基于多波段雷達(dá)觀測(cè)的浙江一次颮線演變結(jié)構(gòu)特征分析
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浙江省氣象局重點(diǎn)項(xiàng)目(2022ZD01)資助


Analysis of Evolution Structure of a Squall Line in Zhejiang Province Based on Multi-band Radar Observation
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    摘要:

    本文利用S波段雙偏振雷達(dá)、X波段相控陣?yán)走_(dá)數(shù)據(jù)及其反演風(fēng)場(chǎng)、閃電定位、ERA5再分析資料等,對(duì)2022年7月21日發(fā)生在浙江中北部一次颮線的特征進(jìn)行了分析。結(jié)果表明: 颮線發(fā)生在副高控制下,高空冷渦底部干冷空氣侵入造成不穩(wěn)定層結(jié)以及較高的能量和充足的邊界層水汽,是颮線發(fā)生的有利環(huán)境條件。颮線初始對(duì)流形成于杭州東部和西北部南北風(fēng)的輻合線中,強(qiáng)風(fēng)暴合并后風(fēng)暴尺度出現(xiàn)明顯增長(zhǎng)并形成颮線,杭州灣南岸的輻合中心、垂直風(fēng)速差的增強(qiáng)有利于颮線迅速發(fā)展,當(dāng)垂直風(fēng)速差與冷池傳播速度相當(dāng)時(shí),颮線發(fā)展成熟;大風(fēng)主要出現(xiàn)在云閃密集區(qū)。X波段相控陣?yán)走_(dá)可以精細(xì)探測(cè)極端大風(fēng)發(fā)生前后颮線強(qiáng)單體的垂直結(jié)構(gòu):成熟階段強(qiáng)單體中差分反射率和差分相移率柱的發(fā)展代表風(fēng)暴加強(qiáng),回波質(zhì)心迅速下降可指示地面大風(fēng),降水粒子下落拖拽進(jìn)一步加強(qiáng)地面風(fēng)力。

    Abstract:

    In this paper, the characteristics of a squall line that occurred in central and northern Zhejiang on 21 July 2022 are analyzed by using S-band dual-polarization radar, X-band phased array radar data, wind retrieval, lightning location and ERA5 reanalysis data. The results show that: The squall line affected the area for up to 6 hours, causing large-scale winds of 8-10 levels along the way. The pressure surge ahead of the strong winds and precipitation at the extremely strong wind station served as a precursor to extreme winds. The squall line occurred under the control of the subtropical high. The dry and cold air at the bottom of the high-level cold vortex invaded, with the high-energy and high humidity in the low-level forming an unstable layer structure, which provided favourable environmental conditions for the generation and maintenance of the squall line. The observation of the S-band dual polarisation radar showed that the evolution of squall lines went through processes such as initiation, merging, growth, maturity, and disappearance. The initial convection was formed in the mesoscale convergence lines in the northwest and east of Hangzhou. Strong storms in the northwest of Hangzhou moved faster than those in the east, leading to the rapid merging and development of the two into squall lines. After the squall line entered the south bank of the Hangzhou Bay, the storm outflow overlapped with the mesoscale convergence centre on the south bank of the Hangzhou Bay, leading to the rapid development of the squall line to its mature stage. In addition, the growth of vertical wind shear was also conducive to the rapid development of the squall line. Strong winds often occurred in areas with dense cloud flashes. The X-band phased array radar could finely detect the vertical structure of strong cells before and after extreme winds occurred. The development of ZDR and KDP columns in mature strong cells represented storm intensification, and the rapid decline of the echo centroid could indicate surface winds. The falling and dragging of precipitation particles intensified the sinking motion, which further enhanced the strong winds. The configuration of inclined upward and downward airflow in strong squall lines ensured that the falling of precipitation particles did not affect the upward airflow, which was beneficial for the development and maintenance of storms. The oblique sinking airflow met the near-surface environmental wind, triggering the development of frontal convection, which was conducive to the propagation of squall lines downstream.

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錢卓蕾,嚴(yán)佩文,李鋒,黃瀅.基于多波段雷達(dá)觀測(cè)的浙江一次颮線演變結(jié)構(gòu)特征分析[J].氣象科技,2024,52(5):681~691

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  • 收稿日期:2023-10-31
  • 最后修改日期:2024-05-27
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  • 在線發(fā)布日期: 2024-10-30
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