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Calibration of Raman Lidar Water Vapor Mixing Ratio Measurements Using Zenithal Measurements of Diffuse Sunlight and a Radiative Transfer Model

机译:拉曼激光雷达水汽混合比测量的校准,使用漫射阳光的天顶测量和辐射传递模型

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摘要

Among the different techniques available for measuring the atmospheric water vapor content, Raman lidars stand out as accurate instruments providing detailed profiles with high temporal and altitude resolution. Their principle is based on obtaining the range-resolved ratio of the lidar signals corresponding to Raman returns from water vapor and nitrogen molecules, which is proportional to the water vapor mixing ratio. To do this, it is necessary to determine a calibration factor, specific of each lidar instrument. A method for obtaining this parameter, based on zenith measurements of diffuse sunlight, on Raman scattering models and on simulations, using a radiative transfer model, to estimate sky radiances at the wavelengths of interest, has been applied to the lidar system of Universitat Politècnica de Catalunya (UPC; Technical University of Catalonia, Barcelona, Spain). A set of calibrations, performed between 2016 and 2017, has permitted assessing the calibration procedure and analyzing the stability of the calibration factor in the UPC instrument. Results show that although the calibration factor can remain stable for long periods of time, it can suffer sudden variations that make indispensable to implement a convenient and reliable procedure to perform regular calibrations. We show that the method, which can be applied to any lidar with water vapor and nitrogen Raman channels, can completely dispense with radiosonde data. The calibration method is validated by comparison with simultaneous radiosonde water vapor measurements. Limitations of radiosondes for validating—and eventually calibrating—water vapor Raman lidars have been revealed.
机译:在可用于测量大气中水汽含量的各种不同技术中,拉曼激光雷达作为精确的仪器脱颖而出,可提供具有高时间和高度分辨率的详细剖面。它们的原理是基于获得与来自水蒸气和氮分子的拉曼回流相对应的激光雷达信号的距离分辨比,该比值与水蒸气混合比成正比。为此,有必要确定特定于每个激光雷达仪器的校准因子。一种基于散射阳光的天顶测量,拉曼散射模型和模拟(使用辐射传递模型来估计感兴趣波长的天空辐射)来获得此参数的方法已应用于UniversitatPolitècnicade的激光雷达系统加泰罗尼亚(UPC;加泰罗尼亚技术大学,西班牙巴塞罗那)。在2016年至2017年之间进行的一系列校准允许评估校准程序并分析UPC仪器中校准因子的稳定性。结果表明,尽管校准因子可以长时间保持稳定,但它可能会遭受突然的变化,这对于实施常规校准所需要的方便,可靠的过程是必不可少的。我们表明,该方法可以应用于具有水蒸气和氮气拉曼通道的任何激光雷达,可以完全省去无线电探空仪的数据。通过与同时进行探空仪水汽测量的比较来验证校准方法的有效性。探空仪在验证和最终校准水蒸气拉曼激光雷达方面存在局限性。

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  • 来源
    《IEEE Transactions on Geoscience and Remote Sensing.》 |2018年第12期|7405-7414|共10页
  • 作者单位

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

    Department of Signal Theory and Communications, CommSensLab, Universitat Politècnica de Catalunya (BarcelonaTech-UPC), Barcelona, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Laser radar; Calibration; Nitrogen; Atmospheric measurements; Instruments; Atmospheric modeling; Interference;

    机译:激光雷达校准氮大气测量仪器大气模拟干扰;

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