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1.
东亚夏季风次季节(10~90 d)变化是中国夏季持续性强降水、高温热浪等高影响天气事件的重要环流载体,处于天气预报上限和气候季节预测下限之间的预报过渡区。研究表明:东亚夏季风次季节变化是东亚夏季风的固有物理特征,它和季节进程之间的时间锁相关系是东亚夏季风次季节变化潜在可预报性的重要来源。东亚夏季风次季节变化与Madden-Julian振荡(MJO)存在显著差异,试图通过MJO来预测东亚夏季风次季节变化的不确定性较大。东亚夏季风次季节预测的另一重要来源是下垫面外强迫,包括欧亚大陆春季积雪、中国东部春季土壤湿度和厄尔尼诺-南方涛动(ENSO)事件。此外,去趋势偏-交叉相关分析统计方法能够分析东亚夏季风多因子和多时间尺度问题。目前,亟需解决的科学问题包括:东亚夏季风次季节模态的客观定量描述、造成东亚夏季风次季节模态年际变化的关键物理过程、不同外强迫因子对东亚夏季风次季节模态的共同影响。  相似文献   

2.
Since the South China Sea (SCS) summer monsoon (SCSSM) is pronouncedly featured by abruptly intensified southwesterly and obviously increased precipitation over the SCS,the lower-tropospheric winds and/or convection intensities are widely used to determine the SCSSM onset.The methods can be used successfully in most of the years but not in 2006.Due to the intrusion of Typhoon Chanchu(0601)that year,the usual method of determining SCSSM onset date by utilizing the SCS regional indices is less capable of pinpointing the real onset date.In order to solve the problem,larger-scale situations have to be taken into account.Zonal and meridional circulations would be better to determine the break-out date of SCSSM in 2006.The result indicates that its onset date is May 16.Moreover,similar onset dates for other years can be obtained using various methods,implying that large-scale zonal and meridional circulations can be used as an alternative method for determining the SCSSM onset date.  相似文献   

3.
鲍媛媛 《气象学报》2021,79(3):400-413
利用美国国家环境预报中心/国家大气研究中心(NCEP/NCAR)逐日再分析资料及美国国家海洋和大气管理局(NOAA)逐日向外长波辐射、海温距平等资料诊断分析2019年中国南海季风爆发异常偏早的机制。结果表明:(1)南海季风爆发于5月6日,青藏高原和中南半岛热源较常年弱,对季风爆发无明显影响。(2)中高纬度环流中期变化过程中在青藏高原及附近区域形成为期两周的偏强高压脊,来自热带的暖平流以及青藏高原东部晴空辐射强等因素使其温度偏高,起到加快海陆热力差异季节转变进程的作用,对季风爆发至关重要。(3)孟加拉湾气旋 “Fani”北上及登陆后迅速减弱后的残留低压的凝结潜热释放,“Fani”凝结潜热释放和气旋性环流增强诱发孟加拉湾西南季风爆发从而引起西南季风暖平流输送,因“Fani”而加强北跳的南亚高压反气旋环流的暖平流输送,“Fani”影响结束后西南季风与东亚冷槽后部回流辐合产生降水释放凝结潜热等因素,一步接一步,形成了加剧温度正距平的“接力”,最终导致中国南海地区温度梯度增强,越赤道气流增强,南海季风爆发。(4)厄尔尼诺及赤道西太平洋实时海温阶段性正距平增大使得西北太平洋副热带高压偏西偏强,本身不利于季风爆发;但其西端的偏东风在赤道印度洋与中高纬度南下的偏北气流辐合,并在赤道印度洋和孟加拉湾海温正距平阶段性增强的背景下得以强烈发展,生成孟加拉湾气旋“Fani”,其在北上过程中发展成为台风,由此引起大气环流一系列变化,最终导致南海季风的偏早爆发。   相似文献   

4.
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   

5.
利用多变量经验正交分解(MV-EOF)等方法,研究了在季节内振荡尺度上南海季风系统的时空分布特征。结果表明:南海夏季风的爆发时间在1993/1994年前后存在显著的年代际转型,由爆发偏晚转变成爆发偏早。第一模态反映了南海夏季风爆发时季风系统的时空特征,转型前后特征类似,降水场自赤道向北依次呈现干-湿-干交替分布的特征,南海中心为异常气旋。相应的大范围环流场主要反映了转型前的偏晚年,南海夏季风槽位置偏南,转型后的偏早年,南海夏季风槽位置偏北。第二模态体现了南海季风系统夏季的时空特征,转型前后共同特征表现为南海地区夏季北湿南干的南北偶极子降水分布及南海中心区的异常西风。相应的大范围环流场主要反映了南海季风活动与东亚季风呈现反位相的特点,且对流信号向北传播。转型前的偏晚年,季风活动受准双周振荡控制,对流信号由西北方向传入南海;转型后的偏早年,季风活动以30~60天振荡为主,对流信号由东南方向传播至南海。  相似文献   

6.
Previous studies have suggested that the South China Sea (SCS) summer monsoon onset is concurrent with the arrival of a 30–60-day northward-propagating trough. On the other hand, from a synoptic viewpoint, some studies pointed out that the arrival of a mid-latitude front may be the triggering mechanism of the SCSSM onset. This study attempts to link these two viewpoints and to investigate their relative role in inducing the SCSSM onset. Composites of low-level zonal winds, geopotential heights and temperatures during the 1991–1999 SCSSM onsets based on the European Centre for Medium Range Weather Forecast ERA-40 data indicate that both the Madden and Julian Oscillation (MJO)/Kelvin waves and mid-latitude trough are apparently involved in the onset. The MJO/Kelvin waves play a major role in inducing the large-scale easterly-westerly shift over the central SCS, while the effect of the acceleration of westerlies ahead of the mid-latitude trough is limited to the northern SCS only. Numerical experiments using a regional climate model further demonstrate that the MJO/Kelvin waves control the timing of the onset by changing the background meridional geopotential height gradient over the SCS. When the MJO is at its peak phase over the Maritime continent, it imposes a positive meridional geopotential height gradient over the SCS such that easterly winds are induced, which significantly reduces the strength of a mid-latitude trough. After the equatorial convection has dissipated, a Rossby-wave response is induced, leading to the formation of a northward-moving trough. When this trough moves northward, the meridional geopotential height gradient is reversed and westerly winds are induced. At the same time, if a mid-latitude trough arrives in south China, the westerlies associated with the mid-latitude trough will strengthen because of the background meridional geopotential height gradient, which gives the impression that both the northward-moving trough and mid-latitude trough are in phase and work together to induce the onset.  相似文献   

7.
Characteristics of the synoptic time scale variability over the South China Sea (SCS) are explored based on the Tropical Rainfall Measuring Mission (TRMM) and auxiliary atmospheric data. Unlike the intraseasonal oscillations, which are significant only during the summer monsoon season (May–September), the synoptic timescale disturbances are active not only during the periods of the South China Sea Summer Monsoon (SCSSM), but also after summer monsoon retreat (October–December). The maximum synoptic time scale signals occur in September. The synoptic time scale variabilities over the SCS are strong modulated by the ENSO events, especially after the retreat of the SCSSM. The synoptic timescale signals in October–December are much stronger during the La Nina years than those in the El Nino years. Moreover, the synoptic time scale variabilities over the SCS are also related the activities of the SCSSM. The synoptic time scale signals in the monsoon onset periods and the early summer are much stronger during the strong SCSSM years than during the weak SCSSM years.  相似文献   

8.
南海夏季风爆发与大气对流低频振荡的年际变化   总被引:8,自引:0,他引:8  
根据1980~1991年云顶黑体温度(TBB)相位和强度的变化确定了南海夏季风爆发的时间,分析研究了夏季风爆发期间TBB场和850hPa风场的变化过程及其与海温的关系。结果表明:南海夏季风爆发平均时间是5月第4候,它爆发的时间和强度有显著的年际变化,并与大气的低频振荡及前期海洋的热力状况有密切关系。南海夏季风爆发早年(4月第6候),副热带高压较弱,撤离南海较快,从赤道东印度洋到赤道西太平洋,大气对流活动较强,夏季风爆发南海早于孟加拉湾,季风爆发时90~100°E区域过赤道气流显著加强。夏季风爆发晚年(6月第1候)情况相反。南海夏季风爆发早晚与大气30~60天振荡到达南海的位相有关,前冬和早春南海海温的高低和4月中旬至5月中南半岛强对流区的出现时间,是南海夏季风爆发年际变化的前期征兆。根据前冬南海海温预测1998年南海夏季风爆发的时间和强度与实际相符。  相似文献   

9.
越赤道气流的季节变化及其对南海夏季风爆发的影响   总被引:20,自引:1,他引:19  
基于NCEP/NCAR资料分析了对流层越赤道气流的季节变化,指出越赤道气流中心在低层位于925hPa,在高层位于150 hPa。东半球的越赤道气流是一种典型的季风型气流,而西半球越赤道气流具有信风特征。研究结果还表明,低层的索马里和南海越赤道气流对南海夏季风的爆发有至关重要的作用,在季风爆发前2候,索马里急流有一次迅速的增强,这一增强有利于加速孟加拉湾地区西风的向东扩展,并使控制在南海上空的西太平洋副高东撤;同时,南海越赤道气流的迅速增强也推动副高北上,共同促使南海夏季风全面爆发。不仅如此,二者对季风爆发的早晚也有重要影响,当前期这两支越赤道气流建立偏早、强度偏强时,南海夏季风爆发易偏早。反之,当其建立偏晚、强度偏弱时,季风爆发易偏晚。  相似文献   

10.
2012年华南前汛期降水特征及环流异常分析   总被引:5,自引:1,他引:4  
袁媛  任福民  王艳姣  孙冷  郭艳君 《气象》2012,38(10):1247-1254
2012年华南前汛期于4月第2候开始,6月第5候结束。前汛期降水经历了三个不同的阶段:第一阶段是4月第2候至5月第3候的降水集中期(锋面降水),江南大部和华南大部降水偏多25%以上,第二阶段是5月第4候至6月第2候的少雨期,华南中部和东部降水偏少50%以上,第三阶段是6月第3—5候的第二个降水集中期(季风降水),江南东南部至华南中西部降水偏多50%以上。对各阶段大气环流距平场的分析结果表明:华南前汛期开始后,偏强的乌拉尔山高压脊导致南下的冷空气偏强,偏强的低层副热带高压使得我国南方为整层水汽输送的异常辐合区,两者共同导致华南前汛期第一阶段的锋面降水较常年同期偏多;南海夏季风在爆发后偏弱和西北太平洋副热带高压(以下简称副高)持续3候异常偏北是导致第二阶段前汛期降水明显偏少的主要原因;第三阶段,南海夏季风异常偏强,副高南落并增强,以及孟加拉湾季风槽的偏强使得华南前汛期此阶段的季风降水偏多。  相似文献   

11.
孟加拉湾西南季风与南海热带季风季节内振荡特征的比较   总被引:4,自引:2,他引:2  
李汀  琚建华 《气象学报》2013,71(3):492-504
采用美国国家环境预报中心的向外长波辐射和风场资料及日本气象厅的降水资料,用30-60d滤波后的夏季风指数在孟加拉湾和南海的区域平均值分别代表孟加拉湾西南季风和南海热带季风季节内振荡,对两支季风的季节内振荡特征进行比较分析,发现孟加拉湾西南季风的季节内振荡和南海热带季风的季节内振荡在夏季风期间(5-10月)都有约3次半的波动.夏季风期间,在阿拉伯海-西太平洋纬带上,夏季风的季节内振荡有4次从阿拉伯海的东传和3次从西太平洋的西传,其中7月后东传可直达西太平洋.孟加拉湾和南海在夏季风期间都有4次季节内振荡的经向传播,但孟加拉湾在约15°N以南为季节内振荡从热带东印度洋的北传,在约15°N以北则为副热带季风季节内振荡的南传;而在南海则是4次季节内振荡从热带的北传.在以孟加拉湾西南季风季节内振荡和南海热带季风季节内振荡分别划分的6个位相中,都存在1-3位相和4-6位相中低频对流、环流形势相反的特征,这是由热带东印度洋季节内振荡的东传和北传所致.热带印度洋季节内振荡沿西南-东北向经过约14d传到孟加拉湾,激发了孟加拉湾西南季风季节内振荡的东传,经过约6d到达南海,激发了南海热带季风季节内振荡的北传,经过约25d到达华南,形成热带印度洋季节内振荡向华南的经纬向接力传播(45d).孟加拉湾西南季风季节内振荡所影响的降水主要是在20°N以南的热带雨带随低频对流的东移而东移;而南海热带季风季节内振荡所影响的降水除了这种热带雨带随低频对流的东移外,还有在20°N以北的东亚副热带地区存在雨带随南海低频对流的北移而北移.  相似文献   

12.
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   

13.
South China Sea summer monsoon onset in relation to the off-equatorial ITCZ   总被引:3,自引:0,他引:3  
Observations of the South China Sea summer monsoon (SCSSM) demonstrate the different features between the early and late onsets of the monsoon. The determining factor related to the onset and the resultant monsoon rainfall might be the off-equatorial ITCZ besides the land-sea thermal contrast. The northward-propagating cumulus convection over the northern Indian Ocean could enhance the monsoon trough so that the effect of the horizontal advection of moisture and heat is substantially increased, thus westerlies can eventually penetrate and prevail over the South China Sea (SCS) region.  相似文献   

14.
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   

15.
南海夏季风爆发的一般特征是南亚高压移至中南半岛北部;西太平洋副热带高压连续向东撤出南海地区,移到120°E以东的热带洋面上;高(低)空东北(西南)气流占据南海大部分地区,相应的105°E附近的越赤道气流建立,南海季风槽形成并同时伴有对流降水的发展和温、湿等要素的突变。国家气候中心的监测表明,2007年南海夏季风于5月第5候爆发。该年季风爆发后,虽然源自热带地区的低空西南气流迅速占据南海上空,高空盛行东北气流,且南亚高压西移至中南半岛上空,但对流、高度场以及降水场的突变特征均很不明显,表现为季风爆发后南海上空的对流依然偏弱,副高没有马上撤离南海,同时华南地区的降水量也没有迅速增强。因此,2007年南海夏季风爆发前后大气环流的变化特征具有非典型性。  相似文献   

16.
利用大尺度环流确定2006年南海夏季风爆发日期   总被引:4,自引:0,他引:4  
南海夏季风爆发最显著的特征就是南海地区西南风的突然增强和降水的明显增多,往往采用南海地区低层平均风场和(或)对流强度来判别南海夏季风的爆发日期。这种方法在大多数的年份是适用的,但是2006年由于0601号台风“珍珠”的介入,利用南海地区的区域指标来确定南海夏季风的爆发日期就略显不足。要解决以上的问题,必须从更大尺度上去想办法。利用经圈和纬圈环流可以较好地确定2006年南海夏季风的爆发日期。分析结果表明2006年南海夏季风爆发于5月16日(第4候)。  相似文献   

17.
使用1998年南海季风试验期问高质量资料和NCEP/NCAR40年再分析资料分析了南海季风建立前后的大尺度环流特征和要素的突变及爆发过程。发现南亚高压迅速从菲律宾以东移到中南半岛北部,孟加拉湾槽加深加强,赤道印度洋西风加强并向东向北迅速扩展和传播,以及伴随的中低纬相互作用和西太平洋副高连续东撤是南海夏季风建立的大尺度特征。与此同时,亚洲低纬地区的南北温差和纬向风切变也发生相应的突变。数值试验结果表明,印度半岛地形的陆面加热作用在其东侧激发的气旋性环流对于孟加拉湾槽的加强有重要作用,并进而有利于南海夏季风先于印度夏季风爆发。  相似文献   

18.
Multi-stage onset of the summer monsoon over the western North Pacific   总被引:9,自引:1,他引:9  
R. Wu  B. Wang 《Climate Dynamics》2001,17(4):277-289
 The climatological summer monsoon onset displays a distinct step wise northeastward movement over the South China Sea and the western North Pacific (WNP) (110°–160°E, 10°–20°N). Monsoon rain commences over the South China Sea-Philippines region in mid-May, extends abruptly to the southwestern Philippine Sea in early to mid-June, and finally penetrates to the northeastern part of the domain around mid-July. In association, three abrupt changes are identified in the atmospheric circulation. Specifically, the WNP subtropical high displays a sudden eastward retreat or quick northward displacement and the monsoon trough pushes abruptly eastward or northeastward at the onset of the three stages. The step wise movement of the onset results from the slow northeastward seasonal evolution of large-scale circulation and the phase-locked intraseasonal oscillation (ISO). The seasonal evolution establishes a large-scale background for the development of convection and the ISO triggers deep convection. The ISO over the WNP has a dominant period of about 20–30 days. This determines up the time interval between the consecutive stages of the monsoon onset. From the atmospheric perspective, the seasonal sea surface temperature (SST) change in the WNP plays a critical role in the northeastward advance of the onset. The seasonal northeastward march of the warmest SST tongue (SST exceeding 29.5 °C) favors the northeastward movement of the monsoon trough and the high convective instability region. The seasonal SST change, in turn, is affected by the monsoon through cloud-radiation and wind-evaporation feedbacks. Received: 19 October 1999 / Accepted: 5 June 2000  相似文献   

19.
Onset of the regional monsoon over Southeast Asia   总被引:9,自引:0,他引:9  
Summary ?This is an observational study in which regional features of the different summer monsoon components over Asia especially the South China Sea (SCS) are examined. The authors use various data sets including satellite measurements to understand the onset, maintenance, and retreat of monsoon and explain the connection and independence among the variabilities in the monsoon components. It is shown that while outgoing longwave radiation (OLR) data can only measure tropical convection, upper-tropospheric water vapor band brightness temperature (BT) represents appropriately convective precipitation in both the tropics and the extratropics. The authors define criteria for measuring the SCS monsoon using precipitation, BT, OLR, and lower-tropospheric winds and suggest that multi-variables should be considered to depict regional monsoon features adequately. Under the criteria defined in this study, the SCS summer monsoon is considered as an expansion of deep convection from the tropics. The onset of the monsoon occurs in mid-May, with its precursory signal found over the Indochina peninsula. It is characterized by an abrupt establishment, especially over the central SCS. Although the role of convection over the southern SCS in the monsoon onset is unclear, the early precipitation over the northern SCS and South China, resulted from the effect of subtropical fronts, is separated from the tropical monsoon rainfall. The relative independence from one monsoon component to another is explained by the effects from local topography and land-sea thermal contrast. Received November 5, 1999/Revised April 13, 2000  相似文献   

20.
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   

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