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1.
东亚副热带季风雨带建立特征及其降水性质分析   总被引:8,自引:2,他引:6  
任珂  何金海  祁莉 《气象学报》2010,68(4):550-558
利用1961—2006年NCEP/NCAR再分析数据集和TRMM、CMAP多年平均逐候降水资料,分析了中国东部副热带季风雨季的起始时间、建立特征及其降水性质。结果表明,第16—18候,在中国江南南部和华南北部地区(25°30°N)日降水率达到6 mm/d,且范围较大,在低层该雨带的水汽主要来源于西太平洋副热带高压南侧转向的西南水汽输送,其源地即为西太平洋副热带季风雨季开始。雨带建立同时,东亚副热带地区中东太平洋的纬向海平面气压梯度首先在中纬度发生反转,即西低东高(相应于西暖东冷)。中国东部副热带地区出现加热中心并伴有上升运动,强度逐渐增强,并伸展至对流层顶,其强度及对流高度与热带地区相当,对流层中低层大气呈对流不稳定,降水已具有对流性降水性质。与此同时,南海西太平洋地区仍在副热带高压控制之下,盛行下沉运动,无降水产生,南海夏季风及其相应的水汽输送尚未建立。东亚副热带季风雨带的建立(3月底4月初)早于热带夏季风雨带,两雨带分别具有独立的热源中心和上升运动。南海夏季风即将爆发之际,赤道地区加热中心快速北移至南海地区,与副热带地区热源相互作用。  相似文献   

2.
暴雨过程的物理诊断和水汽条件分析   总被引:2,自引:0,他引:2  
对暴雨发生的物理成因进行了分析诊断,计算了与降水有关的各种物理量,讨论了各种物理量的特征,建立了物理模型.结论指出,随着大气环流由春末夏初向盛夏季节的过渡,松嫩流域东北冷涡暴雨过程的降水性质由初夏的连续性降水发展成盛夏的以对流性降水为主;暴雨区的水汽辐合中水汽平流的作用占有重要地位;影响暴雨的水汽分别来自西太平洋副热带高压南部低纬热带地区和孟加拉湾.两支水汽分别由西太平洋副热带高压西南侧的东南季风和西南季风直接向北方输送,或是分别向西或向东在我国南海合并再向北输送.来自孟加拉湾的水汽可追溯到印度洋赤道以南洋面,水汽先沿马克斯林高压东侧经索马里急流穿越赤道进入印度季风槽.关键是水汽最终能否输送到较高纬度的嫩江、松花江流域.  相似文献   

3.
夏季亚洲季风区的水汽输送及其对中国降水的影响   总被引:10,自引:3,他引:7  
利用1948-2005年NCEP/NCAR逐日及月平均资料,研究了亚洲季风区水汽输送的气候特征及其与中国夏季降水的关系.结果表明:(1)亚洲夏季风区不论在纬向和经向输送上,都表现了其独特性.夏季亚洲季风区为强大的水汽汇,东亚大陆和印度季风区均有较强的水汽辐合中心.(2)大部分水汽集中在对流层中下层,主要来自印度季风区,而对于对流层中上层,则以西太平洋和中纬西风带的输送为主.(3)印度季风在5-7月纬向向东的输送加强,东亚季风在6-7月以经向向北的输送加强为主,7月达最强,8到9月季风减弱直至结束.亚洲季风区青藏高原南侧的南支西风对东亚的水汽输送有重要作用,表现为春季最强,中高纬和热带西风输送变化同步,在盛夏达到最大,7月热带西风输送的水汽占三支水汽总输送的80%左右,来自中高纬地区的水汽约占18%.(4)季风爆发后,大量水汽从南半球输送到亚洲季风区.水汽辐合增加最大在孟加拉湾、中南半岛和南海地区,中国大陆的水汽主要经南海北边界输入.(5)水汽输送的北进与雨带的北推相一致.水汽输送场的时空分析表明,EOF1和EOF2分别代表强弱季风年的水汽输送特征.EOF1反映了东亚季风区一致的异常向北输送,并且在1970年代末发生了明显减弱.它与华北降水相关密切,表明自1980年代以来东亚季风向北水汽输送的减弱是华北干旱的主要原因.EOF2的主要特征是从1980年代之后,来自东北和西南的异常水汽在长江流域辐合,导致长江流域降水增多.相关分析表明,东亚夏季风在年代际尺度上的变化对此起了重要作用.  相似文献   

4.
东亚地区夏季风爆发过程   总被引:72,自引:5,他引:67  
利用中国194站1961~1995年日降水资料及NCEP1979~1997年候格点降水资料,探讨了亚洲地区自春到夏的雨季开始分布。结果表明,东亚地区自春到夏存在副热带季风雨季开始和热带季风雨季开始。前者于4月初开始于华南北部和江南地区,随后向南和向西南扩展,于4月末扩展到华南沿海和中南半岛,这个雨带主要是冷空气和副热带高压西侧转向的SW风以及南亚地区冬春副热带南支西风槽中西风汇合而形成的,是副热带季风雨季开始。后者是南海热带季风爆发后使原来由江南移到华南沿岸的副热带季风雨带随副热带高压北进而北进,前汛期雨季进入盛期,江南出现第二次雨峰,形成梅雨期和江淮及华北雨季。同时,热带季风雨带也自东向西传播到达南亚地区而形成热带季风雨季。还讨论了1998年东亚地区夏季风爆发过程,指出南海夏季风爆发期的季风由副高北侧形成的新生气旋进入南海造成南海中部西风和南海越赤道气流转向的SW季风加强汇合而形成,因而是东亚季风系统中环流系统季节变化造成的,和印度季风无关。在南海季风爆发期阿拉伯海仍由副热带反气旋控制,南亚仍是上述副热带反气旋北侧NW风南下后转向的偏西副热带气流所控制,索马里低空急流仍未爆发,赤道西风并未影响南海。  相似文献   

5.
关于东亚副热带季风若干问题的讨论   总被引:25,自引:4,他引:21  
利用NCEP/NCAR再分析格点资料、TRMM卫星降水资料、中国东部站点降水资料和CMAP降水资料,重点讨论了东亚副热带季风雨季的起始时间、建立特征及其和南海夏季风的关系,同时也讨论了东亚副热带季风的可能机制.结果表明:(1)东亚副热带季风雨季于3月底-4月初(第16-18候)在江南南部和华南北部首先开始,伴随着降水的开始是偏南风的增强和对流性降水的显著增加,华南前汛期开始.(2)东亚副热带季风雨季的建立早于热带季风雨季,在热带季风建立后两者的雨带、强西南风带、强垂直运动带、强低空水汽辐合带均是分离的,南海热带季风在其建立后,与东亚副热带季风发生相互作用,促使副热带季风雨带季节性北进,两者共同影响中国的旱涝.(3)3月中下旬,东亚大陆(包括青藏高原)上空大气由冷源转为热源,东亚大陆与西太平洋之间的纬向热力差异及其相应的温度和气压对比均发生反转.东亚大陆(包括青藏高原)的动力和热力作用究竟是否是东亚副热带季风雨带提前建立的机制值得进一步研究.文章最后讨论了有关东亚副热带季风的共识与分歧.  相似文献   

6.
2005年6月我国南方雨带异常偏南的分析   总被引:5,自引:1,他引:5  
康志明  鲍媛媛  陈晓红 《气象》2006,32(4):91-96
2005年6月我国南方雨带异常偏南。利用逐日观测资料、NCEP再分析资料以及NOAA-OLR资料对该年6月的天气形势特征和一些主要影响天气系统进行了诊断分析。讨论了西太平洋副热带高压、低层冷空气和水汽输送等与雨带异常之间的关系。结果表明西太平洋ITCZ偏弱,热带气旋少,使西太平洋副热带高压主体长时间偏南。青藏高原南部和低纬洋面上的对流异常,影响该地区季风环流,造成水汽向低纬地区集中,西南季风水汽输送带异常偏南。高层中高纬度异常环流,抑制南亚高压东段脊线北抬,高层西风异常通过动量下传,加强中低层西风锋区,冷空气南下到偏南地区等均是造成雨带异常偏南之原因。  相似文献   

7.
王庆  刘诗军 《气象科学》2006,26(2):197-202
利用NCEP/NCAR月平均风场和比湿资料分析了亚洲季风区平均水汽输送通量的气候特征和季节变化;研究了山东旱涝年季风区水汽输送的差异及其在不同时段对山东夏季降水异常的贡献。结果表明,山东地区的平均水平水汽输送通量存在着明显的年际变化,纬向、经向和总水汽输送通量随时间均呈单峰曲线分布,7月达极值;影响山东夏季降水的印度季风区水汽输送以纬向为主、副热带季风区水汽输送以经向为主;5~6月,来自热带印度洋的西南季风水汽输送通量、西太平洋热带和副热带东南季风水汽输送通量以及南海北部的水汽输送通量对山东夏季降水均有贡献,涝年水汽输送通量明显大于旱年。虽然7月来自印度洋的西南季风水汽输送通量达极值,但对山东夏季降水异常的贡献并不显著,7~8月主要是来自西太平洋地区的热带和副热带季风水汽输送对山东夏季降水异常的贡献较明显。  相似文献   

8.
根据1998年南海夏季风试验期间GAME/HUBEX一天4次同化资料,着重分析了1998年南海夏季风爆发前后大尺度水汽输送的主要特征,结果表明大尺度水汽条件与季风活动密切相关。南海夏季风爆发前后,南海地区主要的水汽输送带发生了较大变化。季风爆发前,南海地区水汽主要来自西太平洋;季风爆发后,水汽主要来自热带东印度洋和盂加拉湾。降水过程与水汽辐合的极大值密切相关,而主要水汽辐合带位置的移动及强度的变化则和南海夏季风相联系。随着南海夏季风的建立、加强,南海地区的水汽辐合带相应地建立和加强,并伴有降水发生。季风爆发后南海地区大气的可降水量较季风爆发前显著增加。季风爆发前大气的水汽汇中心主要出现在中南半岛及我国华南沿海地区,南海夏季风爆发后,从孟加拉湾到南海水汽输送加强,南海大部、孟加拉湾北部和菲律宾以东的洋面上均转为水汽汇区,从而对南海、日本及其以南的降水产生重要影响。  相似文献   

9.
夏季水汽输送特征及其与中国降水异常的关系   总被引:25,自引:2,他引:25  
利用1958-1999年NCEP/NCAR再分析资料研究了水汽输送特征,表明:全球纬向水汽输送在南北半球中高纬度由西向东,在低纬由东向西,分别与中纬度西风带和热带东风带一致,经向输送在夏季由南半球向北半球输送,冬季则刚好相反,就全年来说水汽也是从南半球向北半球输送。南北半球副热带地区是大气水汽源,热带和中高纬是大气水汽汇,夏季中国大部分地区也是水汽汇。讨论了中国夏季3类雨型与异常水汽输送的关系,结果表明中间型雨带对应中国东部有一支东北异常水汽输送和另一支西南异常输送在长江流域辐合;南方型雨带对应一支东北异常输送和另一支来自西太平洋副高西北侧的西南异常输送在华南辐合,北方型雨带对应中纬度西风异常输送与副高西北侧的西南异常常输送在华北辐合。  相似文献   

10.
分析了1983年江淮流域入梅前、梅雨期以及出梅后垂直积分的水汽输送和水汽通量散度分布,计算了南海和中国东部地区的水汽收支。结果指出:江淮流域入梅前,华南地区降水的水汽主要来自印度西南季风和东南季风气流;梅雨期降水的水汽主要来自印度西南季风气流;出梅后华北雨季则主要受中低纬水汽输送气流汇合的影响。分析表明,江淮流域梅雨期是印度西南季风气流加强并东进北上,西太平洋高压东撤所造成的;而梅雨结束则是由于西南季风气流减弱西退和西太平洋高压西进北上所造成的;此外,还讨论了水汽输送、水汽通量辐合与云量及我国东部降水的关系。  相似文献   

11.
Using the NCAR/NCEP (National Center for Atmospheric Research/National Centers for Environmental Prediction) reanalysis and the NOAA Climate Prediction Center's merged analysis of precipitation (CMAP)during 1981-2000, we investigated the seasonal evolution of the southwesterly wind and associated precipitation over the eastern China-subtropical western North Pacific area and its relationship with the tropical monsoon and rainfall, and analyzed the reasons responsible for the onset and development of the wind. It was found that the persistent southwesterly wind appears over southern China and the subtropical western Pacific the earliest in early spring, and then expands southwards to the tropics and advances northward to the midlatitudes. From winter to summer, the seasonal variation of surface heating over western China and the subtropical western Pacific may result in an earlier reversal of the westward tropospheric temperature gradient over the subtropics relative to the tropics, which may contribute to the earliest beginning of the subtropical southwesterly wind. Additionally, the strengthening and eastward expanding of the trough near the eastern Tibetan Plateau as well as the strengthening and westward moving of the western Pacific subtropical high also exert positive influences on the beginning and development of the subtropical southwesterly wind.In early summer,the northward expansion of the southwesterly wind over southern China is associated with a northward shift of the subtropical high, while the southward stretch of the southwesterly wind is associated with a southward stretch of the trough in the eastern side of the plateau. With the beginning and northward expansion of the subtropical southwesterly wind (namely southwest monsoon), convergences of the low-level air and water vapor and associated upward motion in front of the strongest southwesterly wind core also strengthen and move northward, leading to an increase in rainfall intensity and a northward shift of the rain belt. Accordingly, the subtropical rainy season occurs the earliest over southern China in spring, moves northward to the Yangtze-Huaihe River valley in early summer, and arrives in North China in mid summer.Compared with the subtropical rainy season, the tropical rainy season begins later and stays mainly over the tropics, not pronouncedly moving into the subtropics. Clearly, the Meiyu rainfall over the Yangtze-Huaihe River valley in early summer results from a northward shift of the spring rain belt over southern China,instead of a northward shift of the tropical monsoon rain belt. Before the onset of the tropical monsoon,water vapor over the subtropical monsoon region comes mainly from the coasts of the northern Indo-China Peninsula and southern China. After the onset, one branch of the water vapor flow comes from the Bay of Bengal, entering into eastern China and the subtropical western Pacific via southwestern China and the South China Sea, and another branch comes from the tropical western North Pacific, moving northwestward along the west edge of the western Pacific subtropical high and entering into the subtropics.  相似文献   

12.
Using the 5-day averaged data from the National Center for Environmental Prediction/National Center for Atmospheric Research (NCEP/NCAR) reanalysis, and precipitation from rain gauge stations in China for the period 1981–2000, we investigated seasonal variations and associated atmospheric circulation and precipitation of the southwesterly wind over eastern China. The southwesterly wind over eastern China begins earliest over southeastern China and strengthens gradually from spring to the early summer, as it extends northward. The strengthening of the spring southwesterly wind, the tropospheric upward motion, and the convergence of low-level water vapor over southeastern China results in the beginning of the local rainy season. The beginning of the Mei-yu (Plum rainfall) is connected with the northward march of the southwesterly wind. The southwesterly wind reaches the valley of the Yangtze River in the early summer and northern China in the middle summer. This signifies an onset of the large-scale southwesterly wind over eastern China. Accordingly, the rain belt over southeastern China moves to the valley of the Yangtze River in the early summer and to northern China in the middle summer. Moreover, the southerly wind extends southward to the South China Sea from the spring to summer, though it does not stretch from the South China Sea to southeastern China at those times. The strengthening of the southerly wind over southeastern China is associated with a weakening/strengthening of the eastward/westward subtropical tropospheric temperature gradient between southwestern China and the western North Pacific. The developments of a low-pressure system over southwestern China and the subtropical high-pressure system over the western North Pacific may contribute to the strengthening of the southwesterly wind. A northward advance of the high-pressure system favors the southwesterly wind stretching from southeastern China to northern China. The onset of the Indian summer monsoon also strengthens the summer southwesterly wind over eastern China.  相似文献   

13.
Using daily observational rainfall data covered 194 stations of China from 1961 to 1995 and NCEP model analyzed pentad precipitation data of global grid point from 1979 to 1997,the distribution of onset date of rainy season over Asian area from spring to summer is studied in this paper.The analyzed results show that there exist two stages of rainy season onset over East Asian region from spring to summer rainy season onset accompanying subtropical monsoon and tropical monsoon respectively.The former rain belt is mainly formed by the convergence of cold air and the recurred southwesterly flow from western part of subtropical high and westerly flow from the so-called western trough of subtropical region occurring during winter to spring over South Asia.The latter is formed in the process of subtropical monsoon rain belt over inshore regions of South China Sea originally coming from south of Changjiang (Yangtze) River Basin advancing with northward shift of subtropical high after the onset of tropical monsoon over South China Sea.The pre-flood rainy season over South China region then came into mature period and the second peak of rainfall appeared.Meiyu,the rainy season over Changjiang-Huaihe River Basin and North China then formed consequently.The process of summer tropical monsoon onset over South China Sea in 1998 is also discussed in this paper.It indicated that the monsoon during summer tropical monsoon onset over South China Sea is the result of the westerly flow over middle part of South China Sea,which is from the new generated cyclone formed in north subtropical high entering into South China Sea,converged with the tropical southwesterly flow recurred by the intensified cross-equatorial flow.  相似文献   

14.
ON THE PROCESS OF SUMMER MONSOON ONSET OVER EAST ASIA   总被引:6,自引:0,他引:6  
Using daily observational rainfall data covered 194 stations of China from 1961 to 1995 andNCEP model analyzed pentad precipitation data of global grid point from 1979 to 1997,thedistribution of onset date of rainy season over Asian area from spring to summer is studied in thispaper.The analyzed results show that there exist two stages of rainy season onset over East Asianregion from spring to summer rainy season onset accompanying subtropical monsoon and tropicalmonsoon respectively.The former rain belt is mainly formed by the convergence of cold air and therecurred southwesterly flow from western part of subtropical high and westerly flow from the so-called western trough of subtropical region occurring during winter to spring over South Asia.Thelatter is formed in the process of subtropical monsoon rain belt over inshore regions of South ChinaSea originally coming from south of Changjiang (Yangtze) River Basin advancing with northwardshift of subtropical high after the onset of tropical monsoon over South China Sea.The pre-floodrainy season over South China region then came into mature period and the second peak of rainfallappeared.Meiyu,the rainy season over Changjiang-Huaihe River Basin and North China thenformed consequently.The process of summer tropical monsoon onset over South China Sea in 1998is also discussed in this paper.It indicated that the monsoon during summer tropical monsoononset over South China Sea is the result of the westerly flow over middle part of South China Sea,which is from the new generated cyclone formed in north subtropical high entering into SouthChina Sea,converged with the tropical southwesterly flow recurred by the intensified cross-equatorial flow.  相似文献   

15.
Based on the ERA-40 and NCEP/NCAR reanalysis data,the NOAA Climate Prediction Center’s merged analysis of precipitation(CMAP),and the fifth-generation PSU/NCAR Mesoscale Model version 3(MM5v3),we defined a monsoon intensity index over the East Asian tropical region and analyzed the impacts of summer(June-July) South China Sea(SCS) monsoon anomaly on monsoon precipitation over the middle-lower reaches of the Yangtze River(MLRYR) using both observational data analysis and numerical simulation methods.The results from the data analysis show that the interannual variations of the tropical monsoon over the SCS are negatively correlated with the southwesterly winds and precipitation over the MLRYR during June-July.Corresponding to stronger(weaker) tropical monsoon and precipitation,the southwesterly winds are weaker(stronger) over the MLRYR,with less(more) local precipitation.The simulation results further exhibit that when changing the SCS monsoon intensity,there are significant variations of monsoon and precipitation over the MLRYR.The simulated anomalies generally consist with the observations,which verifies the impact of the tropical monsoon on the monsoon precipitation over the MLRYR.This impact might be supported by certain physical processes.Moreover,when the tropical summer monsoon is stronger,the tropical anomalous westerly winds and positive precipitation anomalies usually maintain in the tropics and do not move northward into the MLRYR,hence the transport of water vapor toward southern China is weakened and the southwest flow and precipitation over southern China are also attenuated.On the other hand,the strengthened tropical monsoon may result in the weakening and southward shift of the western Pacific subtropical high through self-adjustment of the atmospheric circulation,leading to the weakening of the monsoon flows and precipitation over the MLRYR.  相似文献   

16.
夏季亚洲季风槽的断裂过程及其结构特征   总被引:2,自引:0,他引:2  
本文分析了1982年7月一次亚洲季风槽的断裂过程。结果发现,在盛夏亚洲季风盛行期间,中南半岛与南海地区的季风槽可在西太平洋副热带高压东退与孟加拉湾季风低压的西移过程中断裂消失。与此同时,热带西南季风北进,梅雨雨带北移,雨景加大。此外,根据季风区内纬向风的垂直结构,说明了下列事实的成因:在印度和中南半岛季风槽附近及其南侧广大地区内,经常出现大量的季风云团和季风低压;而在西太平洋季风槽的北侧及槽的附近,则经常产生强的热带气旋和台风螺旋云系;南海地区的状况介于以上两者之间,在这里可以有弱的台风生成,也可以有季风云团存在。   相似文献   

17.
I.INTRODUCTIONEastAsiaissituatedintheeasternpartoftheEurasiancontinentwherethehugeTibetanPlateauexists.Facingeastandsoutheast...  相似文献   

18.
The 1999 East Asian summer monsoon was very unusual for its weak northward advance and remarkably anomalous climate conditions. The monsoonal southwesterly airflow and related rain belt in East Asia were blocked south of the Yangtze River Valley. The monsoonal airflow and major moisture transport conduct shifted eastward and turned northward to Japan from the tropical western Pacific rather than to East China from the South China Sea (SCS) as in normal years. Severe and prolonged drought occurred over extensive areas of North China and heavy precipitation in South China and Japan. The investigation on the possible intrinsic mechanisms related to such an anomalous monsoon year has shown that the unique behavior of intraseasonal oscillation may play an essential role during this process. During this year, the northward propagation of 30-60-day anomalous low-level cyclone/anticyclone collapsed in the region around 20°N and did not extend beyond the latitudes of the Yangtze River basin due to the barrier of strong cold air intrusion from the mid-latitudes. The southwesterly moisture flux on the northwestern flank of the anticyclonic moisture transport system in the western North Pacific, which was regulated by the northward shift of 30-60-day cyclonic/anticyclonic moisture transport, also did not reach the region north of 30°N as well. Under this circumstance, the weak northward advance of the monsoon westerlies and associated northward moisture transport could not arrive in North China and led to the severe droughts there in 1999. The SCS and South China were mostly affected by the airflow in the southern and northern flanks of the same 30-60-day cyclones or anticyclones, respectively, and thus controlled by the nearly reverse zonal wind and moisture convergent/divergent conditions. The rainfall in the SCS and South China showed out-of-phase oscillation through the transient local Hadley circulation, with the rainfall maximum occurring in the SCS (South China) when the 30-60-day anticyclone (cyclone) r  相似文献   

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