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1.
In this study, the outgoing longwave radiation (OLR) data of eight years have been used to investigate the annual and interannual variations of large-scale circulation over the tropics. The results of EOF analysis indicate that the first three eigenvectors reflect the essential features in OLR annual variation. However, they contribute little to the interannual change. In comparison, the fourth to the sixth components have very large year-to-year variations. The pronounced anomalies are located over the tropics with east-west dipole pattern. It implies that ENSO events are related closely to the variation of the Walker circulation.  相似文献   
2.
亚洲赤道地区大气动能的纬向传播   总被引:7,自引:1,他引:7  
基于 1980~ 1997年 85 0hPa逐日NCEP/NCAR再分析资料讨论了亚洲赤道地区 (0°~ 5°N)大气动能的纬向传播特征。结果表明 ,在亚洲季风区内 ,赤道地区大气动能 (K)的最强中心位于 75°~ 90°E ,次强中心在索马里急流区 (5 0°E附近 )。在 0°~ 5°N ,90°E以东 ,平均的大气动能扰动和赤道上经向风扰动主要起源于西太平洋 ,并向西经南海传播到孟加拉湾。而在孟加拉湾动能中心与索马里急流区之间 ,动能传播方向比较复杂。以上事实说明赤道地区东亚季风系统确实是存在的 ,与印度季风系统中扰动的传播方向不同 ,东亚季风系统中动能和经向风扰动在东西方向上主要受西太平洋的影响。在亚洲赤道季风区 ,这两个系统的交界处约在 95°~ 10 0°E附近 ,比过去界定的偏西 5~ 10个经度。  相似文献   
3.
青藏高原冬季平均温度、湿度气候特征的REOF分析   总被引:14,自引:2,他引:14       下载免费PDF全文
通过对青藏高原123个测站, 1961~1998年冬季 (12月至翌年2月) 平均温度、相对湿度资料做气候特征分析, 得到32°~33°N附近地区可能是高原南北温湿变化的分水岭, 以北主要受干冷空气影响, 以南主要受暖湿空气影响。用方差极大正交旋转EOF (即REOF) 方法对以上资料进行分析, 可以将青藏高原温度、相对湿度进行分型、分区, 并对各区的温度、相对湿度特征进行分析。结果表明, 近40年来, 各区的温度总趋势是在波动中逐步升高的。增温时段主要出现在1978~1981年及1983年至今。1983年开始的增温, 是近40年来最强的一次, 增温幅度大且持续时间长, 但从90年代开始增温幅度及范围出现波动。从温度线性倾向来看, 东部高原增温幅度从南到北存在“大—小—大”的现象。高原大部分地区湿度变化总趋势是在波动中逐步增湿的, 但高原北界以变干为主。从80年代后期至今高原进入显著增湿阶段, 但从90年代中后期开始增湿幅度及范围出现波动。从湿度线性倾向来看东部高原增湿幅度从南到北存在逐步减小现象, 甚至祁连山地区出现变干现象。  相似文献   
4.
利用98’TIPEX实验资料、1998年5-8月青藏高原6个自动热量平衡站(AWS)资料、青藏高原常规观测资料、中国300多个站的逐日降水资料、国家卫星中心接收的1998年5-8月OLR和日本GMS的TBB资料,研究了1998年5-8月青藏高原及其邻近地区逐日地面总热源的季节变化特征及其与西太平洋副热带地区对流的关系。结果表明:高原地面总热源与高原雨季开始有密切关系,高原雨季开始以后,高原平均的地面总热源明显减小;高原平均的地面总热源与20—30°N附近的西太平洋副热带地区的TBB有很好的负相关关系,表明高原地面总热源可以通过某种机制影响副热带地区的对流。  相似文献   
5.
CHANGE OF CLIMATE AND ITS INFLUENCE ON THE CROPPING SYSTEM IN CHINA   总被引:3,自引:0,他引:3       下载免费PDF全文
Tne global change of climate and its influence on the cropping system in China have been investigatedin this paper.It is found that the temperature was increased during the last decade and the precipitationdecreased in northern China and increased in southern China during the last 30 years.The sea level hasbeen rising by about 21—26 cm in the coastal areas south of 30°N in China during the last 100 years.The most of results as simulated by the general circulation models(GCMs)show that the temperature increasewould amount to about 2°—4°C in the most parts of China and precipitation and soil moisture might bedecreased in northern China and increased in sourthern China due to doubling of carbon dioxide(CO_2).The effects of doubled CO_2 on growth period and climatic yield capability in China have been estimatedroughly.It is shown that the regions of the growth period in China would be moved northward about fivedegrees latitude and the climatic yield capability might be increased by about 10% in the most parts of China.  相似文献   
6.
The calculating schemes of underlying surface processes in the model described by Li et al.(1989)are modified with inclusion of simple land surface processes and oceanic mixed layer processes,then a simulation on the zonal wind along 90°E from the Northern to the Southern Hemisphere with moun-tains is performed.Comparisons of the results and the observations show that the modified model not onlyhas an excellent stability in calculation but also can better display the seasonal change of the wind field,theability of the present model is improved as compared with that of the previous one.Based on the simulations,the authors investigate the effects of Qinghai-Xizang Plateau snow cover on theformation of South Asian monsoon by thickcning the snow depth and by increasing the snow albedo.Themain results arc as follows:The summer meridional circulation over the south of the Plateau and its vicinityis weakeued,and the precipitation reduced.However,over the northern tropics,the circulation is enhanced,and the ecipitation is increased,and the land and the air above it become warmer,the tropical easterly jetis weakened.  相似文献   
7.
By using the upper-wind data from July 1980 to June 1983,the variations of the low-frequency oscillation(LFO) in the atmosphere before and during 1982 El Nino have been investigated.Before the El Nino,the LFO propagates from west to east over the equator of the Eastern Hemisphere and from east to west over 20°N.The eastward propagating LFO over the equator consists of zonal wavenumber 1 propagating eastward and zonal wavenumber 2 with a character of stationary wave.The oscillation of zonal wavenumber 2 can modulate the oscillation strength.After the onset of the El Nino,the propagating directions of the LFO over the equator and 20°N of the Eastern Hemisphere change to be westward and eastward,respectively.The LFO over the western Pacific weakens rapidly and one coming from middle and high latitudes propagates to the equator.From the phase compositions of streamline fields for the zonal wavenumber 1 of equatorial westward propagatirg LFO,it is found that the atmospheric heat source in the equator of the eastern Pacific(EEP)excites a series of the equatorial cyclones and anticyclones which move northward and westward and form the westward propagating LFO over the equator.With the wavelength of 20000km,this kind of equatorial wave is similar to the mixing Rossby-gravity wave.In its westward and northward movement,the circulation in East Asia is modified.This may be the mechanism of the influence of El Nino on the climate of China.  相似文献   
8.
青藏高原及其附近地区大气周期振荡在OLR资料上的反映   总被引:19,自引:0,他引:19  
谢安  叶谦  陈隆勋 《气象学报》1989,47(3):272-278
本文根据最近8年卫星所接收到的地球向外长波辐射(OLR)资料,分析青藏高原及其附近地区的周期振荡特征。结果表明:除了季节变化之外,准8d振荡和30—50d低频振荡是两个很显著的周期活动,前者和高原低涡活动有关,而后者则与夏季进入高原的两条水汽通道相联系。统计说明,高原地区主要受南来系统的影响,特别在夏半年。 本文的结果表明,对于常规资料稀少的高原地区,OLR是一种很有用的资料,与其它资料结合,将有助于揭露天气事实和研究天气过程的演变。  相似文献   
9.
The atmospheric heat source strength over western Tibet has been computed for the period beginning with the last ten days in May, 1979 and extending through August, 1979. Our results show a significantly smaller heat source than that obtained by other authors. The discrepancy is mainly due to adjustments in the dray, coefficient suggested by observations and numerical modeling experiments. We subdivided western Tibet into northern and southern parts. In the north sensible heating, SH, provides the dominant input into the atmospheric heat source, whereas in the southern part latent heat, LP, offers a significant contribution after the start of the rainy season.Detailed heat budget calculations were also carried out over limited regions of southwestern Tibet which hau good station coverage. During periods with area-averaged rainfall ≤1 mm/day an atmospheric heat source maximum was located over southwestern Tibet near the 500 hPa level, while a heat sink dominated the upper troposphere in a layer of subsidence. When rainfall exceeded 4 mm/day, ascending motions and heal sources prevailed throughout the troposphere with maxima near 400 hPa. Time series analyses of the heat sourcs components show that the total atmospheric heat source is strongly modulated by the release of latent heat. Atmospheric radiational cooling reveals a phase shift in its relation with precipitation. During the first part of the observation period a correlation of that cooling exists mainly with the net radiation at the top of the atmosphere, during the last part with the net radiation at the ground.  相似文献   
10.
The atmospheric heat budget in summer over Asia monsoon area   总被引:1,自引:0,他引:1  
For better understanding the mechanism of monsoon formation and designing the numerical simulation of the general atmospheric circulation, a new approach of calculating atmospheric radiation is proposed to investigate the distribution of the atmospheric heat source, and the budget of heat component is recalculated. The results show that there is a tremendous atmospheric heat source region over central India, northeast of the Bay of Bengal, east of the South China Sea and about 10 °N at the west Pacific, among which the heating center with a maximum heating rate of 8 ℃/day is located over the Bay of Bengal and the average rate in the Plateau is about 1 ℃/day.  相似文献   
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