Features of the Vertical Distribution of Air Temperature over Tomsk during Sudden Stratospheric Warming in Winter 2023 According to Data from the Siberian Lidar Station

IF 0.9 Q4 OPTICS
O. Yu. Antokhina, S. M. Bobrovnikov, V. I. Zharkov, O. S. Zorkaltseva, D. A. Trifonov
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引用次数: 0

Abstract

Atmospheric temperature anomalies associated with sudden stratospheric warming events (SSWs) observed over the territory of Siberia require detailed study. In Siberia, there are few instruments that can provide the necessary information on the vertical distribution of atmospheric temperature. Unique lidar of the Siberian Lidar Station (SLS) of V.E. Zuev Institute of Atmospheric Optics SB RAS, Tomsk, Russia (56.48° N, 85.05° E), developed for regular lidar measurements of atmospheric parameters, is one of few ground-based devices in Siberia which provide necessary data on the vertical stratification of atmospheric temperature during the SSW effect. To determine the characteristics of atmospheric temperature anomalies during the SSW period in winter 2023 over Tomsk, data on atmospheric temperature in individual nights obtained by the SLS lidar, the WACCM model, the standard mid-latitude winter model, and the ERA5 reanalysis were compared. For the first time, the possibility of using vertical atmospheric temperature profiles obtained by the Raman scattering method to study the SSW effect is show. Use of lidar air temperature profiles to analyze changes in the vertical structure of the atmosphere during SSWs is demonstrated.

基于西伯利亚激光雷达站数据的2023年冬季平流层突然变暖期间托木斯克上空气温垂直分布特征
在西伯利亚地区观测到的与平流层突然变暖事件(SSWs)相关的大气温度异常需要详细的研究。在西伯利亚,很少有仪器能提供关于大气温度垂直分布的必要信息。位于俄罗斯托木斯克(56.48°N, 85.05°E)的V.E. Zuev大气光学研究所西伯利亚激光雷达站(SLS)的独特激光雷达是为常规大气参数激光雷达测量而开发的,是西伯利亚为数不多的地面设备之一,可提供SSW效应期间大气温度垂直分层的必要数据。利用SLS激光雷达、WACCM模式、标准中纬度冬季模式和ERA5再分析获得的2023年冬季SSW期间托木斯克地区各夜气温资料进行比较,确定SSW期间大气温度异常特征。首次展示了利用拉曼散射法获得的垂直大气温度分布来研究SSW效应的可能性。利用激光雷达气温廓线分析ssw期间大气垂直结构的变化。
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来源期刊
CiteScore
2.40
自引率
42.90%
发文量
84
期刊介绍: Atmospheric and Oceanic Optics  is an international peer reviewed journal that presents experimental and theoretical articles relevant to a wide range of problems of atmospheric and oceanic optics, ecology, and climate. The journal coverage includes: scattering and transfer of optical waves, spectroscopy of atmospheric gases, turbulent and nonlinear optical phenomena, adaptive optics, remote (ground-based, airborne, and spaceborne) sensing of the atmosphere and the surface, methods for solving of inverse problems, new equipment for optical investigations, development of computer programs and databases for optical studies. Thematic issues are devoted to the studies of atmospheric ozone, adaptive, nonlinear, and coherent optics, regional climate and environmental monitoring, and other subjects.
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