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81.
采用NCEP1°×1°客观再分析资料和常规观测资料,对2008年1月25—29日发生在长江中下游地区的强雨雪过程进行诊断分析,结果表明,低空急流与强雨雪有着密切关系,强雨雪的发生需具备一定的温度条件以及水汽场与动力场的耦合机制。对强雨雪过程的湿Q矢量诊断分析表明,700hPa湿Q矢量辐合区以及850hPa锋生函数正值区与强雨雪区对应较好,对雨雪天气的发生有着很好的指示意义。湿位涡特征分析表明,此次强雨雪过程发生在层结稳定的大气中且垂直涡度发展较强。  相似文献   
82.
An observational analysis of satellite blackbody temperature (TBB) data and radar images suggests that the mesoscale vortex generation and merging process appeared to be essential for a tropical-depression-related heavy rain event in Shanghai, China. A numerical simulation reproduced the observed mesoscale vortex generation and merging process and the corresponding rain pattern, and then the model outputs were used to study the related dynamics through diagnosing the potential vorticity (PV) equation. The t...  相似文献   
83.
2007年淮河流域暴雨期间大气环流特征分析   总被引:6,自引:3,他引:3  
桂海林  周兵  金荣花 《气象》2010,36(8):8-18
利用NCAR/NCEP再分析资料及国家气象信息中心30年气候平均降水资料,通过动力诊断与分析手段研究了2007年6—7月发生在我国淮河流域的暴雨。结果表明,淮河流域的环流垂直结构和降水有着非常好的对应关系。暴雨期间,鄂霍茨克海阻高与乌拉尔山阻高这种双阻高形势对于淮河流域的持续降水提供了很好的条件;南亚高压高层(200 hPa)基本为正散度区,低层(850 hPa)为负散度区,上下层强烈的抽吸结构对暴雨的发生也是非常有利的条件,同时,在淮河暴雨期问,南亚高压(200 hPa)与500 hPa西太平洋副热带高压有着相向而行的移动路径;位涡对于分析冷空气的活动,有着比较清晰的意义,暴雨发生前,有明显的正位涡异常从高纬度向低纬度伸展。大气非绝热加热分析结果显示,视热源和视水汽汇两者的高值中心与相应时段暴雨中心位置一致。  相似文献   
84.
使用FY2卫星TBB资料、NCEP最终分析资料(1°×1°)和中尺度模式WRF,对0601号强台风"珍珠"的"急翘"异常转向路径和内核结构变化进行诊断分析和数值模拟。结果表明:"珍珠"移向变化与环境引导气流和位涡倾向1波分量正异常有关,"急翘"前12小时,环境引导气流向北偏转,位涡倾向1波分量正异常对应着"珍珠"移动方向变化;内核非对称结构发展与环境风垂直切变演变有关,垂直切变使得涡旋倾斜,涡旋倾斜方向出现较强的上升运动,导致"珍珠"内核偏南象限对流活动较强。  相似文献   
85.
A mechanism for the generation of intrathermocline eddies (ITEs) at wind-forced fronts is examined using a high resolution numerical simulation. Favorable conditions for ITE formation result at fronts forced by “down-front” winds, i.e. winds blowing in the direction of the frontal jet. Down-front winds exert frictional forces that reduce the potential vorticity (PV) within the surface boundary in the frontal outcrop, providing a source for the low-PV water that is the materia prima of ITEs. Meandering of the front drives vertical motions that subduct the low-PV water into the pycnocline, pooling it into the coherent anticyclonic vortex of a submesoscale ITE. As the fluid is subducted along the outcropping frontal isopycnal, the low-PV water, which at the surface is associated with strongly baroclinic flow, re-expresses itself as water with nearly zero absolute vorticity. This generation of strong anticyclonic vorticity results from the tilting of the horizontal vorticity of the frontal jet, not from vortex squashing. During the formation of the ITE, high-PV water from the pycnocline is upwelled alongside the subducting low-PV surface water. The positive correlation between the ITE’s velocity and PV fields results in an upward, along-isopycnal eddy PV flux that scales with the surface frictional PV flux driven by the wind. The relationship between the eddy and wind-induced frictional PV flux is nonlocal in time, as the eddy PV flux persists long after the wind forcing is shut off. The ITE’s PV flux affects the large-scale flow by driving an eddy-induced transport or bolus velocity down the outcropping isopycnal layer with a magnitude that scales with the Ekman velocity.  相似文献   
86.
A 4-day persistent rainstorm resulting in serious flooding disasters occurred in the north of Fujian Province under the influences of a quasi-stationary Meiyu front during 5-8 June 2006. With 1°× 1° latitude and longitude NCEP reanalysis data and the ground surface rainfall, using the potential vorticity (PV) analysis and PV inversion method, the evolution of main synoptic systems, and the corresponding PV and PV perturbation (or PV anomalies) and their relationship with heavy rainfall along the Meiyu front are analyzed in order to investigate the physical mechanism of the formation, development, and maintenance of the Meiyu front. Furthermore, the PV perturbations related to different physics are separated to investigate their different roles in the formation and development of the Meiyu front. The results show: the formation and persistence of the Meiyu front in a quasi-WE orientation are mainly due to the maintenance of the high-pressure systems in its south/north sides (the West Pacific subtropical high/ the high pressure band extending from the Korean Peninsula to east of North China). The Meiyu front is closely associated with the PV in the lower troposphere. The location of the positive PV perturbation on the Meiyu front matches well with the main heavy rainfall area along the Meiyu front. The PV inversion reveals that the balanced winds satisfying the nonlinear balanced assumption represent to a large extent the real atmospheric flow and its evolution basically reflects the variation of stream flow associated with the Meiyu front. The unbalanced flow forms the convergence band of the Meiyu front and it mainly comes from the high-pressure system in the north side of the Meiyu front. The positive PV perturbation related to latent heat release in the middle-lower troposphere is one of the main factors influencing the formation and development of the Meiyu front. The positive vorticity band from the total balanced winds is in accordance with the Meiyu front band and the magnitude of the posit  相似文献   
87.
A strong cyclonic wind perturbation generated in the northern South China Sea (SCS) moved northward quickly and developed into a mesoscale vortex in southwest Guangdong Province, and then merged with a southward-moving shear line from mid latitudes in the period of 21-22 May 2006, during which three strong mesoscale convective systems (MCSs) formed and brought about torrential rain or even cloudburst in South China. With the 1° ×1° NCEP (National Centers for Environment Prediction) reanalysis data and the Weather and Research Forecast (WRF) mesoscale model, a numerical simulation, a potential vorticity inversion analysis, and some sensitivity experiments are carried out to reveal the formation mechanism of this rainfall event. In the meantime, conventional observations, satellite images, and the WRF model outputs are also utilized to perform a preliminary dynamic and thermodynamic diagnostic analysis of the rainstorm systems. It is found that the torrential rain occurred in favorable synoptic conditions such as warm and moist environment, low lifting condensation level, and high convective instability. The moisture transport by strong southerly winds associated with the rapid northward advance of the cyclonic wind perturbation over the northern SCS provided the warm and moist condition for the formation of the excessive rain. Under the dynamic steering of a southwesterly flow ahead of a north trough and that on the southwest side of the West Pacific subtropical high, the mesoscale vortex (or the cyclonic wind perturbation), after its genesis, moved northward and brought about enormous rain in most parts of Guangdong Province through providing certain lifting forcing for the triggering of mesoscale convection. During the development of the mesoscale vortex, heavy rainfall was to a certain extent enhanced by the mesoscale topography of the Yunwu Mountain in Guangdong. The effect of the Yunwu Mountain is found to vary under different prevailing wind directions and intensities. The location o  相似文献   
88.
沙澧河流域两场大暴雨过程的对比分析   总被引:4,自引:0,他引:4  
利用常规观测资料、自动站资料和NCEP1°×1°再分析资料对2007年7月5日和14日沙澧河流域两场大暴雨过程进行了诊断对比分析.结果表明:不同影响系统下产生的大暴雨过程其动力机制有所差异.垂直螺旋度计算结果显示:两次过程700hPa等压面上正垂直螺旋度中心的移向和强度变化与降水落区及趋势变化有很好的对应关系,暴雨区出现在正垂直螺旋度中心移动的前方,对流域大暴雨的落区有一定的指示意义.5日呈现中低层正、高层负的垂直螺旋度配置,动力条件更有利于大暴雨的发生.湿位涡演变分析发现,5日中低层既存在对流不稳定,又存在对称不稳定,有利于垂直对流和倾斜对流发生,造成流域大暴雨.14日中低层大气处于对流稳定状态,但边界层和中层存在对流不稳定,同时中层还存在较强的对称不稳定,垂直涡度得到较大增长,导致上升运动的加强和水汽的垂直输送,有利于降水增幅.  相似文献   
89.
一次无地面冷空气触发的西南涡特大暴雨分析   总被引:3,自引:0,他引:3  
王中  白莹莹  杜钦  李东川 《气象》2008,34(12):63-71
利用NCEP 1°×1°的再分析资料对2007年7月17日重庆西部的特大暴雨天气过程的环流背景、主要影响系统--西南涡的演变进行诊断分析.结果表明:(1)在有利的大尺度环流背景配合下,产生此次过程的主要影响系统为西南涡和低空急流,副热带高压的西进北抬为水汽的输送提供了有利的条件;(2)最强降水时段出现在西南涡的最强盛期,垂直螺旋度的大值中心位置和强弱变化与低涡及强降雨的位置和强度有很好的对应关系;(3)在此次过程中虽然无地面冷空气的触发,但由于高层较强的冷平流形成的干冷盖和低层的暖湿气流与强烈的上升运动的极佳配合,使得强对流天气得以发生,高层的干侵入成为此次过程的触发动力;(4)西南低涡上空的不同高度上不同强度的干侵入效应,使得高层高位涡下传,而高层高位涡区的下传和中低层高位涡区的加强,导致西南低涡的气旋性环流加强,降水增强.  相似文献   
90.
“海棠”台风(2005)暴雨过程数值模拟及位涡分析   总被引:1,自引:1,他引:0  
采用WRF模式对2005年"海棠"台风登陆福建省前后24h内所造成的降水过程进行了数值模拟,在此基础上,利用模式输出结果,借助位涡理论分析位涡与台风低压流场及降水的关系,并结合对风场、相当位温、相对湿度等诊断量的分布特征分析,探讨了台风强降水的发展和维持机制。结果表明,310K等熵面上高位涡发展演变较好反映了台风低压系统路径移动以及强度变化的过程。暴雨中心主要出现在位涡大值区及其偏东北方向,且位涡气块回旋少动,与暴雨的发展维持密切相关。高位涡区主要位于等熵面坡度和梯度最大处,当等熵面上下贯通,对流层高层的高位涡沿等熵面下传,形成位涡柱时,有利于暴雨增幅。台风环流内水汽充足,上升运动强烈,也有助于此次台风降水强度持续强大。  相似文献   
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