首页> 外文会议>Society of Photo-Optical Instrumentation Engineers Conference on Lidar Technologies, Techniques, and Measurements for Atmospheric Remote Sensing >Potential and range of application of elastic backscatter lidar systems using polarization selection to minimize detected skylight noise
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Potential and range of application of elastic backscatter lidar systems using polarization selection to minimize detected skylight noise

机译:弹性反向散射利达系统使用极化选择的潜力和应用范围,以最大限度地减少检测到的天窗噪声

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We examine the potential, range of application, and limiting factors of a polarization selection technique, recently devised by us, which takes advantage of naturally occurring polarization properties of scattered sky light to minimize the detected sky background signal and which can be used in conjunction with linearly polarized elastic backscatter lidars to maximize lidar receiver SNR. In this approach, a polarization selective lidar receiver is aligned to minimize detected skylight, while the polarization of the transmitted lidar signal is rotated to maintain maximum lidar backscatter signal throughput to the receiver detector, consequently maximizing detected signal to noise ratio. Results presented include lidar elastic backscatter measurements, at 532 nm which show as much as a factor of √10 improvement in signal-to-noise ratio over conventional un-polarized schemes. For vertically pointing lidars, the largest improvements are limited to symmetric early morning and late afternoon hours. For non-vertical scanning lidars, significant improvements are achievable over much more extended time periods, depending on the specific angle between the lidar and solar axes. A theoretical model that simulates the background skylight within the single scattering approximation showed good agreement with measured SNR improvement factors. Diurnally asymmetric improvement factors, sometimes observed, are explained by measured increases in PWV and subsequent modification of aerosol optical depth by dehydration from morning to afternoon. Finally, since the polarization axis follows the solar azimuth angle even for high aerosol loading, as demonstrated using radiative transfer simulations, it is possible to conceive automation of the technique. In addition, it is shown that while multiple scattering reduces the SNR improvement, the orientation of the minimum noise state remains the same.
机译:我们研究了偏振选择技术的潜在,应用范围和限制因素,最近由我们设计,这利用了散射的天空光的自然发生的极化性能,以最小化检测到的天空背景信号,并且可以与其结合使用线性偏振弹性反向散射楣,以最大化LIDAR接收器SNR。在这种方法中,偏振选择性LiDAR接收器被对准以最小化检测到的天窗,而透射的LIDAR信号的偏振被旋转以将最大LIDAR反向散射信号吞吐量保持在接收器检测器,从而最大化检测到的信噪比。所提出的结果包括LIDAR弹性反向散射测量,在532nm处,其显示出在传统的未偏振方案上的信噪比提高了一倍。对于垂直指向LIDARS,最大的改进仅限于对称清晨和下午晚些时候。对于非垂直扫描闪光灯,根据LIDAR和太阳轴之间的比角度,可以在更长时间的时间段内实现显着的改进。在单次散射近似内模拟背景天窗的理论模型显示出与测量的SNR改进因子吻合良好。通过测量的PWV和随后通过从早晨到午后的脱水,通过测量的PWV和随后改变气溶胶光学深度的增加来解释昼夜不对称改善因子。最后,由于偏振轴均匀遵循太阳能方位角,即使使用辐射转移模拟所证明的高气溶胶载荷,也可以设想技术的自动化。另外,示出了虽然多次散射降低了SNR改进,但最小噪声状态的取向保持不变。

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