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Wavelength selection and measurement error theoretical analysis on ground-based coherent differential absorption lidar using 1.53 mu m wavelength for simultaneous vertical profiling of water vapor density and wind speed

机译:基于波长选择和测量误差与使用1.53μm波长的地面相干差分吸收激光雷达的理论分析,用于同时垂直分析水蒸汽密度和风速

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A feasibility study of coherent differential absorption lidar is conducted using a 1.53-mu m wavelength for simultaneously retrieving the water vapor density and wind speed profiles. We selected the ON and OFF wavelengths to be 1531.383 and 1531.555 nm, respectively, for minimizing the effect of the temperature change in the atmosphere. The systematic measurement error can be reduced to below 5% by stabilizing the ON wavelength from -64 to 102 MHz around the center of the water vapor absorption line. Analysis of the speckle and photon statistics errors reveal that the relative error of the water vapor density is less than 10% at the altitude from 0.1 to 1.7 km with the 100 m range resolution with 10 min data accumulation time. The simultaneous measurement of wind speed and direction can also be achieved by employing a conical scan mechanism. (C) 2020 Optical Society of America
机译:使用1.53-MU M波长进行相干微分吸收延迟雷达的可行性研究,用于同时检索水蒸气密度和风速型材。 我们选择开关波长为1531.383和1531.555nm,以最小化气氛中温度变化的效果。 通过在水蒸气吸收线的中心稳定在-64至102MHz上,系统测量误差可以减小到5%以下。 散斑和光子统计误差的分析表明,水蒸气密度的相对误差小于0.1至1.7km的高度,100 M范围分辨率,具有10分钟的数据累积时间。 通过采用锥形扫描机构,还可以实现风速和方向的同时测量。 (c)2020美国光学学会

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    《Applied optics》 |2020年第8期|共10页
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