湖南兩次不同類型大霧過程特征及水汽源對比分析
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湖南省氣象局重點專項(CXFZ2023-ZDZX01)、湖南省氣象創新發展專項(CXFZ2024-FZZX40;CXFZ2023-FZZX27)、湖南省氣象局業務能力建設項目(NLJS15)、湖南省自然科學基金(2025JJ80283)、湖南省氣象局研究型業務預報預測專項(XQKJ21C010;XQKJ21C008;XQKJ22C008)、湖南省氣象臺青年創新基金科研項目(QNJJ202202、QNJJ202505、QNJJ202506)共同資助


Comparative Analysis of Characteristics and Water Vapor Sources of Two Different Types of High-Impact Fog Processes
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    摘要:

    利用常規觀測資料、高速公路災情數據與NCEP再分析資料,對湖南省2021年12月31日發生的平流霧和2022年1月19日發生的輻射霧環流背景、氣象要素、物理量場、對高速公路的影響及HYSPLIT后向軌跡模擬的水汽來源進行對比分析。結果表明:①2次大霧過程高空都出現了多層逆溫,大氣層結穩定,地面相對濕度大于98%。②2次大霧過的天氣形勢差異明顯,平流霧700~600 hPa有強烈的暖平流發展,地面為弱冷高壓控制,輻射霧500 hPa為槽后偏北氣流控制,地面為均壓場,大霧發生期間整層轉為冷平流;平流霧過程期間氣溫較輻射霧低。③兩類大霧水汽來源和水汽輸送高度存在明顯差異,輻射霧水汽全部來自鄂西山地、江淮地區、青海高原和準噶爾盆地4條內陸通道,其中青海高原和準噶爾盆地高層通道快速輸送干冷空氣,鄂西山地、江淮地區低層通道的緩慢輸送濕冷空氣;平流霧水汽分別來自重慶北部、青海高原2條內陸通道和孟加拉灣、印度半島2條低緯度洋面通道,其中低緯度洋面中高層通道快速輸送暖濕空氣,內陸低層通道緩慢輸送冷空氣。分析和研究結果有助于預報員提高湖南這兩類大霧天氣的預報預警準確率,同時為交通部門大霧天氣精準管控提供參考依據。

    Abstract:

    Two high-impact processes of advection fog on 31 December 2021 and radiation fog on 19 January 2022 occurred in Hunan. Using conventional weather observations, highway disaster data, and NCEP reanalysis data, the weather background, meteorological elements, physical quantity fields, their effects on highways, and the water vapour source of HYSPLIT backward trajectory simulation of the two processes are compared and analysed. The results show that during the two fog processes, the middle and high latitudes of 500 hPa show a circulation situation of two troughs and one ridge, there are multi-layer inversions, the atmospheric stratification is stable, and the relative humidity of the ground is above 98%. In terms of water vapour transport, there is a rapid sinking transport of water vapour in the north. The main and strongest water vapour transport in the near-surface channel is a short-distance and slow-moving channel entering Hunan through the mountainous area of western Hubei, and the contribution rate of water vapour flux accounts for more than 50%, indicating that the continuous and slow infiltration of cold and wet air near the ground layer is conducive to the cooling and condensation of the gas block to form droplets. There are obvious differences in the low-level, ground situation and meteorological elements during the two heavy fog processes. The first advection fog process has a strong warm advection development at 700-600 hPa, and the ground is controlled by weak cold high pressure, accompanied by the thickening of the inversion layer. The second radiation fog process is controlled by the northerly airflow behind the trough at 500 hPa, and the ground is a weak pressure field. During the fog, the whole layer turns to cold advection. The temperature during the advection fog process is lower than that during the radiation fog process. There are obvious differences in water vapour sources and the height of water vapour channels between the two processes. The radiation fog transports cold air in the northern channel, two in the upper and two in the lower layers. The dry cold air is quickly transported to the fog area with two high-level water vapour channels, and the wet cold air is slowly transported to the fog area with two low-level channels. The water vapour channels of advection fog input half from the north and half from the south. The southern channel transports warm and humid air, and the northern channel transports cold air. The analysis and research results are helpful for forecasters to improve the accuracy of forecasting and early warning of two types of fogs. At the same time, it provides a reference for the precise control of fog weather in the transportation department.

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趙恩榕,潘筱龍,尹新懷,姚倩,周偉,劉紅武,胡燕,陳龍,蘇濤.湖南兩次不同類型大霧過程特征及水汽源對比分析[J].氣象科技,2025,53(2):235~246

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  • 收稿日期:2024-07-01
  • 定稿日期:2024-11-27
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  • 在線發布日期: 2025-04-21
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