清晰和气溶胶负载大气的最佳对比度弹性激光雷达传感

T. Evgenieva, L. Gurdev
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引用次数: 3

摘要

传感激光辐射波长是影响弹性激光雷达效率的重要因素之一。然而,其在激光雷达传感过程中的作用尚未得到系统的研究。因此,本研究的主要目的是开发并初步研究一种解决这一问题的方法,该方法基于对激光雷达回波信号的轮廓(激光雷达轮廓)进行建模,并以特定的方式评估测量信噪比(SNR)的相应轮廓。测量波动主要是由于暗电流和有用信号本身及大气背景所产生的光电流所固有的泊松散粒噪声引起的。获得的初步结果表明,例如,对于地面激光雷达设施,最大瑞利返回信号的波长约为350nm。当波长从400nm到1000-2000nm时,角色发生了变化。然后,较长的波长从云层中提供更高的返回功率,并且在气溶胶负载(特别是朦胧的)大气中效果被放大。这些研究的结果在选择最佳的激光雷达设计特性时是有用的,以确保激光雷达获得的大气中特定气溶胶层和物体的图像的最大亮度和对比度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal contrast elastic lidar sensing of clear and aerosol-loaded atmosphere
The sensing laser radiation wavelength is one of the most significant factors conditioning the elastic lidar efficiency. Nevertheless, its role in the process of lidar sensing has not been investigated systematically so far. Therefore, the main purpose of the present work is to develop and perform an initial examination of an approach to solve this problem based on modeling the profile of the lidar return signal (the lidar profile) and evaluating, in a specific way, the corresponding profile of the measurement signal-to-noise ratio (SNR). The measurement fluctuations are considered as mainly due to the Poisson shot noise that is intrinsic to the dark current and the photocurrent induced by the useful signal itself and the atmospheric background. The initial results obtained show for instance that for ground-based lidar facilities the maximum Rayleigh return signal is obtainable at wavelengths about 350nm. The roles are changed when sensing clouds using wavelength from 400nm to 1000-2000nm. Then, the longer wavelengths provide higher return power from clouds, and the effect is magnified in aerosol-loaded (and especially hazy) atmosphere. The results of such investigations are useful when selecting optimal lidar-design characteristics ensuring maximum brightness and contrast of the lidar-acquired images of specific aerosol strata and objects in the atmosphere.
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