Preliminary exploration of atmospheric water vapor, liquid water and ice water by ultraviolet Raman lidar.

IF 3.2 2区 物理与天体物理 Q2 OPTICS
Wang Yufeng, Wang Qing, Hua Dengxin
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引用次数: 1

Abstract

Water is the only atmospheric component with three phases. In this work, ultraviolet Raman lidar is developed for synchronous measurements of water vapor, liquid water and ice water in Xi'an (34.233°N, 108.911°E), China. Different interference filters are designed to construct individual water Raman channels, and the corresponding central wavelength and bandwidth are determined by 399.0 nm (3.1 nm), 403.0 nm (5.0 nm) and 407.6 nm (0.6 nm) in ice water, liquid water and water vapor Raman channels, respectively. The mutual interference effect originating from the overlapping characteristics of water Raman spectra is further analyzed, and an accurate retrieval method based on linear simultaneous equations and mutual interference degrees is proposed for synchronous three-phase water mixing ratio profiles. Preliminary measurements are carried out in the Centre for lidar remote sensing research of Xi'an University of Technology, and representative measurement examples are obtained and validated for the performance of the Raman lidar system. Synchronous mixing ratio profiles in water vapor, liquid water and ice water are retrieved, and the corresponding extinction coefficient and relative humidity profiles are also combined to reveal the variation characteristics in three-phase waters. The possible aerosol fluorescence are analyzed as well, and it is inferred that the aerosol fluorescence might affect (possibly overestimate) the derived mixing ratio values of the liquid water and ice water. The effective detection can reach up to a height of 5 km under cloudy weather, and synchronized growth in water vapor and liquid water content is obtained in cloud layers. Continuous observations are also made under hazy weather conditions, and the temporal and spatial evolution trends of three-phase waters in clouds are successfully realized. Preliminary exploration and results validate the feasibility of ultraviolet Raman lidar for synchronous measurements of atmospheric water vapor, liquid water and ice water.

紫外拉曼激光雷达对大气水汽、液态水和冰水的初步探测。
水是大气中唯一具有三相的成分。本文研制了用于西安(34.233°N, 108.911°E)水汽、液态水和冰水同步测量的紫外拉曼激光雷达。设计不同的干涉滤光片构建单独的水拉曼通道,确定冰水、液态水和水蒸气拉曼通道中对应的中心波长和带宽分别为399.0 nm (3.1 nm)、403.0 nm (5.0 nm)和407.6 nm (0.6 nm)。进一步分析了由水拉曼光谱重叠特征引起的相互干扰效应,提出了一种基于线性联立方程和相互干扰度的同步三相水混合比剖面精确检索方法。在西安理工大学激光雷达遥感研究中心进行了初步测量,并获得了具有代表性的测量实例,验证了拉曼激光雷达系统的性能。获取水蒸气、液态水和冰水的同步混合比廓线,结合消光系数和相对湿度廓线,揭示三相水体的混合比变化特征。分析了可能存在的气溶胶荧光,推断气溶胶荧光可能会影响(可能高估)推导出的液态水和冰水的混合比值。在多云天气下,有效探测高度可达5 km,云层中水汽和液态水含量同步增长。在雾霾天气条件下进行了连续观测,成功实现了云中三相水的时空演变趋势。初步探索和结果验证了紫外拉曼激光雷达同步测量大气水汽、液态水和冰水的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Optics express
Optics express 物理-光学
CiteScore
6.60
自引率
15.80%
发文量
5182
审稿时长
2.1 months
期刊介绍: Optics Express is the all-electronic, open access journal for optics providing rapid publication for peer-reviewed articles that emphasize scientific and technology innovations in all aspects of optics and photonics.
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