Hua Dengxin, Kobayashi Takao
EKO Instruments Company, Ltd., 1-21-8, Hatagaya, Shibuya-ku, Tokyo 151-0072, Japan.
Appl Opt. 2005 Oct 20;44(30):6474-8. doi: 10.1364/ao.44.006474.
A UV Rayleigh-Mie scattering lidar system at 355 nm has been upgraded for more-accurate temperature profiling of the troposphere by use of a new multicavity Fabry-Perot etalon (MCFPE) filter. The MCFPE filter, which was designed to improve the stability and operational characteristics of the lidar system, has three filter bandpass functions and separates one Mie scattering and two Rayleigh scattering signals from the lidar return signal and simultaneously acts as a laser frequency discriminator to lock the laser frequency. Moreover, a high-resolution grating is employed to block signal interference from Raman scattering and the solar background. A practical lidar system, which features strong system stabilization and high measurement accuracy, has been built, and the performance of the lidar system has been verified by comparison of temperature profiling between the lidar and a radiosonde. Good agreement between the two instrument measurements was obtained in terms of lapse rate and inversion layer height. Statistical temperature errors of less than 1 K up to a height of 3 km are obtainable with 5 min observation time for daytime measurements.
一台355纳米的紫外瑞利-米氏散射激光雷达系统已进行升级,通过使用新型多腔法布里-珀罗标准具(MCFPE)滤波器来更精确地测量对流层温度剖面。MCFPE滤波器旨在提高激光雷达系统的稳定性和运行特性,它具有三个滤波器带通功能,可从激光雷达回波信号中分离出一个米氏散射信号和两个瑞利散射信号,同时作为激光频率鉴别器来锁定激光频率。此外,采用高分辨率光栅来阻挡拉曼散射和太阳背景的信号干扰。现已构建了一个具有强大系统稳定性和高测量精度的实用激光雷达系统,并通过比较激光雷达和无线电探空仪的温度剖面来验证激光雷达系统的性能。在递减率和逆温层高度方面,两种仪器测量结果取得了良好的一致性。白天测量时,观测5分钟,在高达3千米的高度上可获得统计温度误差小于1开尔文的结果。