...
首页> 外文期刊>Journal of Modern Optics >A newly designed high-spectral-resolution Rayleigh temperature lidar based on two-stage Fabry-Perot interferometer
【24h】

A newly designed high-spectral-resolution Rayleigh temperature lidar based on two-stage Fabry-Perot interferometer

机译:基于两阶段法布里 - 珀罗干涉仪的新设计的高光谱分辨率瑞利温度激光器

获取原文
获取原文并翻译 | 示例
           

摘要

A two-stage Fabry-Perot interferometer (FPI)-based high-spectral-resolution (HSR) Rayleigh temperature lidar technology is proposed that is capable of simultaneously detecting tropospheric temperature and aerosol optical properties with high-precision. The system structure is designed and the measurement principle is analysed. A two-channel integrated FPI used forming a two-stage FPI ensures the relative stability of the two FPI spectrums. The first-stage FPI with high spectral resolution can effectively separate Mie and Rayleigh signals to derive the signal components. Two adjacent-order transmission spectrums of the second-stage FPI are just located in the two wings of Rayleigh-Brillouin (R-B) scattering spectrum to measure temperature. Two multimode polarization insensitive optical circulators used in receiver system can achieve high-efficiency utilization of signals. A narrow linewidth semiconductor laser at 852nm is used as light source. Using the selected and optimized system parameters, the lidar performance simulation results show that in the sunny weather conditions for 0.15WSr(-1)m(-2)nm(-1) sky brightness, with 0.3W laser power, a 30cm diameter telescope, 60m range resolution and 30min observation time, the temperature measurement errors are below 0.4K in night-time and below 1.6K in daytime; the relative measurement errors of backscatter ratio are below 0.04% in night-time and below 0.13% in daytime respectively up to 6km height. Compared with the traditional FPI-based HSR technique, the technique we proposed can improve the detection accuracy of temperature by 2.5 times and can also significantly improve the detection accuracy of backscatter ratio.
机译:基于两阶段法布里 - 珀罗干涉仪(FPI)的高光谱分辨率(HSR)瑞利温度激光雷达技术,其能够以高精度同时检测对流层温度和气溶胶光学性质。设计了系统结构,分析了测量原理。用于形成两级FPI的双通道集成FPI确保了两个FPI光谱的相对稳定性。具有高光谱分辨率的第一级FPI可以有效地分离MIE和RAYLEIGH信号来导出信号分量。第二阶段FPI的两个相邻顺序传输频谱仅位于瑞利 - 布里渊(R-B)散射光谱的两个翅膀中以测量温度。在接收器系统中使用的两个多模偏振不敏感光学循环器可以实现信号的高效利用率。 852nm处的窄线宽半导体激光器用作光源。使用所选和优化的系统参数,LIDAR性能仿真结果表明,在阳光天气条件下为0.15WSR(-1)M(-2)NM(-1)天空亮度,具有0.3W激光功率,直径30厘米的望远镜,60米范围分辨率和30分钟观察时间,温度测量误差低于0.4K的夜间,白天低于1.6k;反散射率的相对测量误差在夜间夜间低于0.04%,白天分别高达6km的0.13%。与传统的基于FPI的HSR技术相比,我们提出的技术可以将温度的检测精度提高2.5倍,也可以显着提高反向散射率的检测精度。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号