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首页> 外文期刊>Japanese journal of applied physics >Low-Altitude Wind Measurement Using Incoherent Doppler Lidar by Utilizing Both Absorption Slopes of the Iodine Absorption Spectrum
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Low-Altitude Wind Measurement Using Incoherent Doppler Lidar by Utilizing Both Absorption Slopes of the Iodine Absorption Spectrum

机译:利用非连续多普勒激光雷达通过利用碘吸收光谱的两个吸收斜率进行低空风速测量

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摘要

In this study, we perform wind observation in the lower troposphere using the incoherent Doppler wind lidar that we previously developed for the upper troposphere and stratosphere. This Doppler lidar uses both slopes of the iodine absorption spectrum, and the Doppler shift is obtained from the ratio of the two transmission signals. Because this ratio is influenced by Mie contamination, a precise Mie measurement improves the quality of wind observation in the Mie contamination region. If the iodine absorption spectrum completely absorbs the Mie signal, wind measurement will be independent of Mie contamination. The effect of Mie contamination on wind measurement by Mie-Rayleigh backscattering is quantified and the need for the absorption of the Mie signal is assessed. Moreover, we compare the wind profiles measured in the Mie contamination region using the Doppler wind lidar and a wind profiler. The average wind difference between the lidar and the wind profiler is 1.39 m/s. The Mie contamination was completely excluded by the iodine absorption spectrum and lidar comparison experiment demonstrated the high feasibility and good capability of the lidar for measuring wind in the Mie contamination range.
机译:在这项研究中,我们使用先前为高层对流层和平流层开发的非相干多普勒风激光雷达对流层下层进行风观测。该多普勒激光雷达使用了碘吸收光谱的两个斜率,并且多普勒频移是从两个传输信号之比获得的。由于该比率受Mie污染的影响,因此精确的Mie测量可提高Mie污染区域的风向观测质量。如果碘吸收光谱完全吸收了米氏信号,则风的测量将不受米氏污染的影响。量化了Mie污染对通过Mie-Rayleigh反向散射进行风测量的影响,并评估了吸收Mie信号的需求。此外,我们比较了使用多普勒测风雷达和测风仪在三重污染区域测得的风廓线。激光雷达和风廓线仪之间的平均风差为1.39 m / s。碘吸收光谱完全排除了米氏污染,激光雷达比较实验表明,激光雷达在米氏污染范围内测量风的可行性高,性能良好。

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  • 来源
    《Japanese journal of applied physics》 |2009年第12期|126501.1-126501.5|共5页
  • 作者单位

    Graduate School of System Design Engineering, Tokyo Metropolitan University, 6-6 Asahigaoka, Hino, Tokyo 191-0065, Japan;

    Graduate School of System Design Engineering, Tokyo Metropolitan University, 6-6 Asahigaoka, Hino, Tokyo 191-0065, Japan;

    Graduate School of System Design Engineering, Tokyo Metropolitan University, 6-6 Asahigaoka, Hino, Tokyo 191-0065, Japan;

    Meteorological Research Institute, 1-1 Nagamine, Tsukuba, Ibaraki 305-0052, Japan;

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