量子电子学报 ›› 2025, Vol. 42 ›› Issue (2): 196-205.doi: 10.3969/j.issn.1007-5461.2025.02.005

• 激光技术与器件 • 上一篇    下一篇

气压调谐的窄带滤波器研制及其在铁共振荧光激光雷达中的应用

李春伟 1,2, 邓 迁 1, 李 乘 1,2, 吴德成 1,3, 刘 东 1,3, 王珍珠 1,3*   

  1. 1 中国科学院合肥物质科学研究院安徽光学精密机械研究所, 中国科学院大气光学重点实验室, 安徽 合肥 230031; 2 中国科学技术大学, 安徽 合肥 230026; 3 先进激光技术安徽省实验室, 安徽 合肥 230037
  • 收稿日期:2023-04-19 修回日期:2023-05-26 出版日期:2025-03-28 发布日期:2025-03-28
  • 通讯作者: zzwang@aiofm.ac.cn E-mail:zzwang@aiofm.ac.cn
  • 作者简介:李春伟 ( 1998 - ), 安徽合肥人, 研究生, 主要从事激光雷达大气探测方面的研究。E-mail: thislcw@mail.ustc.edu.cn
  • 基金资助:
    安徽省重点研究与开发计划项目 (2022h11020008), 中国科学院青年创新促进会人才项目 (Y2021113), 中国科学院合肥物质科学 研究院院长基金项目 (2021YZGH01)

Development of pressure⁃tuned narrowband filter and its application in iron resonance fluorescence lidar

LI Chunwei 1,2 , DENG Qian1 , LI Cheng1,2 , WU Decheng 1,3 , LIU Dong 1,3 , WANG Zhenzhu 1,3*   

  1. 1 Key Laboratory of Atmospheric Optics, Anhui Institute of Optics and Fine Mechanics, HFIPS, Chinese Academy of Sciences, Hefei 230031, China; 2 University of Science and Technology of China, Hefei 230026, China; 3 Advanced Laser Technology Laboratory of Anhui Province, Hefei 230037, China
  • Received:2023-04-19 Revised:2023-05-26 Published:2025-03-28 Online:2025-03-28

摘要: 铁共振荧光激光雷达是探测中间层顶至热层底部区域的温度和风场的重要设备, 但在白天时段, 由于强天 空背景噪声的存在, 铁原子共振荧光信号常被淹没, 而无法实现中高层大气的温度和风场探测。为了解决该问题, 本 文研制了气压调谐的窄带滤波器, 提出了将两个空气间隙的法布里-珀罗标准具串联并与窄带干涉滤光片组合的滤 波新方法, 并最终应用于铁共振荧光多普勒激光雷达中, 实现了在白天时段对大气中间层顶至热层底部区域的温度 和风场探测。首先, 通过定义滤波器性能评价函数, 对滤波器的滤波性能进行了定量分析, 确定了两个标准具的带 宽、自由光谱范围等参数; 并进一步设计了基于PID算法的控制系统, 实现了对标准具腔气压的精确控制; 随后, 通过 模拟仿真测试了滤波器的设计指标; 最后, 通过外场试验证明了滤波器在铁共振荧光激光雷达中的滤波效果, 其信噪 比达到136以上, 实现了铁层区域的风速和温度探测。

关键词: 大气光学, 窄带滤波器, 法布里-珀罗标准具, 铁共振荧光激光雷达

Abstract: Iron resonance fluorescence lidar is an important means of measuring temperature and wind field in the region from the top of the intermediate layer to the bottom of the thermosphere. However, due to the presence of strong sky background noise during the daytime, the resonance fluorescence signals of iron atoms are submerged, making it impossible to detect temperature and wind field in the middle and upper atmosphere. In order to solve this problem, this paper developed a tunable narrowband filter and proposed a new filtering method of connecting two Fabry-Perot etalons with air gap in series and combining them with a narrowband interference filter. Then the filter and the method were applied in iron resonance fluorescence Doppler lidar, achieving temperature and wind field detection in the region from the top of the intermediate layer to the bottom of the thermosphere during daytime. Firstly, by defining a filter performance evaluation function, the filtering performance of the filter was quantitatively analyzed, and parameters such as bandwidth and free spectral range of the two etalons were determined. Furthermore, a control system based on PID algorithm was designed to achieve precise control of the pressure in etalon chamber. Then, the design specifications of the filter were tested through simulation. And finally, field experiments demonstrated the filtering effectiveness of the filter in the iron resonance fluorescence lidar system, achieving a signal-to-noise ratio exceeding 136 and enabling wind speed and temperature detection in the iron layer region.

Key words: atmospheric optics, narrowband filter, Fabry-Perot etalon, iron resonance fluorescence lidar

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