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1.
西北太平洋热带气旋尺度的气候特征研究   总被引:1,自引:0,他引:1  
使用美国联合台风警报中心(Joint Typhoon Warning Center,简称JTWC)整编的2001-2006年的热带气旋(简称TC)资料,分析了TC尺度季节变化特征、区域分布情况,并讨论了TC尺度和强度的关系,初步探讨了西北太平洋热带气旋尺度的气候特征。研究结果表明:TC尺度有明显的季节变化特征,平均尺度在4月份最大,达到230.4km,2月份最小,为69.5km;TC尺度有明显的区域分布不均匀性,TC尺度出现最大值的区域位于28.6~29.5°N,131.1~133.0°E的海面上,而在123°E以东和12°N以南地区,TC尺度往往都在200km以下;对于不同强度的TC,其尺度与强度变幅有明显差异,热带风暴(TS)的24h尺度变幅最大,而台风(TY)的24h强度变幅最大;TC尺度和强度的相关性在不同路径下是有差异的,西北行、西行、北上型的TC尺度与强度呈显著的正相关,两者的相关系数达到了0.93以上,东北行和回旋型的TC尺度和强度的相关系数接近0.6,转向型TC的相关系数在0.85左右;此外,TC尺度和强度的相关性在其生命史的不同阶段也存在显著差异,在发展期,尺度和强度的相关性最好,其相关系数达到0.92,其他阶段相关性则减弱.  相似文献   

2.
热带气旋海面最大风速半径的计算   总被引:5,自引:1,他引:5       下载免费PDF全文
利用含有摩擦的平面极坐标水平运动方程组, 引入藤田气压模式, 在热带气旋域内最大风速为已知的条件下, 经过合理的简化和推导, 得到了呈稳定状态的海面移动非对称热带气旋的最大风速半径的计算方案。分析结果表明, 当最大风速越小、中心气压越低、环境温度和气压越高、纬度越低或摩擦系数越小时, 热带气旋的最大风速半径就越大;反之, 最大风速半径就越小。最大风速和它半径上的最小风向内偏角出现在热带气旋移向的右后侧。对9109号和9115号热带气旋的计算表明, 最大风速半径在发展初期增加, 在发展后期减小, 而在衰减期迅速增加。  相似文献   

3.
Tropical cyclone (TC) rainfall asymmetry is often influenced by vertical wind shear and storm motion. This study examined the effects of environmental vertical wind shear (200-850 hPa) and storm motion on TC rainfall asymmetry over the North Indian Ocean (NIO): the Bay of Bengal (BoB) and the Arabian Sea (AS). Four TC groups were used in this study: Cyclonic Storm (CS), Severe Cyclonic Storm (SCS), Very Severe Cyclonic Storm (VSCS) and Extreme Severe Cyclonic Storm (ESCS). The Fourier coefficients for wave number-1 was used to analyze the structure of TC rainfall asymmetry. Results show that the maximum TC rainfall asymmetry was predominantly in the downshear left quadrant in the BoB, while it placed to downshear right quadrant in the AS, likely due to the different primary circulation strength of the TC vortex. For the most intense cyclone (ESCS), the maximum TC rainfall asymmetry was in the upshear left quadrant in the BoB, whereas it was downshear right quadrant in the AS. It is evident for both basins that the magnitude of TC rainfall asymmetry declined (increased) with TC intensity (shear strength). This study also examined the collective effects of vertical wind shear and storm motion on TC rainfall asymmetry. Here, the analysis in case of the strong shear environment (>7 m s-1) omitted for the AS because the maximum value for this basin was about 7 m s-1. The result showed that the downshear left quadrant was dominant in the BoB for the maximum TC rainfall asymmetry. In a weak shear environment (<5 m s-1), on the other hand, downshear right quadrant is evident for the maximum TC rainfall asymmetry in the BoB, while it placed dominantly downshear left quadrant in the AS. In the case of motion-relative wavenumber-1, the maximum TC rainfall asymmetry was dominantly downshear for both basins.  相似文献   

4.
1. IntroductionStudies on the tracks of tropical cyclones (TCs)have been one of the core problems in TC dynamics.In earlier researches, TCs are often viewed aspoint vortices, Rankine vortices. For example, Yeh(1950) and Kuo (1969), adopting dynamical methods,studied the motions of TCs and the effects of environ-ments. Their findings indicated that the motion tracksof TCs are characterized by cyclonic trochoidal oscil-lations.Syono (1955), by solving the barotropic vorticityequation, obta…  相似文献   

5.
于玉斌  姚秀萍 《气象学报》2011,25(4):467-477
In order to investigate the different thermodynamic mechanisms between rapid intensifying (RI) and rapid weakening (RW) tropical cyclones (TCs),the thermodynamic structures of two sets of composite TCs are analyzed based on the complete-form vertical vorticity tendency equation and the NCEP/NCAR reanalysis data.Each composite is composed of five TCs,whose intensities change rapidly over the coastal waters of China.The results show that the maximum apparent heating source Q1 exists in both the upper and lower troposphere near the RI TC center,and Q1 gets stronger at the lower level during the TC intensification period.But for the RW TC,the maximum Q1 exists at the middle level near the TC center,and Q1 gets weaker while the TC weakens.The maximum apparent moisture sink Q2 lies in the mid troposphere.Q2 becomes stronger and its peak-value height rises while TC intensifies,and vice versa.The increase of diabatic heating with height near the TC center in the mid-upper troposphere and the increase of vertical inhomogeneous heating near the TC center in the lower troposphere are both favorable to the TCs' rapid intensification; otherwise,the intensity of the TC decreases rapidly.  相似文献   

6.
为进一步完善热带气旋大风风圈的分析和预报业务,利用中央气象台(NMC)发布的热带气旋报文资料、ERA5再分析资料,研究了2015年6月30日至2020年12月31日热带气旋最大强度时的7、10和12级风圈的非对称性特征及成因。统计结果表明: 热带气旋的7级风圈半径非对称性最大,10级次之,12级最小;非对称分布热带气旋的7、10和12级风圈最大半径大多分布在东北、东南和西北象限;同一热带气旋的7级和10级风圈最大半径大多分布在相同的象限。将7级风圈单一象限分布的热带气旋与多象限分布的热带气旋各按象限分布分成4类,分析4类7级风圈单一象限分布的热带气旋生成季节、地面10 m风特征及风圈非对称分布的成因发现:各类热带气旋具有明显的季节特征;地面10 m风场呈不对称分布;风圈非对称分布与西太平洋副热带高压、西南气流及地面冷高压等天气系统与热带气旋的相互作用造成的各象限位势高度梯度非对称分布密切相关。   相似文献   

7.
基于卫星资料进行热带气旋强度客观估算   总被引:3,自引:2,他引:1       下载免费PDF全文
利用日本MTSAT (multi-functional transport satellite) 红外亮温资料,提取热带气旋云团中云顶较高、对流较旺盛的深对流信息,根据提取的对流核数量、对流核距热带气旋中心距离、对流核亮温极值等信息表征热带气旋强弱,初步建立了热带气旋强度估测模型;并根据该估算模型的误差分布对强度 (用最大风速表示) 大于40 m·s-1和小于18 m·s-1的样本结果进行了线性修正,修正后的结果与中国气象局《热带气旋年鉴》热带气旋最佳路径资料比较得到非独立样本和独立样本的强度平均绝对误差分别为5.5 m·s-1和5.9 m·s-1, 均方根误差分别为6.9 m·s-1和7.7 m·s-1;对于热带低压、强台风及以上的估计平均绝对误差分别降至4.9,4.7 m·s-1,准确度较好。试验表明:利用热带气旋云团中的对流核数量、分布、冷暖与其强度建立的统计关系模型是可行的,该算法的估算精度与Dvorak方法、AMSU (advanced microwave sounding unit) 定强算法相当。  相似文献   

8.
Based on observed rainfall data, this study makes a composite analysis of rainfall asymmetry in tropical cyclones(TCs) after making landfall in Guangdong province(GD) during 1998—2015. There are 3.0 TCs per year on average making landfall in GD and west of GD(WGD) has the most landfall TCs. Most of TCs make landfall in June,July, August, and September at the intensities of TY, STS, and TS. On average, there is more rainfall in the southwest quadrant of TC in CGD(center of GD), WGD, and GD as a whole, and the maximum rainfall is located in the southwest near the TC center. The mean TC rainfall in the east of GD(EGD) leans to the eastern side of TC. The TC rainfall distributions in June, July, August, and September all lean to the southwest quadrant and the maximum rainfall is located in the southwest near the TC center. The same features are found in the mean rainfall of TD, TS, STS, TY,and STY. The maximum rainfall is mainly in the downshear of vertical wind shear. Vertical wind shear is probably the dominate factor that determines asymmetric rainfall distribution of TCs in GD. Storm motion has little connection with TC rainfall asymmetry in GD.  相似文献   

9.
混合层深度对热带气旋强度的影响   总被引:1,自引:0,他引:1  
李杰  蒋小平  元慧慧  王骥鹏 《气象》2010,36(4):27-29
利用建立的中尺度海气耦合模式进行一组敏感性试验,以考察初始混合层深度对热带气旋(TC)强度的影响。试验结果表明,初始混合层深度对TC最大强度和增强时间影响都较大。一般来说,初始混合层越深,模拟的TC最大强度越大,TC增强时间越长。另外,TC与混合层深度的关系并不是线性的。当混合层较浅时,TC强度对其变化更为敏感。  相似文献   

10.
赤道中东太平洋表层水温异常与热带气旋活动的统计关系   总被引:7,自引:4,他引:3  
杨亚新  江静 《气象科学》2008,28(6):637-643
利用1950-2005年西北太平洋热带气旋(TC)和赤道中东太平洋表层水温(SST)资料,统计分析了赤道中东太平洋表层水温异常与TC频数、强度、源地和路径等的关系.结果表明,赤道中东太平洋暖异常年:(1)TC发生频数偏少,较常年平均偏少2~3个,但强度偏强,强台风和超强台风发生数偏多,较常年平均偏多1个左右,且随着暖异常强度的增强,TC发生频数偏少,强度增强愈加明显;(2)TC生成位置偏东偏南,145°E以东海区TC生成频数较冷异常年和La Nina年增加明显;(3)TC路径偏东,转向路径出现频次增加,西向路径出现频次减少,从而导致日本东部海区TC通过频数增加,而我国南海和华东沿海TC通过频数减少;(4)在我国登陆的TC频数偏少,较常年平均偏少1~2个.赤道中东太平洋冷异常年,情况基本与上相反.上述影响主要是由于赤道中东太平洋SST异常导致大气环流发生异常造成的.  相似文献   

11.
In order to investigate the different thermodynamic mechanisms between rapid intensifying (RI) and rapid weakening (RW) tropical cyclones (TCs), the thermodynamic structures of two sets of composite TCs are analyzed based on the complete-form vertical vorticity tendency equation and the NCEP/NCAR reanalysis data. Each composite is composed of five TCs, whose intensities change rapidly over the coastal waters of China. The results show that the maximum apparent heating source Q 1 exists in both the upper and lower troposphere near the RI TC center, and Q 1 gets stronger at the lower level during the TC intensification period. But for the RW TC, the maximum Q 1 exists at the middle level near the TC center, and Q 1 gets weaker while the TC weakens. The maximum apparent moisture sink Q 2 lies in the mid troposphere. Q 2 becomes stronger and its peak-value height rises while TC intensifies, and vice versa. The increase of diabatic heating with height near the TC center in the mid-upper troposphere and the increase of vertical inhomogeneous heating near the TC center in the lower troposphere are both favorable to the TCs’ rapid intensification; otherwise, the intensity of the TC decreases rapidly.  相似文献   

12.
In this paper,characteristics of the asymmetric flow of Tropical Cyclone (TC) Shanshan (2006) during its turning and intensification period over the oceanic area east of Taiwan are investigated,based o...  相似文献   

13.
Three typhoons, Goni, Morakot and Etau which were generated in Western Pacific in 2009, are successfully simulated by the WRF model. The horizontal and vertical vorticity and their interaction are analyzed and diagnosed by using the simulation results. It is shown that their resultant vectors had a fixed pattern in the evolution process of the three typhoons: The horizontal vorticity converged to the tropical cyclone (TC) center below 900 hPa level, flowed out from it at around 900 to 800 hPa, and flowed in between 800 hPa and 700 hPa. If multiple maximum wind speed centers showed up, the horizontal vorticity converged to the center of the typhoon below the maximum wind speed center and diverged from the TC center above the maximum wind speed center. At low levels, the three typhoons interacted with each other through vertical circulation generated by the vortex tube. This circulation was mainly generated by the eastward or westward horizontal vorticity vectors. Clouds and precipitation were generated on the ascending branch of the vertical circulation. The vortex tubes often flowed toward the southwest of the right TC from the northeast of the left TC. According to the full vorticity equation, the horizontal vorticity converted into the vertical vorticity near the maximum wind speed center below 850 hPa level, and the period of most intense conversion was consistent with the intensification period of TC, while the vorticity advection was against the intensification. The vertical vorticity converted into the horizontal vorticity from 800 hPa to 600 hPa, and the wind speed decreased above the maximum wind speed region at low levels.  相似文献   

14.
A western North Pacific tropical cyclone (TC) intensity prediction scheme (WIPS) is developed based on TC samples from 1996 to 2002 using the stepwise regression technique, with the western North Pacific divided into three sub-regions: the region near the coast of East China (ECR), the South China Sea region (SCR), and the far oceanic region (FOR). Only the TCs with maximum sustained surface wind speed greater than 17.2 m s-1 are used in the scheme. Potential predictors include the climatology and persistence factors, synoptic environmental conditions, potential intensity of a TC and proximity of a TC to land. Variances explained by the selected predictors suggest that the potential intensity of a TC and the proximity of a TC to land are significant in almost all the forecast equations. Other important predictors include vertical wind shear in ECR, 500-hPa geopotential height anomaly at the TC center, zonal component of TC translation speed in SCR, intensity change of TC 12 or 24 h prior to initial time, and the longitude of TC center in FOR. Independent tests are carried out for TCs in 4 yr (2004-2007), with mean absolute errors of the maximum surface wind being 3.0, 5.0, 6.5, 7.3, 7.6, and 7.9 m s-1 for 12- to 72-h predictions at 12-h intervals, respectively. Positive skills are obtained at all leading time levels as compared to the climatology and persistence prediction scheme, and the large skill scores (near or over 20%) after 36 h imply that WIPS performs especially better at longer leading times. Furthermore, it is found that the amendment in TC track prediction and real-time model analysis can significantly improve the performance of WIPS in the SCR and ECR. Future improvements will focus on applying the scheme for weakening TCs and those near the coastal regions.  相似文献   

15.
1960—2003年我国热带气旋降水的时空分布特征   总被引:11,自引:0,他引:11       下载免费PDF全文
利用1960—2003年登陆影响我国的热带气旋及其造成的降水资料, 对44年间登陆我国热带气旋降水时空变化特征进行统计分析。结果表明:热带气旋降水与热带气旋登陆活动相一致, 主要发生在5—11月, 其中7—9月为盛期; 热带气旋降水量以及热带气旋暴雨日数的分布是自南向北、从沿海到内陆迅速减小, 最大出现在海南和华南、东南沿海地区; 热带气旋强度越强其最大过程降水一般也就越大, 但是两者并非严格的线性关系; 1960年以来, 我国受热带气旋影响的绝大部分地区热带气旋降水呈波动下降的趋势。  相似文献   

16.
To have a clearer picture of mechanisms responsible for the deviation of tropical cyclone (to be simplified as TC hereafter) tracks, the current work assumes the TC as a circular vortex with a radius of R. A general motion equation of TC is then determined by averaging its horizontal motion equation over the sentire region of TC. In the meantime, with the moving track of TC assumed as a characteristic arc, the curvature equation is derived for the track of movement and patterns of its deviation due to TC structure and variation are discussed. The result shows that the scale, size, maximum wind speed and radius are factors causing the deviation of TC tracks. In addition, asymmetric structure of TC is also important for the deviation of tracks. The results, achieved with hypothesis, agree with facts in some cases but disagree with them in others, which are to be verified with more observations or numerical simulations.  相似文献   

17.
热带气旋强度与结构研究新进展   总被引:13,自引:6,他引:13       下载免费PDF全文
主要回顾热带气旋(TC)强度与结构变化的研究发展近况。以往热带气旋的理论研究认为在给定的大气和海洋热状况下,存在着一个TC所能达到的最大可能强度(MPI)。但实际上,海洋生成的热带气旋达到的最大强度普遍要比由MPI理论计算得到最大强度要低。近几年的研究表明,存在着内部和外部的不利因子通过对TC结构的改变来阻碍其加强,从而限制TC的强度。以往认为在诸多因子中,垂直风切变产生的内核区非对称结构与眼墙区下方海水上涌造成的海面冷却是制约TC达到MPI的主要因子。最新的研究进一步指出,产生TC非对称性的中尺度过程对其强度与结构的变化至关重要。中尺度过程包含有对流耦合的涡旋Rossby波、内外圈螺旋雨带、嵌于TC环流内的中尺度涡旋。外部的环境气流也是通过这些眼墙的中尺度过程影响到TC的强度与结构变化。  相似文献   

18.
A western North Pacific tropical cyclone (TC) intensity prediction scheme (WIPS) is developed based on TC samples from 1996 to 2002 using the stepwise regression technique, with the western North Pacific divided into three sub-regions: the region near the coast of East China (ECR), the South China Sea region (SCR), and the far oceanic region (FOR). Only the TCs with maximum sustained surface wind speed greater than 17.2 m s−1 are used in the scheme. Potential predictors include the climatology and persistence factors, synoptic environmental conditions, potential intensity of a TC and proximity of a TC to land. Variances explained by the selected predictors suggest that the potential intensity of a TC and the proximity of a TC to land are significant in almost all the forecast equations. Other important predictors include vertical wind shear in ECR, 500-hPa geopotential height anomaly at the TC center, zonal component of TC translation speed in SCR, intensity change of TC 12 or 24 h prior to initial time, and the longitude of TC center in FOR.  相似文献   

19.
Estimates of the maximum potential intensity (MPI) of tropical cyclones (TC) using different model on the base of in situ measurements are analyzed. Estimates published by other researchers and the ones obtained by the author are used. The inadequacy of model estimates of MPI and the real intensity of TC is registered in a number of cases, that is, first of all, related to the neglect of a number of peculiarities of TC structure and their environment in models, which are available nowadays.  相似文献   

20.
Summary Current understanding of tropical cyclone (TC) structure and intensity changes has been reviewed in this article. Recent studies in this area tend to focus on two issues: (1) what factors determine the maximum potential intensity (MPI) that a TC can achieve given the thermodynamic state of the atmosphere and the ocean? and (2) what factors prevent the TCs from reaching their MPIs? Although the MPI theories appear mature, recent studies of the so-called superintensity pose a potential challenge. It is notable that the maximum intensities reached by real TCs in all ocean basins are generally lower than those inferred from the theoretical MPI, indicating that internal dynamics and external forcing from environmental flow prohibit the TC intensification most and limit the TC intensity. It remains to be seen whether such factors can be included in improved MPI approaches.Among many limiting factors, the unfavorable environmental conditions, especially the vertical shear-induced asymmetry in the inner core region and the cooling of sea surface due to the oceanic upwelling under the eyewall region, have been postulated as the primary impediment to a TC reaching its MPI. However, recent studies show that the mesoscale processes, which create asymmetries in the TC core region, play key roles in TC structure and intensity changes. These include the inner and outer spiral rainbands, convectively coupled vortex Rossby waves, eyewall cycles, and embedded mesovortices in TC circulation. It is also through these inner core processes that the external environmental flow affects the TC structure and intensity changes. It is proposed that future research be focused on improving the understanding of how the eyewall processes respond to all external forcing and affect the TC structure and intensity changes. Rapid TC intensity changes (both strengthening and weakening) are believed to involve complex interactions between different scales and to be worthy of future research.The boundary-layer processes are crucial to TC formation, maintenance, and decaying. Significant progress has been made to deduce the drag coefficient on high wind conditions from the measurements of boundary layer winds in the vicinity of hurricane eyewalls by Global Positioning System (GPS) dropsondes. This breakthrough can lead to reduction of the uncertainties in the calculation of surface fluxes, thus improving TC intensity forecast by numerical weather prediction models.  相似文献   

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