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1.
赤道涡旋与南海夏季风爆发   总被引:10,自引:0,他引:10  
谢安  刘霞  YeQian 《气象学报》1997,55(5):611-619
文中应用1979-1995年共17a的850hPa风场资料和NOAA卫星的OLR资料,分析了南海夏季风爆发的特征。证实南海夏季风爆发,落后于同纬度的中南半岛和菲律宾岛屿地区。但在南海的东部和西部,季风爆发几乎是同时的,具有某种驻波的特征。文中还证实,大多数年份的4,5月间在105°E附近有赤道涡旋形成,这个涡旋引导它上游的赤道西风或南半球西风进入南海南部,为南海的季风爆发创造有利条件。这种涡旋不活跃的年份,季风爆发往往偏晚。它们之间可能存在某种联系。4月中旬,这个涡旋的形成和105°E越赤道气流的初步建立是同时的。进入5月份,这支越赤道气流逐渐加强。南海夏季风的活动与这支气流可能关系密切。如果称位于105°E附近的赤道涡旋为东亚的爆发涡旋,它显然与南亚季风的情况有较大差别。南亚的爆发涡旋与季风爆发的关系是直接的,而在东亚,则是间接的,这也说明了东亚季风比南亚季风更具有复杂性。  相似文献   

2.
The time and space variations of the ten-day mean surface sensible heat flux have beenanalyzed in this paper based on the data of NCEP/NCAR from January of 1979 to December of1995 in the South China Sea(SCS)monsoon region.It is found that large variations of the surfacesensible heat flux standard deviations exist in the northwestern Indochina Peninsula and the IndianPeninsula regions,and their locations and strength change significantly during the onset period ofSCS monsoon.The negative deviations appear evidently earlier in the Indocbina Peninsula than inthe Indian Peninsula but the deviation strength in the Indian Peninsula is stronger than that in theIndochina Peninsula.The appearance of the zonal negative mean deviations in the southern part ofthe Indochina Peninsula corresponds to the date of the SCS summer monsoon onset,while theoccurrence of the deviation decrease corresponds to the date of the South Asian monsoon onset.The sensible heat flux increases dekad by dekad before the onset of the summer monsoon in theIndian Peninsula and the Indochina Peninsula and decreases after the monsoon onset.Therefore,the surface sensible heat flux changes in the Indochina and the Indian Peninsula regions maybe havesome connections with the SCS monsoon onset and the Indian monsoon onset,and the IndochinaPeninsula maybe becomes the sensitive or key region to the SCS monsoon onset and the land maybeplays an important role in triggering summer monsoon onset.  相似文献   

3.
The temporal and spatial variations of the ten-day mean surface latent heat flux (TMLH) havebeen analyzed in this paper based on the data of NCEP from January of 1979 to December of 1995in the South China Sea (SCS) monsoon region. It is found that there exist maximum centers ofTMLH standard deviation in the northwest Indochina and the Indian Peninsula as well as thewestern Pacific, SCS, the Indian Ocean and the Bay of Bengal, and their locations and strengthschange significantly during the period of SCS monsoon onset. A positive zonal deviation of TMLHoccurs first in the Indochina Peninsula, apparently earlier than that in the Indian Peninsula. Theappearance of maximum positive zonal deviations of TMLH approximately coincides with thesummer monsoon onset. Over the Indochina and Indian Peninsulas, the TMLH increases graduallywith a small amplitude of variation before the onset of summer monsoon, and the rate of increase issignificantly enhanced after the onset of the monsoon; whereas over the ocean, TMLH decreasesbefore the monsoon onset, varies little during the period of monsoon and increases gradually afterthe ending of monsoon. Therefore, it seems that the surface latent heat flux plays an importantrole in the maintenance of the summer monsoon, and its variation is an phenomenon accompanyingthe onset of summer monsoon.  相似文献   

4.
亚洲热带夏季风的首发地区和机理研究   总被引:28,自引:5,他引:28  
文中分析了多年逐候平均 85 0hPa风场和黑体辐射温度等物理量的时空演变 ,结果表明 ,90°E以东的孟加拉湾、中南半岛和南海是亚洲热带夏季风首先爆发的地区 ,爆发时间在 2 7~ 2 8候 ,具有突发性和同时性。 90°E以西的印度半岛和阿拉伯海是热带夏季风爆发较晚的地区 ,季风首先在该区 10°N以南爆发 ,时间约在 30~ 31候 ,然后向北推进 ,6月末在全区建立 ,爆发过程具有渐进性。机制分析表明 ,由于 110~ 12 0°E的中高纬东亚大陆在春季和初夏地面感热通量、温度和气压的迅速变化 ,使热带低压带首先在该处冲破高压带 ,生成大陆低压 ,并引导西南气流在 90°E以东地区首先建立。在 90°E以西的印度半岛地区 ,地面感热通量在 4~ 5月间几乎没有明显变化 ,因而印度季风比南海季风晚爆发约 1个月。由此得出 ,90°E是东亚夏季风和南亚夏季风的分界线。此外 ,还着重探讨了南亚高压的季节变化与亚洲热带夏季风爆发的时间联系。发现南亚高压中心位置与亚洲热带夏季风爆发时间有较好的对应关系。南亚高压中心跳过 2 0°N时 ,南海夏季风爆发 ,跳过 2 5°N时 ,印度夏季风在其南部爆发。将用上述方法确定的爆发时间与用其他方法确定的爆发时间相比较 ,发现它们在南海地区有较好的一致性 ,在印度地区略有差异。  相似文献   

5.
夏季风爆发伴随着风场和大气温湿度的急剧变化,我国风云气象卫星反演的云导风(AMV)和黑体亮温(TBB)产品可从大气动力和热力两个方面对夏季风活动进行实时监测。根据气象卫星AMV和TBB资料综合分析,选择南海夏季风监测区域为110~120 °E,10~20 °N。夏季风爆发期间,对流层高层(150~300 hPa高度层范围)云导风由偏西风转为偏东风,风云气象卫星区域日平均TBB下降至280 K以下,综合利用AMV和TBB双指标可更好描述南海夏季风的爆发特征。定义气象卫星监测南海夏季风爆发判别方法为:4月15日以后,AMV和TBB指标同时稳定大于临界值,其中,AMV指标稳定是指持续10天且中断不超过5天,TBB指标稳定是指维持5天。该判别方法可为南海夏季风业务服务和研究提供参考。   相似文献   

6.
The time and space variations of the ten-day mean surface sensible heat flux have been analyzed in this paper based on the data of NCEP/NCAR from January of 1979 to December of 1995 in the South China Sea (SCS) monsoon region.It is found that large variations of the surface sensible heat flux standard deviations exist in the northwestern Indochina Peninsula and the Indian Peninsula regions,and their locations and strength change significantly during the onset period of SCS monsoon.The negative deviations appear evidently earlier in the Indocbina Peninsula than in the Indian Peninsula but the deviation strength in the Indian Peninsula is stronger than that in the Indochina Peninsula.The appearance of the zonal negative mean deviations in the southern part of the Indochina Peninsula corresponds to the date of the SCS summer monsoon onset,while the occurrence of the deviation decrease corresponds to the date of the South Asian monsoon onset.The sensible heat flux increases dekad by dekad before the onset of the summer monsoon in the Indian Peninsula and the Indochina Peninsula and decreases after the monsoon onset.Therefore,the surface sensible heat flux changes in the Indochina and the Indian Peninsula regions maybe have some connections with the SCS monsoon onset and the Indian monsoon onset,and the Indochina Peninsula maybe becomes the sensitive or key region to the SCS monsoon onset and the land maybe plays an important role in triggering summer monsoon onset.  相似文献   

7.
The temporal and spatial variations of the ten-day mean surface latent heat flux (TMLH) have been analyzed in this paper based on the data of NCEP from January of 1979 to December of 1995 in the South China Sea (SCS) monsoon region.It is found that there exist maximum centers of TMLH standard deviation in the northwest Indochina and the Indian Peninsula as well as the western Pacific,SCS,the Indian Ocean and the Bay of Bengal,and their locations and strengths change significantly during the period of SCS monsoon onset.A positive zonal deviation of TMLH occurs first in the Indochina Peninsula,apparently earlier than that in the Indian Peninsula.The appearance of maximum positive zonal deviations of TMLH approximately coincides with the summer monsoon onset.Over the Indochina and Indian Peninsulas,the TMLH increases gradually with a small amplitude of variation before the onset of summer monsoon,and the rate of increase is significantly enhanced after the onset of the monsoon; whereas over the ocean,TMLH decreases before the monsoon onset,varies little during the period of monsoon and increases gradually after the ending of monsoon.Therefore,it seems that the surface latent heat flux plays an important role in the maintenance of the summer monsoon,and its variation is an phenomenon accompanying the onset of summer monsoon.  相似文献   

8.
The Earliest Onset Areas and Mechanism of the Tropical Asian Summer Monsoon   总被引:1,自引:0,他引:1  
The multi-yearly averaged pentad meteorological fields at 850 hPa of the NCEP/NCAR reanalysis dada and the TBB fields of the Japan Meteorological Agency during 1980-1994 are analyzed. It is found that if the pentad is taken as the time unit of the monsoon onset, then the tropical Asian summer monsoon (TASM) onsets earliest, simultaneously and abruptly over the whole area in the Bay of Bengal (BOB), the Indo-China Peninsula (ICP), and the South China Sea (SCS), east of 90°E, in the 27th to 28th pentads of a year (Pentads 3 to 4 in May), while it onsets later in the India Peninsula (IP) and the Arabian Sea (AS), west of 90°E. The TASM bursts first at the south end of the IP in the 30th to 31st pentads near 10°N, and advances gradually northward to the whole area, by the end of June. Analysis of the possible mechanism depicts that the rapid changes of the surface sensible heat flux, air temperature, and pressure in spring and early summer in the middle to high latitudes of the East Asian continent between 100°E and 120癊are crucially responsible for the earliest onset of the TASM in the BOB to the SCS areas. It is their rapid changes that induce a continental depression to form and break through the high system of pressure originally located in the above continental areas. The low depression in turn introduces the southwesterly to come into the BOB to the SCS areas, east of 90°E, and thus makes the SCS summer monsoon (SCSSM) burst out earliest in Asia. In the IP to the AS areas, west of 90°E, the surface sensible heat flux almost does not experience obvious change during April and May, which makes the tropical Indian summer monsoon (TISM) onset later than the SCSSM by about a month. Therefore, it is concluded that the meridian of 90°E is the demarcation line between the South Asian summer monsoon (SASM, i.e., the TISM) and the East Asian summer monsoon (EASM, including the SCSSM). Besides, the temporal relations between the TASM onset and the seasonal variation of the South Asian high (SAH) are discussed, too, and it is found that there are good relations between the monsoon onset time and the SAH center positions. When the SAH center advances to north of 20°N, the SCSSM onsets, and to north of 25°N, the TISM onsets at its south end. Comparison between the onset time such determined and that with other methodologies shows fair consistency in the SCS area and some differences in the IP area.  相似文献   

9.
Using NCEP reanalysis data and an airflow trajectory model based on the Lagrangian method, the Hybrid Single-Particle Lagrangian Integrated Trajectory (HYSPLIT) model, the daily backward trajectories on the height of 850 hPa above the South China Sea (SCS) area are simulated from April to June. The onset date of the SCS summer monsoon from 1948 to 2009 is determined according to the simulated source of airflow in the monitored area of the SCS. By analyzing the SCS monsoon onset dates over the 62 years, we found that the number of years in which the SCS monsoon onset is earlier accounts for 13%, and the later years 14%, the normal years 73%, of all the 62 years. Analyses with the Lagrangian method, done in comparison with the other two methods which combine wind and potential pseudo-equivalent temperature, were performed to determine the onset dates of the SCS summer monsoon. In some years, the source of the southwest airflow in the monitored area of the SCS is in the subtropical region before the onset of the SCS monsoon, so the airflow from the subtropics can be distinguished with the airflow from the tropics by using the Lagrangian method. The simulation by the trajectory model indicated that in some years, after the onset of SCS summer monsoon, the SCS will be controlled by the southeast wind instead of the southwesterly usually expected.  相似文献   

10.
孟加拉湾季风爆发对南海季风爆发的影响Ⅰ:个例分析   总被引:11,自引:4,他引:11       下载免费PDF全文
利用南海季风试验分析场和NCAR向外长波辐射通量(OLR)资料研究了1998年孟加拉湾季风和南海季风爆发期间副热带环流的大尺度和天气尺度特征,探讨了孟加拉湾季风爆发与南海季风爆发之间的物理联系及孟加拉湾季风气旋的对流凝结潜热释放对副热带高压“撤出”南海的影响。结果表明,1998年5月爆发的东亚季风展现出典型的从孟加拉湾地区东传发展到南海地区的过程。随着孟加拉湾季风爆发和对流活动增强、北移,南海北部出现了低层西风和对流活动,领先于副热带高压在南海地区减弱和撤退。结果还显示南海北部地区的对流凝结加热有助于该地区经向温度梯度的反转,在热成风关系的制约下南海上空副热带高压脊面的垂直倾斜由冬季型转向夏季型,季风爆发。  相似文献   

11.
蒙伟光  郑彬 《气象学报》2006,64(1):81-89
在对南海夏季风的爆发及中南半岛陆面过程的可能影响进行了诊断分析的基础上,应用MM5/NOAHLSM模式,研究了中南半岛陆气相互作用对2004年南海夏季风爆发过程的可能影响。结果发现:在南海夏季风爆发前,中南半岛南海地区低层气温差确实出现低值,甚至负值;尽管短期内中南半岛土壤湿度和降水的变化没有引起季风爆发日期的改变,但对季风爆发的强度有影响。土壤湿度和降水变化引起的干异常可导致地表感热通量的增大和地表温度的升高,致使中南半岛与南海之间低层的温差异常(负温差)减小,季风爆发强度减弱;不同的是,湿异常可引起季风爆发强度增强。这一结果说明,在南海夏季风爆发前期,中南半岛上空对流活动和降水异常及其引起的土壤湿度的异常变化在一定程度上会影响到季风爆发的过程。文章还比较了不同温湿地表条件下低层大气状态的差异和地表能量、水分平衡过程的不同,分析了陆气相互作用对季风活动产生影响的物理机制。  相似文献   

12.
柳艳菊  丁一汇 《气象学报》2005,63(4):443-454
通过对1998年南海季风爆发过程中大尺度风场、温度场、厚度场、地面气压场以及视热源与视水汽汇的演变分析研究了对流活动对大尺度场的作用,结果表明:大尺度环流与中尺度对流活动之间可能存在着一种正反馈机制。在季风爆发早期,大尺度背景与中尺度对流活动的关系主要表现为前者为季风爆发以及中尺度对流活动的发生提供有利的天气和动力条件;季风爆发后期持续的大范围中尺度对流活动反过来会对大尺度环流存在明显的反馈作用。由对流活动强烈发展产生的凝结潜热释放在南海北部造成了显著的大气加热,使对流层中上层出现一明显的加热中心,这导致:(1)南海上空经向温度梯度由高层向低层发生反向,形成北高南低的温度梯度,从而使大尺度环流发生季节性改变;(2)相应南海北部地面气压不断加深,形成宽广的季风槽和明显的减压区,促使副热带高压从南海地区最后撤离;(3)随着中低层低压环流的不断发展,对流系统和降水区进一步加强并向南扩展,有利于南海季风在南海中、南部地区爆发和维持;(4)季风槽的加深使其南侧的季风气流与水汽输送进一步加强,促使季风爆发过程达到盛期。  相似文献   

13.
南海夏季风演变的气候学特征   总被引:17,自引:2,他引:17  
王启  丁一汇 《气象学报》1997,55(4):466-483
本文总结南海北部地区夏季风演变的气候学特征,发现南海地区5月第3候对流层高层东风和北风爆发,对流层低层西风第1次跃升,东亚经向季风环流圈开始形成,这可以成为南海地区夏季风爆发的标志。对流层低层西风在6月中旬开始的第2次连续跃升对应江淮地区的梅雨爆发期。类似地,中国大陆夏季对流层低层5月初和6月初有两次爆发性增暖过程,第2次比第1次强烈得多。南海北部地区对流层低层纬向风速、比湿盛夏呈双峰型,纬向风速峰值分别出现在6月第5候和8月第4候,比湿峰值分别出现在6月第6候和8月第5候。比湿突升对应纬向风速突升,但略落后于风速峰值出现的时间。南海北部地区季风爆发前,温度是波动式上升的,南海季风爆发后,温度是波动式下降的。中国大陆东部及南海地区夏季对流层低层比湿分布有3次突变,即4月中旬南海北部比湿突增,并开始出现高比湿中心,而南海南部为最大比湿中心;5月中旬最大比湿中心已从南海南部跳到了南海北部-华南并向江淮流域扩展;6月中旬江淮流域比湿突增并一直维持到8月,同时南海南部高比湿带消失。而5月中旬OLR有一次突变,OLR低值区爆发性向北扩张,这对应于南海地区夏季风的爆发。而孟加拉湾地区夏季风演变的气候学特征与南海地区有较  相似文献   

14.
南海及其邻近地区夏季风爆发的特征及其机制的初步研究   总被引:35,自引:6,他引:29  
利用OLR和TBB资料,提出一个指标,确定了1975~1993年间南海夏季风爆发日期,发现与风向转变的日期比较一致。在此基础上,讨论了南海夏季风爆发的过程。随后,还讨论了南海夏季风爆发与海温异常、高原热状况和海陆温差变化的关系,发现它与4月份南海、东太平洋赤道以及30~40°NSSTA有关,与海陆温差由冬季的冷陆暖海转变到热陆冷海有关。  相似文献   

15.
By using the NCEP reanalysis data set in 1979-1995, the fluxes of the latent heat, thesensible heat and the net long-wave radiation in the South China Sea (SCS) are expanded by meansof EOF in order to discuss the basic climatological features in the SCS. The detailed analysis showsthat the air-sea heat exchanges in different SCS regions have different seasonal variations. Themiddle and the north of the SCS are the high value regions of the air-sea heat exchanges during thewinter and the summer monsoon periods, respectively, the seasonal variations of air-sea heatexchanges in the south of the SCS are small. In addition, the proportions of different componentsin the total air-sea heat exchanges have different seasonal variations in different regions. Theresults show that the SCS monsoon and the air-sea heat exchanges in the SCS region are theaccompaniments of each other, the great difference of the sensible heat flux between the IndochinaPeninsula and the SCS before the SCS summer monsoon onset may be one of the triggers of thelatter. There maintains a high value center of the sensible heat flux before the 13th dekad, itsdisappearing time consists with that of the summer monsoon onset. It means that as far as the SCSlocal conditions are concerned, the northwest of the Indochina Peninsula is probably a sensitiveregion to the SCS summer monsoon onset and the land may play a leading role in the SCS summermonsoon onset.  相似文献   

16.
东亚夏季风建立过程中的大气能量变化   总被引:1,自引:0,他引:1  
本文利用1980、1981年4—6月资料,分析了0°—25°N、95°—120°E区域中的大气能量变化。发现在东亚夏季风建立过程中,该区域中能量水平收支和分布均发生了明显的变化,并能较好地反映出东亚夏季风的建立早晚和强弱差异。对总能量各项的计算结果表明:潜热能是东亚夏季风建立过程中的一个重要影响因子。 文章还初步研究了东亚夏季风建立前期,中低纬环流之间相互作用的动力学表现。指出90°—125°E之间,前期越过35°N向南输送的涡动动量对东亚夏季风建立具有触发作用。   相似文献   

17.
南海西南季风爆发的气候特征   总被引:56,自引:9,他引:56  
阎俊岳 《气象学报》1997,55(2):174-186
利用多年的海洋船舶、岛屿站和沿岸站观测记录及卫星观测的高反射云(HRC)资料,揭示南海西南季风爆发和建立时期的环流特征及要素变化。在南海,西南季风爆发的平均时间为5月中旬,北部略早(5月12日),南部略迟(5月20日),但年际差别可达一个月左右。伴随着西南季风的爆发,南海云量和降水量增多,对流加强,但海区之间具有很大的不均匀性。西南季风建立以后,强对流区稳定于南海中部,季风雨带没有明显的跳跃现象。西南季风爆发之前,南海表层温度迅速升高,其开始时间较季风爆发约提前一个月,海面水温的升高为季风爆发提供了热量和水汽条件。4—5月,南海海面热交换分量(海面吸收的太阳辐射、潜热输送等)发生明显的改变,特别是潜热交换和蒸发量明显增大,它可能是西南季风首先在南海爆发的原因之一。  相似文献   

18.
This paper presents a study on the temporal and spatial variations of the precipitation over the area of the South China Sea (SCS) during the monsoon onset period. The data used are from the Tropical Rainfall Measuring Mission (TRMM) observations between April and June over the nine years from 1998 to 2006. This study focuses on the central and northern part of South China Sea (110-120°E, 10-20°N). Based on the observations, the 27th pentad is selected as the occurrence time of the SCS monsoon onset. The conclusions are as follows. (1) After the monsoon onset, the specific area, defined as the ratio of the number of pixels with certain type of precipitation to the number of total pixels, extends significantly for both convective and stratiform rain, with the latter having a larger magnitude. The specific rainfall, defined as the ratio of the amount of certain type of precipitation to the total amount of precipitation, decreases for convective rain and increases for stratiform rain. (2) Results also show significant increase in heavy rain and decrease in light rain after the monsoon onset. (3) Changes are also observed in the rainfall horizontal distributions over the SCS before and after the monsoon onset, manifested by the relocation of precipitation minima for both convective and stratiform rain. (4) After the monsoon onset, the variability in characteristics of precipitation vertical structure increases significantly, leading to more latent heat release and consequently deeper convection. Meanwhile, the bright-band altitude of stratiform precipitation is also elevated.  相似文献   

19.
Summary Interannual variations of the summer monsoon onset over the South China Sea (SCS) have been studied using data from over seventeen years (1979–1995) of NMC global analysis and of Outgoing Longwave Radiation (OLR) observed with NOAA polar-orbitting satellites. It was found that the summer monsoon onset in the SCS occurs abruptly with a sudden change of zonal wind direction from easterly to westerly and an exploding development of deep convection in the whole SCS region in the middle of May. Based on the criteria defined in this paper for the SCS summer monsoon onset, the average onset date over the SCS from 1979 to 1995 is around the fourth pentad of May. The airflow and general circulation over the SCS changes dramatically after the onset. The ridge of the subtropical high in the western Pacific in the lower troposphere weakens and retreats eastward from the SCS region with an establishment of westerly winds over the whole region. During the SCS monsoon onset, the most direct impact in the vicinity of the SCS are the equatorial westerlies in the Bay of Bengal through their eastward extension and northward movement. An indirect influence on the SCS onset is also caused by the enhancement of the Somali cross-equatorial flow and the vanishing Arabian High over the sea; the latter may be a signal for the SCS onset. There are quite significant interannual variations in the SCS onset. In the years of a delayed onset, the most profound feature is that the easterly winds stay longer in the SCS than on average. Deep convection activities are suppressed. The direct cause is the abnormal existence of the western Pacific subtropical high over the SCS region. Moreover, compared to the average, the equatorial westerlies in the Bay of Bengal are also weaker in the years of a delayed onset. No significant changes for the cross-equatorial flow at 105 °E are observed for these years. It has also been found that the interannual variations of the SCS onset are closely related with the ENSO events. In the years of a delay, the Walker circulation is weaker, and the sea surface temperature (SST) anomalies in the western Pacific are negative. Received April 14, 1997 Revised July 11, 1997  相似文献   

20.
1.IntroductionItiswellknownthattheSouthChinaSea(SCS)monsoonisnotonlyamajormemberoftheEastAsianmonsoon,butalsohasanimportantfunctionontheweatherandclimateintheSouthChinaSea,theneighboringareasandtheworld.Manyscholarsathomeandabroadhavedonevariousresearchesaboutit.Jinngetal.(1993a,1993b)foundthatthetroposphericheatingincreasesabruptly,andtheheatsourcesandthemoisturesinksbecomestrongobviouslyinthesoutheasternTibetanPlateauandtheeastplainofChinawhentheSouthChinaSeamonsoononsets.Additionally…  相似文献   

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