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1.
运用WRF模式对0907号热带气旋“天鹅”进行84 h过程的数值模拟,研究海温的变化对“天鹅”登陆入海后强度变化的影响。结果表明,模式较好重现了“天鹅”再次进入南海后复杂曲折的移动路径及强度再度增强的过程;“天鹅”再次入海后强度变化对海温非常敏感,而路径对海温并不敏感,北部湾较高的海温是造成“天鹅”入海后再增强的重要原因之一;在模式中提高(降低)海温时,使“天鹅”入海后中心西南侧的低层热量通量增强(减弱),表面风速随之加强(减弱),边界层入流和垂直上升运动相应增强(减弱),进而促进(抑制)整个气旋中心附近(特别是中心西南侧)对流发展,最后导致“天鹅”入海后强度的再增强。   相似文献   

2.
应用相关分析与合成分析方法分析了影响东海热带气旋登陆后路径趋势的若干因素,结果表明:登陆后路径趋势随时间和登陆地点的变化分布说明热带气旋登陆后路径仍受基本气流的引导和制约;热带气旋登陆时的惯性和地转力的变化对东海热带气旋登陆后的路径趋势有一定影响;环境场及其变化对东海热带气旋登陆后路径有较大影响,尤其对流层中层流场对登陆后的热带气旋的移动仍有明显的引导作用;中国东部至黄海区域是环境场影响东海热带气旋登陆路径趋势的关键区,当区域内的西北太平洋副热带高压加强西伸,西风槽北撤时,东海热带气旋登陆后在副高南侧东风气流引导下向内陆西行至消亡,当区域内副高减弱东退,西风槽南压时,东海热带气旋登陆后受副高西侧偏南气流与西风槽前西南气流引导转向后入海;东海热带气旋登陆前的环境场对登陆后路径趋势影响相对较小,登陆后12~24小时是登陆后路径趋势受环境场影响的敏感时段,环境场的变化对登陆后路径趋势的影响要比当前环境场的影响超前6小时。  相似文献   

3.
利用1949~2010年广西88个气象观测站的降水资料和1961~2010年NCEP/NCAR再分析资料,分析了影响广西热带气旋的数量、路径及其影响广西暴雨的特征,通过数值模拟研究了广西大范围暴雨物理量环境场的变化特征,结果表明:影响广西热带气旋个数有显著的减少趋势,并存在着明显的2a、4a和10a周期振荡信号,年日最多暴雨站数有增多的趋势。热带气旋影响下沿海地区发生暴雨的可能性最大,桂北山区最小。热带气旋从沿海地区登陆进入广西,造成广西各站发生暴雨概率最高,其次为从梧州、玉林进入广西的路径,最少的为热带气旋在北部湾西行进入越南。热带气旋的中低层环流中心一般为强降水区域,中心滞留时间越长降雨量越大,极大风速始终位于台风前进方向的右侧,大范围暴雨区域位于急流的左侧。在热带气旋影响日最多暴雨站数发生时中低层风速及高度场在近30年的变化特征:广西的东北面存在一个呈西北-东南向的风速增高带,西南面为风速减弱带;西北面为高度场减弱区,黄海一带为一个显著增强区。  相似文献   

4.
利用上海台风研究所整编的1951—2016年西北太平洋热带气旋最佳路径数据集,NCEP/NCAR再分析资料和NOAA的COBE SST再分析资料,〖JP〗按照热带气旋生成区域将热带气旋分为南海热带气旋与西北太平洋热带气旋两类,采用合成分析等统计学方法探讨了热带气旋活动盛期,登陆中国的热带气旋对东部型和中部型厄尔尼诺(El Niño)事件的响应。结果表明,热带气旋活动盛期,南海热带气旋在两类El Niño事件下生成频数差异不大;东部型El Niño存续期南海热带气旋登陆中国比率较中部型El Niño时偏低,登陆时强度较中部型偏弱。中部型El Niño存续期间,西北太平洋热带气旋生成频数比东部型El Niño时的频数偏高,而登陆中国热带气旋较东部型偏少,登陆时热带气旋强度较东部型偏弱;但两类El Niño事件期间西北太平洋热带气旋在中国的登陆率差异没有通过显著性检验。与中部型El Niño事件相比,在东部型El Niño事件期间,西北太平洋海面温度偏低,对流层中部水汽条件较差,对流层低层涡度异常偏低,同时在热带气旋较为集中生成的海域存在沃克(Walker)环流的异常下沉气流,西太平洋副热带高压偏强偏东偏南,共同导致登陆中国热带气旋频数偏少。  相似文献   

5.
南海灾害性土台风统计分析   总被引:7,自引:3,他引:7       下载免费PDF全文
根据台风年鉴资料统计分析了南海热带气旋(指在南海海域生成的热带气旋、又称南海灾害性土台风、下面简称TC),TC数量逐年逐月变化较大,除3月没有TC出现外,其余月份均有TC出现,年生成最多的TC为11个,最少的为1个,年平均6.2个,月生成最多的TC为5个,最少的为零个。TC登陆最多的是8月,12月至翌年4月没有TC登陆中国大陆,登陆范围主要在汕头至海南岛之间。TC的持久期一般均在4—7天,最长亦有19天。南海上生成的TC只有15%能够加强为台风,均集中在水深超过150米的海域。南海是TC发生频繁、数量较多的海域。  相似文献   

6.
登陆台湾岛热带气旋强度和结构变化的统计分析   总被引:2,自引:0,他引:2  
利用1949—2008年共60年的《台风年鉴》、《热带气旋年鉴》资料及CMA-STI热带气旋最佳路径数据集,2001—2008年美国联合台风警报中心(JTWC)热带气旋尺度相关资料及日本气象厅(JMA)的TBB资料,统计分析西北太平洋(包括南海)热带气旋(TC)在登陆台湾过程中强度和结构变化的基本特征,主要结论有:(1)TC登陆台湾时强度为台风及以上级别的样本数占总样本数约60%,主要出现在6—9月,东部登陆TC的强度一般比在西部登陆的强;(2)大部分TC在岛上维持6 h左右,登陆时最大风速≤5级和强度为超强台风的TC穿越台湾岛时移动比较缓慢;(3)126个登陆台湾的TC样本过岛后近中心海平面气压平均增加5.61 hPa,近中心最大风速平均减小3.58 m/s,在台湾东部地区登陆TC的衰减率比在西部登陆的大3倍左右;(4)TC在登陆台湾前6 h至离岛后6 h期间其8级和10级风圈半径均明显减小,TC形状略呈长轴为NE-SW向的椭圆状,而其最大风速的半径却逐渐增大;(5)TBB分析结果显示,TC登陆台湾前,其外围对流主要出现在南侧和西侧,结构不对称,登陆以后,TC北部及东部的对流显著发展,外围结构区域对称;但中心附近的强对流则从登陆前6 h开始逐渐减弱消失。表明TC穿越台湾过程中内核结构松散、强度减弱。  相似文献   

7.
利用1949~2001年热带气旋年鉴资料,对53年登陆我国并经过内陆湖泊的热带气旋特征进行统计分析.结果表明:登陆过湖泊热带气旋在陆上维持时间长,登陆时强度较强;湖泊地带能延缓登陆TC强度的衰减;热带气旋经过内陆湖泊时大多表现为中心气压维持不变或降低,风速增大;长江中游地区是登陆过湖泊热带气旋消失数最多的区域.  相似文献   

8.
利用1945~2011年美国联合台风预警中心(JTWC)西北太平洋热带气旋资料,研究了南海(5°N~25°N,110°E~120°E)与西北太平洋(5°N~25°N,120°E~180°)热带气旋生成位置、生成频数、强度和持续时间的季节变化差异及其成因。从热带气旋路径穿越经度带频数的角度,探讨了ENSO对气旋活动年际变化的影响。结果表明,南海热带气旋活动显著地受季风调控。在南海冬季风作用下,1~4月热带气旋生成于10°N以南且频数较少、强度较弱,这主要是低层气旋式相对涡度和弱东风切变区偏南造成的。相反,受夏季风影响,6~9月是热带气旋生成最多、最频繁的季节,大都生成于南海北部17°N附近。在5月(10月)的季节转换期,生成位置大幅度北进(南撤)且生成频数显著增加(减少),取决于风速垂直切变及中层的相对湿度的急剧转变。11、12月两海域热带气旋生成于10°N以南主要归因于其上空中层大气相对湿度较北部偏大。在西北太平洋,热带气旋生成的季节变化没有南海显著,只在7月有一次明显的变化,7~10月是热带气旋活动的"盛期"。在强度上,西北太平洋大部分区域全年均为弱东风切变,因此热带气旋以台风为主且持续时间长;但南海多为热带风暴。ENSO事件使得不同季节热带气旋生成区域和气旋路径地理位置发生显著变化。在El Nio事件期间,穿越南海所在经度带路径频数为负距平,而西北太平洋经度带为正距平;在La Nia事件期间,情况相反。  相似文献   

9.
刘爱鸣  林毅  刘铭  王怀俊 《气象》2007,33(5):36-41
热带气旋碧利斯和格美,在起源地、路径和结构上有一定的相似,但登陆后降水强度却有明显差异.通过对两个热带气旋登陆后环境场和物理量场的对比分析,得出一些结论.热带气旋登陆后暴雨强度与高空盛行东北气流和南海西南季风加强有关.高低空不同的环流形势导致了这两个热带气旋登陆后华南沿海低层辐合、高层辐散、上升运动、水汽及不稳定度等物理量场的不同,从而造成暴雨强度的不同.  相似文献   

10.
西行热带气旋影响云南降水的统计特征   总被引:1,自引:1,他引:0  
利用《西北太平洋热带气旋年鉴检索系统》资料、NCEP/NCAR再分析资料、云南日降水资料、西北太平洋热带气旋及降水分布资料,分析了1959—2007年影响云南高原降水的西北太平洋西行热带气旋的气候特征及大尺度环流背景。结果表明:云南几乎每年都受到西行热带气旋的影响,年代际分布总体呈下降趋势,且发生在7—9月最多;热带气旋的影响波及云南大部,影响滇东南较多,以登陆的南海台风为主,其登陆地点主要为海南和广东,且多数进入北部湾;影响路径划分为5类,其中广东登陆类最多、影响最大;各种强度的热带气旋均可造成全省性强降水,其中超强台风的影响最多最大。环流背景表现为:100 hPa南亚高压呈西部型分布时,有利于西北太平洋TC西行影响低纬高原;500 hPa中纬度以纬向环流为主,低纬度热带地区季风低压、热带辐合带(ITCZ)较为活跃,当副热带高压西脊点西伸到云南东北部、或外围反气旋扩大到青藏高原、或副热带高压与青藏高压合并,均有利于TC西行深入内陆。  相似文献   

11.
The intensity, landing time, track trend and intensity variation of tropical cyclones (TCs) after landfall are analyzed using the TCs data (of best track from the China Meteorological Administration) between 1949 and 2006 for the western North Pacific and South China Sea. The trend differences of track and intensity between the TCs that directly land in East China and those making the second landfall in East China after landing in Taiwan Island are categorically discussed. The results show that the first kind of landing TCs are more likely to go northward or turn while the second kind of TCs have a larger tendency to keep going northwest. The intensity of the first kind of TCs is more persistent than the second one. There is a higher percentage for the intensity to be weakened significantly if the TCs keep going west to northwest or southwest after landing.  相似文献   

12.
超强台风威马逊快速增强及大尺度环流特征   总被引:2,自引:2,他引:0       下载免费PDF全文
超强台风威马逊(1409)登陆前发生快速增强现象,并成为我国有气象记录以来的最强登陆台风。该文利用中国气象局台风最佳路径资料、NCEP FNL分析资料、NOAA高分辨率逐日最优插值海表温度融合分析资料和天气学、动力学诊断分析方法,分析这次罕见的台风快速增强过程。研究结果表明:威马逊(1409)快速增强与持续有利背景场有关,如海温异常偏暖、低空急流和越赤道气流的增强、环境风垂直切变维持较小、高层维持较强流出气流等。尤其是台风下游大气处于热力不稳定,在其他有利因子的共同作用下,台风移入热力不稳定环境场中,有利于台风环流内部对流活动的增强和对流凝结潜热效率的增加,从而有利于台风强度增加。动能诊断方程表明:威马逊(1409)快速增强期间低层动能主要来源于风穿越等压线所作的功,这与台风环流内强降雨释放的对流凝结潜热驱动台风中心附近上升、外围下沉的垂直环流圈的加强紧密联系。  相似文献   

13.
利用中央气象台台风实时业务资料、自动气象站观测资料以及卫星云图等对2021年西北太平洋及南海台风活动的主要特征和影响我国台风的路径、强度及风雨影响进行分析和回顾。结果表明:2021年西北太平洋及南海台风生成个数偏少,生成源地整体偏西;台风强度偏弱,但有多个台风出现了快速增强,其中台风“烟花”“灿都”的24 h强度增幅达40 m·s-1,为近30 a少见;2021年先后有5个台风登陆我国,另有2个台风影响我国。在登陆台风中,4个登陆华南的台风强度均弱于历史平均值。所有登陆台风在登陆后的维持时间都明显高于历史均值,特别是台风“烟花”为历史上登陆华东后维持时间最长的台风,给我国带来了严重的灾害影响。  相似文献   

14.
The best track data of tropical cyclones (TCs) provided by Regional Specialized Meteorological Center (RSMC) Tokyo for the South China Sea (SCS) from 1977 to 2007 are employed to study the spatiotemporal variations (for a period of 12 hours) and the rapid (slow) intensification (RI/SI) of TCs with different intensity. The main results are as follows. (1) Over this period, the tropical storms (TSs) and severe tropical storms (STSs) mostly intensify or are steady while the typhoons (TYs) mostly weaken. The stronger a TC is initially, the more observation of its intensification and the less its variability will be; the more observation of its weakening is, the larger its variability will be. (2) The TC intensifies the fastest at 0000 UTC while weakening the fastest at 1200 UTC. (3) In the intensifying state, TSs, STSs, and TYs are mainly active in the northeastern, central-eastern, and central SCS respectively. The weakening cases mainly distribute over waters east off Hainan Island and Vietnam and west off the Philippines. Some cases of TSs and STSs weaken over the central SCS. (4) The RI cases form farther south in contrast to the SI cases. The RI cases are observed in regions where there are weaker vertical shear and easterly components at 200 hPa. The RI cases also have stronger mid-and lower-level warm-core structure and smaller radii of 15.4 m/s winds. The SI cases have slightly higher SST.  相似文献   

15.
利用欧洲中期天气预报中心0.75°×0.75°再分析资料,对中国海岸线两侧相邻区域内的风能、风速进行研究,讨论不同季节、不同区域风能、风速的分布特征;利用WRF(Weather Research Forecast)模式模拟海表面温度上升和城市化发展对中国东部沿海风能的影响。结果表明:1)中国沿海风能的时空分布不均一,季节变化明显。春季渤海湾区域风能明显大于其他三区(华东沿海、东南沿海和南海北部沿海区域)。夏季渤海湾区域风能显著小于其他三区,而华东沿海区域风能稍大。秋季东南沿海和南海北部沿海区域风能较大。冬季沿海四区风能大小接近。一般而言,秋冬季风能较大、春夏季风能较小,夏季风能显著小于冬季。2)不同区域、不同季节风速的年际变化存在明显差异。除冬季东南沿海区域风速有增大趋势外,其他区域各季节风速都呈缓慢减小趋势,但减小幅度很小。3)海表温度升高在不同季节对风速的影响不同。春季渤海湾和山东半岛、北部湾沿海及杭州湾风速随海温升高而增强。夏季海温升高幅度不同,则风速显著变化区域不同,但大部分沿海区域风速随海温升高而增强。秋冬季风速随海表温度升高而增强,影响区域较稳定:秋季东南沿海和华东沿海区域风速增强,冬季渤海湾和南海北部沿海区域风速增强。4)城市化发展增大了地表摩擦力,使得夏秋季登陆我国的热带气旋迅速减弱,沿海风速随之减小。  相似文献   

16.
This study examines the tropical storms simulated in the Modern-Era Retrospective analysis for Research and Applications (MERRA) global atmospheric reanalysis for the recent 12 years (1998–2009), focusing on the tropical storm activity over the Northwestern Pacific. For validation, the International Best Track Archive for Climate Stewardship (IBTrACS) dataset is used as an observational counterpart. Climatological-mean features of the tropical storm genesis, tracks and their maximum intensity are the primary interests in this study. Regarding the genesis location of tropical storms, MERRA is reasonable in resolving major development regions over the South China Sea and the Northwestern Pacific close to the Philippines. The seasonal variation of the number of storms is also reproduced in a realistic way in MERRA, with peak values occurring from July to September. In addition, MERRA tends to reproduce the observed interannual variation of the number of tropical storms during the 12-years, though with a limited accuracy. The simulated paths toward higher latitudes are also reasonable in MERRA, where the reanalysis corresponds well with the observations in resolving frequent paths of westward moving storms and recurving storms toward the northeast. Regarding the intensity, MERRA captures the linear relationship between the minimum center pressure and the maximum wind speed near the surface at the maximum development. Some discrepancies from the observed features are found in the reanalysis, such as less frequent development of storms over the South China Sea and less frequent paths over this region. The reanalysis also does not attain the observed maximum intensity for the resolved tropical storms, particularly underestimating the center pressure. These deficiencies are likely related to limitations in the horizontal resolution and the parameterized physics of the data assimilation system.  相似文献   

17.
An overview of tropical cyclone and tropical meteorology research progress   总被引:17,自引:1,他引:16  
There has been much progress in the study of tropical cyclones and tropical meteorology in China in the past few years. A new atmospheric field experiment of tropical cyclone landfall with the acronym of CLATEX (China Landfalling Typhoon Experiment) was implemented in July-August 2002. The boundary layer characteristics of the target typhoon Vongfong and the mesoscale structural features of other landfalling typhoons were studied. In addition, typhoon track operational forecasting errors in the last decade have been reduced because the operational monitoring equipment and forecast techniques were improved.Some results from the research program on tropical cyclone landfall, structure and intensity change, intensification near coastal waters, interaction between tropical cyclone and mid-latitude circulation, and the interaction among different scales of motion are described in this paper. Four major meteorological scientific experiments in China with international cooperation were implemented in 1998: the South China Sea monsoon field experiment (SCSMEX), the Tibetan Plateau field experiment (TIPEX), the Huaihe River basin energy and water cycle experiment (HUBEX), and the South China heavy rain scientific experiment(HUAMEX). Although these field experiments have different scientific objectives, they commonly relate to monsoon activities and they interact with each other. The valuable intensive observation data that were obtained have already been shared internationally. Some new findings have been published recently.Other research work in China, such as the tropical air-sea interaction, tropical atmospheric circulation,and weather systems, axe reviewed in this paper as well. Some research results have shown that the rainfall anomalies for different regions in China were closely related to the stages of E1 Nifio events.  相似文献   

18.
The present study revealed that a climate regime shift occurred during the 1988–1991 period involving changes in tropical cyclone (TC) intensity (central pressure, maximum sustained wind speed) during the summer near 30°N in East Asia. Climatologically, TC intensity at 110°–125°E near 30°N (over Mainland China) is the weakest at that latitude while the strongest is found at 125°–130°E (over Korea). The TC intensity during the 1991–2015 (91–15) period had strengthened significantly compared to that of the 1965–1988 (65–88) period. The strengthening was due to a significantly lower frequency of TCs that passed through Mainland China during the 91–15 period. This lower frequency of was due to anomalous northeasterlies blown from the anomalous anticyclonic circulation located over continental East Asia and that had strengthened along the coast. Instead, TCs mainly followed a path from eastern regions in the subtropical western North Pacific to Korea and Japan via the East China Sea due to anomalous cyclonic circulations that had strengthened in the western North Pacific. In addition, low vertical wind shear had formed along the mid-latitude region in East Asia and along the main TC track in the 91–15 period, and most regions in the western North Pacific experienced a higher sea surface temperature state during the 91–15 period than in the previous period, indicating that a favorable environment had formed to maintain strong intensities of TCs at the mid–latitudes. The characteristics of TCs at the lower latitudes caused a strong TC intensity at the time of landfall in Korea and a gradual shifting trend of landing location from the western to southern coast in recent years.  相似文献   

19.
The correlation and composite analysis are carried out in this paper to study major factors affecting the track of tropical cyclones (TCs) after their landfall in the east of China. The mid-tropospheric environmental steering flow is found to dominate the movement of a TC even after landfall, with the inertia and Coriolis force two other subordinates. A key region is discovered covering the east of China and Yellow Sea, in which the environmental flow significantly affects the movement of TCs making landfall in this part of China. When the subtropical high in this region strengthens and extends westward, accompanied by northward shrink of the westerly trough, the TC tends to move westward after landfall and disappear inland. However, when the subtropical high in this region weakens and shrinks eastward, accompanied by southward push of the westerly trough, the TC tends to recurve after landfall and re-enter the sea at a location to the north of the site of landfall. The environment before the landfall of a TC has little impact on its post-landfall track, which is sensitive to the environmental change 12 – 24 hours after landfall. A 6-hour lag is found between the environmental change and the movement of a TC after landfall.  相似文献   

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