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首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Compact fiber-optic spectroscopic design and its validation in atmospheric water vapor Raman lidar
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Compact fiber-optic spectroscopic design and its validation in atmospheric water vapor Raman lidar

机译:紧凑型光纤光谱设计及其在大气水蒸气拉曼LIDAR中的验证

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Spectroscopic systems with compact structure, high reliability, and high stability will push forward the application of lidar in the meteorological and environmental fields as well as space-based and space-borne lidar. Recently, we have successfully designed and verified a new robust fiber-optic spectroscopic Raman lidar for atmospheric water vapor measurements. The compact fiber-optic Raman spectroscopic design was proposed with a cascaded fiber Fabry-Perot filter and a fiber broadband filter, which features an all-fiber-connection structure and a high-spectral-resolution spectrum. These fiber-optic filters have been successfully fabricated in the visible region and matched each other in individual all-fiber Raman channels. The performance of the all-fiber spectroscopic system is measured experimentally, and it is demonstrated that the spectral output from the individual fiber Raman channel provides a bandwidth of 3-4 nm, a central wavelength of 660 nm or 606.7 nm, and an efficient rejection rate of more than >10(7), and it can thus achieve the extraction of vibrational Raman scattering signals from water vapor and from nitrogen molecules in lidar returns and simultaneously reject elastic scattering signals. Furthermore, the fiber-optic spectroscopic Raman lidar was developed at Xi'an University of Technology in Xi'an, China (34.233 degrees N, 108.911 degrees E), and preliminary exploration was carried out for water vapor measurements. Two measurement examples are analyzed to validate the lidar performance and the retrieved water vapor mixing ratio profiles, and its comparisons with Weather Research and Forecasting (WRF) model data also verified the correctness of the lidar data. Despite the limitation of low coupling efficiency by a single-mode optical fiber, atmospheric water vapor measurements up to 700 m were achieved during nighttime under conditions of a 150 mJ laser pulse energy, a 600 mm telescope, and a 5 min integration time. The results validated the concept of all-fiber spectroscopic design and its feasibility for atmospheric water vapor measurements by Raman lidar. The compact fiber-structure characteristics and excellent optical properties provide a new solution to the new spectroscopic technique for operational applications of lidar and space-borne lidar. (C) 2020 Optical Society of America
机译:结构紧凑,可靠性高,高稳定性的光谱系统将推动激光器在气象和环境领域的应用以及基于空间和空间的潮羊段。最近,我们已成功设计和验证了一种新的强大的光纤光谱拉曼LIDAR,用于大气水蒸气测量。采用级联光纤法布里 - 珀罗滤波器和光纤宽带滤波器,具有全光纤连接结构和高光谱分辨率频谱,提出了紧凑的光纤拉曼光谱设计。这些光纤过滤器已经成功地制造在可见区域中并在各个光纤拉曼通道中彼此匹配。实验测量全光纤光谱系统的性能,证明来自各个光纤拉曼通道的光谱输出提供3-4nm的带宽,中心波长为660nm或606.7nm,以及有效的抑制速率超过> 10(7),因此可以实现从水蒸气和激光器中的氮分子的振动拉曼散射信号的提取,并同时拒绝弹性散射信号。此外,纤维光谱拉曼利坎兰德尔于中国西安技术大学开发(34.233度,108.911摄氏度),对水蒸气测量进行了初步勘探。分析了两个测量实施例以验证激光雷达性能和检索的水蒸气混合比轮廓,其与天气研究和预测(WRF)模型数据的比较也验证了LIDAR数据的正确性。尽管通过单模光纤限制了低耦合效率,但在150 MJ激光脉冲能量,600mm望远镜的条件下,夜间达到大约700米的大气水蒸气测量值和5分钟的集成时间。结果验证了全光纤光谱设计的概念及其对拉曼·丽达的大气水蒸气测量的可行性。紧凑的纤维结构特性和优异的光学性能为LIDAR和空间传播潮羊段的运行应用提供了新的解决方案。 (c)2020美国光学学会

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