Hua Dengxin, Uchida Masaru, Kobayashi Takao
EKO Instruments Company, Ltd., 1-21-8, Hatagaya, Shibuya-ku, Tokyo, 151-0072 Japan.
Appl Opt. 2005 Mar 1;44(7):1315-22. doi: 10.1364/ao.44.001315.
A UV Rayleigh-Mie scattering lidar has been developed for daytime measurement of temperature and aerosol optical properties in the troposphere. The transmitter is a narrowband, injection-seeded, pulsed, third-harmonic Nd:YAG laser at an eye-safe wavelength of 355 nm. Two Fabry-Perot etalons (FPEs) with a dual-pass optical layout filter the molecular Rayleigh scattering components spectrally for retrieval of the temperature and provide a high rejection rate for aerosol Mie scattering in excess of 43 dB. The Mie signal is filtered with a third FPE filter for direct profiling of aerosol optical properties. The Mie scattering component in the Rayleigh signals, which will have influence on temperature measurements, is corrected by using a measure of aerosol scattering because of the relative insufficiency of Mie rejection of Rayleigh filters in the presence of dense aerosols or clouds, and the Mie rejection capability of system is thus improved. A narrowband interference filter is incorporated with the FPEs to block solar radiation. Also, the small field of view (0.1 mrad) of the receiver and the UV wavelength used enhance the ability of the lidar to suppress the solar background signal in daytime measurement. The system is relatively compact, with a power-aperture product of 0.18 W m(-2), and has a high sensitivity to temperature change (0.62%/K). Lidar measurements taken under different weather conditions (winter and summer) are demonstrated. Good agreement between the lidar and the radiosonde measurements was obtained in terms of lapse rates and inversions. Statistical temperature errors of less than 1 K up to a height of 2 km are obtainable, with an averaging time of approximately 12 min for daytime measurements.
已研制出一种紫外瑞利 - 米氏散射激光雷达,用于对流层温度和气溶胶光学特性的日间测量。发射器是一台窄带、注入种子、脉冲式的三倍频Nd:YAG激光,波长为355 nm,对眼睛安全。两个采用双程光学布局的法布里 - 珀罗干涉仪(FPE)对分子瑞利散射分量进行光谱滤波,以反演温度,并对气溶胶米氏散射提供超过43 dB的高抑制率。米氏信号用第三个FPE滤波器滤波,用于直接探测气溶胶光学特性。由于在存在浓密气溶胶或云层时瑞利滤波器对米氏散射的抑制相对不足,瑞利信号中的米氏散射分量会影响温度测量,因此通过测量气溶胶散射来校正,从而提高了系统的米氏散射抑制能力。一个窄带干涉滤光片与FPE结合,以阻挡太阳辐射。此外,接收器的小视场(0.1 mrad)和所使用的紫外波长增强了激光雷达在日间测量中抑制太阳背景信号的能力。该系统相对紧凑,功率孔径积为0.18 W m(-2),对温度变化具有高灵敏度(0.62%/K)。展示了在不同天气条件(冬季和夏季)下进行的激光雷达测量。在递减率和逆温方面,激光雷达测量结果与无线电探空仪测量结果取得了良好的一致性。在高达2 km的高度上,日间测量平均时间约为12分钟时,统计温度误差可小于1 K。