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首页> 外文期刊>Applied Optics >Ultraviolet Rayleigh-Mie lidar with Mie-scattering correction by Fabry-Perot etalons for temperature profiling of the troposphere
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Ultraviolet Rayleigh-Mie lidar with Mie-scattering correction by Fabry-Perot etalons for temperature profiling of the troposphere

机译:Fabry-Perot etalons进行米氏散射校正的紫外线Rayleigh-Mie激光雷达,用于对流层温度剖析

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A Rayleigh--Mie-scattering lidar system at an eye-safe 355-nm ultraviolet wavelength that is based on a high-spectral-resolution lidar technique is demonstrated for measuring the vertical temperature profile of the troposphere. Two Rayleigh signals, which determine the atmospheric temperature, are filtered with two Fabry-Perot etalon filters. The filters are located on the same side of the wings of the Rayleigh-scattering spectrum and are optically constructed with a dual-pass optical layout. This configuration achieves a high rejection rate for Mie scattering and reasonable transmission for Rayleigh scattering. The Mie signal is detected with a third Fabry-Perot etalon filter, which is centered at the laser frequency. The filter parameters were optimized by numerical calculation; the results showed a Mie rejection of approx -45 dB, and Rayleigh transmittance greater than 1% could be achieved for the two Rayleigh channels. A Mie correction method is demonstrated that uses an independent measure of the aerosol scattering to correct the temperature measurements that have been influenced by the aerosols and clouds. Simulations and preliminary experiments have demonstrated that the performance of the dual-pass etalon and Mie correction method is highly effective in practical applications. Simulation results have shown that the temperature errors that are due to noise are less than 1 K up to a height of 4 km for daytime measurement for 300 W m~(-2) sr~(-1) (mu)m~(-1) sky brightness with a lidar system that uses 200 mJ of laser energy, a 3.5-min integration time, and a 25-cm telescope.
机译:演示了基于高光谱分辨率激光雷达技术的对眼睛安全的355 nm紫外线波长的瑞利-米氏散射激光雷达系统,用于测量对流层的垂直温度分布。用两个Fabry-Perot标准具滤波器对确定环境温度的两个瑞利信号进行滤波。滤光片位于瑞利散射光谱机翼的同一侧,并采用双通光学布局进行光学构造。这种配置实现了米氏散射的高拒绝率和瑞利散射的合理透射率。用第三个Fabry-Perot标准具滤波器检测Mie信号,该滤波器以激光频率为中心。通过数值计算优化了滤波器参数;结果表明,两个瑞利信道的Mie抑制约为-45 dB,瑞利透射率可达到1%以上。演示了Mie校正方法,该方法使用了独立的气溶胶散射测量方法来校正受气溶胶和云影响的温度测量值。仿真和初步实验表明,双重通过标准具和Mie校正方法的性能在实际应用中非常有效。仿真结果表明,在300 W m〜(-2)sr〜(-1)μmm〜(-)的白天测量中,由于噪声引起的温度误差小于1 K到4 km的高度1)使用200 mJ激光能量,3.5分钟积分时间和25 cm望远镜的激光雷达系统的天空亮度。

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