利用海口多普勒雷达、海南省区域加密自动站和常规资料对2016年4月11日凌晨发生在海南岛北部近海和陆地的大范围雷暴大风过程进行天气学分析。结果表明:(1)这次雷暴大风过程发生在500 h Pa槽前、低空急流左前侧、低层切变线南侧、高空急流分流区下方和地面静止锋南侧的有利于对流发展的较大范围上升气流区域内;(2)对流风暴移动路径上的大气环境具有中等程度的条件不稳定、对流有效位能CAPE以及上干冷下暖湿的温-湿廓线垂直结构、强的深层垂直风切变,对流风暴形成后最终组织发展产生雷暴大风、大冰雹和短时强降水的多单体带状回波和弓形回波;(3)在多单体带状回波中镶嵌的风暴A和B各自发展成为具有中层径向辐合特征的超级单体,风暴B和C合并形成弓形回波,其中风暴C的中气旋加强成为弓形回波北部的气旋式中尺度涡旋;(4)阵风锋对对流风暴的正反馈作用、对流风暴前侧强劲的暖湿入流与风暴后侧径向风速相当的冷池出流,长时间倾斜依存的自组织结构及其与强的低层环境风垂直切变的相互作用,是多单体风暴和弓形回波长时间维持和加强的主要原因;(5)地面原来存在的β中尺度辐合切变线,对流风暴主体回波沿着海南岛北部近海东移等因素,有利于多单体带状回波和弓形回波的长时间维持。
ABSTRACT Numerical simulations with the Advanced Regional Prediction System (ARPS) model were performed to investigate the impact of microphysical drop size distribution (DSD) on tornadogenesis in a subtropical supercell thunderstorm over Anhui Province, eastern China. Sensitivity experiments with different intercept parameters of rain, hail and snow DSDs in a Lin-type microphysics scheme were conducted. Results showed that rain and hail DSDs have a significant impact on the simulated storm both microphysically and dynamically. DSDs characterized by larger (smaller) intercepts have a smaller (larger) particle size and a lower (higher) mass-weighted mean fall velocity, and produce relatively stronger (weaker) and wider (narrower) cold pools through enhanced (reduced) rain evaporation and hail melting processes, which are then less favorable (favorable) for tornadogenesis. However, tornadogenesis will also be suppressed by the weakened mid-level mesocyclone when the cold pool is too weak. When compared to a U.S. Great Plain case, the two microphysical processes are more sensitive to DSD variations in the present case with a higher melting level and deeper warm layer. This suggests that DSD-related cloud microphysics has a stronger influence on tornadogenesis in supercells over the subtropics than the U.S. Great Plains.
Two intense quasi-linear mesoscale convective systems(QLMCSs) in northern China were simulated using the WRF(Weather Research and Forecasting) model and the 3D-Var(three-dimensional variational) analysis system of the ARPS(Advanced Regional Prediction System) model.A new method in which the lightning density is calculated using both the precipitation and non-precipitation ice mass was developed to reveal the relationship between the lightning activities and QLMCS structures.Results indicate that,compared with calculating the results using two previous methods,the lightning density calculated using the new method presented in this study is in better accordance with observations.Based on the calculated lightning densities using the new method,it was found that most lightning activity was initiated on the right side and at the front of the QLMCSs,where the surface wind field converged intensely.The CAPE was much stronger ahead of the southeastward progressing QLMCS than to the back it,and their lightning events mainly occurred in regions with a large gradient of CAPE.Comparisons between lightning and non-lightning regions indicated that lightning regions featured more intense ascending motion than non-lightning regions;the vertical ranges of maximum reflectivity between lightning and non-lightning regions were very different;and the ice mixing ratio featured no significant differences between the lightning and non-lightning regions.