基于风廓线雷达对暖式切变和冷式切变大范围强降水的风垂直结构观测与差异分析

Wind Vertical Structure Observation and Difference Analysis of Large Range Heavy Rainfall with Warm Shear and Cold Shear Based on Wind Profiler Radar

  • 摘要: 应用福建省连城县风廓线雷达等资料,对2018年6月5—7日福建省一次暖式切变和冷式切变交替下形成的大范围强降水天气进行分析。结果表明:1)水平风脉动和垂直风脉动出现的时间与降水出现的时间较为对应,水平风脉动大小和水平风脉动出现的高度与降水强度存在一定的正相关,垂直风脉动出现的高度与降水强度存在一定的正相关;暖式切变形势下强水平风脉动和垂直风脉动出现的较为集中且高度较高,冷式切变下强水平风脉动和垂直风脉动出现的较为分散且高度较低。2)降水前或降水出现增大前在2~3 km高度附近出现水平风的垂直风切变并向低层传播,降水时低层和高层的水平风的垂直风切变增大超过10 m·s-1;暖式切变形势下低层水平风的垂直风切变增强时间较降水早2~6 h;冷式切变形势下低层水平风的垂直风切变的增强时间与降水同步。3)暖式切变形势下,低空急流指数相对连续,且波动较大,对应降水的强度较强,降水分布不均;冷式切变形势下,低空急流指数较为分散,波动较小,对应降水强度较弱,降水分布均匀;降水前低空急流指数的增大超前1~4 h。4)暖式切变降水阶段,信噪比(SNR)强回波区在降水初期出现在较高的高度上,在降水趋于减弱时低层SNR值开始增大;冷式切变降水阶段,SNR强回波区在低层长时间维持。

     

    Abstract: Based on the wind profiler radar data of Liancheng county, Fujian province, the analysis of the heavy rainfall were caused by alternating warm shear and cold shear in Fujian province from 5 to 7 June 2018. Results show that: 1) the occurrence time of horizontal and vertical wind pulsation corresponds to the occurrence time of precipitation. The magnitude of horizontal wind pulsation and the height of horizontal wind pulsation are positively correlated with precipitation intensity, while the height of vertical wind pulsation is positively correlated with precipitation intensity. The strong horizontal and vertical wind pulsation are concentrated and high in warm shear potential, while the strong pulsation and vertical wind fluctuations are dispersed and low in cold shear potential. 2) Before precipitation or before precipitation increase, vertical wind shear of horizontal wind appears near 2 3 km altitude and propagates to the lower level. Vertical wind shear of horizontal wind at lower and upper levels increases to more than 10 m·s-1 during precipitation; The vertical wind shear enhancement time of low-level horizontal wind under warm shear potential is 2-6 hours earlier than that of precipitation; the vertical wind shear enhancement time of low-level horizontal wind under cold shear potential is synchronized with precipitation. 3) Under the warm shear potential, the low-level jet index is relatively continuous and fluctuates greatly, corresponding to the intensity of precipitation is stronger, and the precipitation distribution is uneven; under the cold shear potential, the low-level jet index is more dispersed and fluctuates less, corresponding to the intensity of precipitation is weaker, and the precipitation distribution is uniform. The increase of low-level jet index is 1-4 hours ahead of precipitation. 4) In the warm shear precipitation stage, the SNR strong echo region appears at a higher altitude in the early stage of precipitation, and increases at the lower level when precipitation tends to weaken. In the cold shear precipitation stage, the SNR strong echo region maintains for a long time in the lower level.

     

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