsoon. It is also reported that the elevated heating of the Tibetan Plateau together with its mechanical forcing cause the early onset of the Asian monsson to happen over the eastern coast of the Bay of Bengal, which then generates a favorable circulation background for the monsoon onset over the South China Sea. The Indian monsoon onset flows aftervards.With 13 FiguresWhile I visited USA in the summer of this year (97) the sad news of the death of Professor Riehl came to me. This was a great shock to me. Herb was my esteemed colleague and friend. During the later half of my stay at the University of Chicago in the 40s I spent most of the time with Herb and worked with him. Every weak we have several discussion through which I learnt a lot from him. I cannot forget our discussions in one morning. This discussion helped me to formulate a paper The circulation of the high troposphere over China in the winter of 1945–1946 which was published in Tellus (1950). This paper demonstrated for the first time the existence of a strong jet stream around the southern periphery of Tibetan Plateau. This jet stream is usually called southern jet stream in China, because there is also a northern one to the north of the Tibetan Plateau, These two jet streams merge into one downstream of the plateau forming the stronges jet stream in the northern hemisphere. This Tellus paper and a paper by Bolin, which also appeared in Tellus (1950), stimulated my interest in studying the role of the Tibetan Plateau in the general circulation for several decades. Because of Herb's stimulation, a colleague of mine and I write this review article in the volume in memorizing Herb's big contribution to meteorology.Because of the adoption of Pinyin in the 1960s, Yeh T. C. became Ye D.-Z  相似文献   

17.
In correspondence with the establishment of the "upper high and lower high" pressure pattern due to the activities of 500 hPa high over the Tibetan Plateau in summer,a series of changes of the East Asia atmospheric circulation will take place.In this paper,the distributions of divergence and vertical velocity of 500 hPa high,the evolutions of atmospheric heat source,the variations of vorticity and zonal wind at 100 hPa level and vertical meridional cell over the Tibetan Plateau etc.are statistically analyzed.Thus,we can see that the ascending motion and the convective heating over the Tibetan Plateau,the South Asia high and the westerly jet on the north of the Plateau at 100 hPa level are weakned.The northern branch and the southern branch of the easterly jet on the south of the Plateau merge into a single whole and situate on the south of the former northern branch.In the meantime,thermodynamic land-sea discrepancy in South Asia and the convective heating over the Bay of Bengal is enhanced.It will play an important role in the maintenance of the easterly jet and the South Asia monsoon.  相似文献   

18.
李博  杨柳  唐世浩 《气象学报》2018,76(6):983-995
利用2010-2014年静止气象卫星FY-2E的红外TBB资料,分析了夏季青藏高原(高原)及周围地区对流的气候特征。分析表明,5月,高原最主要的对流发生在东部边缘。6月,随着亚洲夏季风爆发,最强的对流(强对流)发生在高原的东南侧。7-8月,强盛的西南风给高原中东部部分地区带来丰沛的水汽,高原的东南部形成一条对流(强对流)活跃带。在高原西部,对流发生频率大于6%的区域出现在西部南麓的时间约为37候,并于7月底-8月初到达最北。在高原中部,对流(强对流)开始活跃的时间为6月上旬(中旬),维持整个盛夏,并分别经历3次向北推进,最北约到达34°N。在高原东部,5月底开始对流都处于相对活跃期,有3次(两次)对流(强对流)的北进。高原对流(强对流)发生频率存在两个季节内变率大值区,分别位于高原中南部雅鲁藏布江中段和高原东南部西藏、青海、四川三省交界处。对流发生频率的第一模态主要是高原东南部和南部的印度季风区对流的反向模态,第二模态则体现了高原西部和印度大陆80°E以西地区与南亚大陆80°E以东地区的对流发生频率的三极型变化。   相似文献   

19.
Winter precipitation over Central Asia and the western Tibetan Plateau (CAWTP) is mainly a result of the interaction between the westerly circulation and the high mountains around the plateau. Empirical Orthogonal Functions (EOFs), Singular Value Decomposition (SVD), linear regression and composite analysis were used to analyze winter daily precipitation and other meteorological elements in this region from 1979 to 2013, in order to understand how interactions between the regional circulation and topography affect the intraseasonal variability in precipitation. The SVD analysis shows that the winter daily precipitation variability distribution is characterized by a dipole pattern with opposite signs over the northern Pamir Plateau and over the Karakoram Himalaya, similar to the second mode of EOF analysis. This dipole pattern of precipitation anomaly is associated with local anomalies in both the 700 hPa moisture transport and the 500 hPa geopotential height and is probably caused by oscillations in the regional and large-scale circulations, which can influence the westerly disturbance tracks and water vapor transport. The linear regression shows that the anomalous mid-tropospheric circulation over CAWTP corresponds to an anti-phase variation of the 500 hPa geopotential height anomalies over the southern and northern North Atlantic 10 days earlier (at 95% significance level), that bears a similarity to the North Atlantic Oscillation (NAO). The composite analysis reveals that the NAO impacts the downstream regions including CAWTP by controlling south-north two branches of the middle latitude westerly circulation around the Eurasian border. During the positive phases of the NAO, the northern branch of the westerly circulation goes around the northwest Tibetan Plateau, whereas the southern branch encounters the southwest Tibetan Plateau, which leads to reduced precipitation over the northern Pamir Plateau and increased precipitation over the Karakoram Himalaya, and vice versa.  相似文献   

20.
包庆  Bin WANG  刘屹岷 《大气科学》2008,32(5):997-1005
20世纪50年代以来,随着全球海表面温度年代际变化和全球变暖现象的出现,东亚夏季风降水和环流场也出现相应的年代际变化。是什么原因引起这个长期的变化趋势?研究表明青藏高原增暖可能是导致东亚夏季风年代际变化的重要因子之一。为了能够更好地理解青藏高原地表状况对下游东亚季风的影响,作者使用德国马普气象研究所大气环流模式(ECHAM)进行一系列数值试验。在两组敏感性试验中,通过改变高原上的地表反照率从而达到改变地表温度的目的。数值试验结果表明:青藏高原增暖有助于增强对流层上层的南亚高压、高原北侧西风急流和高原南侧东风急流以及印度低空西南季风;与此同时,东亚地区低层西南气流水汽输送增强。高原增暖后降水场的变化表现为:印度西北部季风降水增加,长江中下游以及朝鲜半岛梅雨降水增多;在太平洋副热带高压控制下的西北太平洋地区和孟加拉湾东北部,季风降水减少。对数值模拟结果的初步诊断分析表明:在感热加热和对流引起的潜热加热相互作用下,南亚高压强度加强,东亚夏季低层西南季风增大、梅雨锋降水增强,高原东部对流层上层的副热带气旋性环流增加,以及对流层低层的西太平洋副热带高压增强。另外,在青藏高原增暖的背景下,孟加拉湾地区季风降水减弱。本项研究有助于更好地理解东亚夏季风年代际变化特征和未来气候变化趋势。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号