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Tropospheric IWV profiles estimation through multifrequency signal attenuation measurements between two counter-rotating LEO satellites: performance analysis

机译:通过两个反向旋转Leo卫星之间的多频性信号衰减测量来估算Troposheric IWV配置文件:性能分析

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The exploitation of multifrequency differential attenuation measurements at microwaves made between two LEO satellites in limb mode is the ground of the NDSA (Normalized Differential Spectral Attenuation) approach for estimating integrated tropospheric water vapor profiles through multifrequency measurements at 17, 19, 21, 179 and 182 GHz, plus 32 GHz for liquid water detection and correction (whenever possible). Such measurements are affected by two kinds of impairments, the first generated by thermal noise at the receiver, the second generated by the signals' fluctuations due to the variations of the tropospheric refraction index and referred to as scintillation disturbance. Characterizing scintillation for simulating its effects to evaluate NDSA performance is not easy in general: in particular, it is quite hard (and also rather questionable so some extent) to relate the scintillation parameters to a given simulated atmospheric situation. For this reason, in the past years we limited ourselves to evaluate the NDSA performance by accounting for scintillation in a parametric way, independently of the atmospheric context in which simulations were carried out. In this paper, instead, we show the first results of the NDSA performance analysis based on a completely different approach, where the scintillation profiles and parameters are directly derived from the simulated atmospheric context, based on a procedure that starts from high resolution radiosonde data. A brief critical analysis of such an approach is proposed, evidencing some aspects related to the current knowledge of the scintillation spectra and parameters. The NDSA performance analysis based on certain hypotheses for the scintillation characteristics is then shown for some selected simulated atmospheric conditions.
机译:在肢体模式下两个Leo卫星之间进行的微波的多频差分衰减测量是NDSA(归一化差分光谱衰减)方法的研磨方法,用于通过在17,19,21,179和182处通过多频测量估计集成的对流层水蒸气谱GHz,加上32 GHz用于液态水检测和校正(尽可能的时间)。这种测量受到两种损伤的影响,由接收器处的热噪声产生的第一损伤,由于对流层折射率的变化并且称为闪烁扰动而被信号的波动产生的第二产生。用于模拟其对评估NDSA性能的闪烁的闪烁并不容易:特别是,它非常硬(也是在某种程度上也是如此,在某种程度上也是如此之域)将闪烁参数与给定的模拟大气情况相关联。出于这个原因,在过去几年中,我们限制了自己通过以参数方式占据闪烁来评估NDSA性能,独立于进行模拟的大气背景。在本文中,我们示出了基于完全不同的方法的NDSA性能分析的第一个结果,其中闪烁简档和参数基于从高分辨率无线电数据开始的程序,从模拟的大气背景直接导出。提出了对这种方法的简要分析,证明了与目前闪烁谱和参数的知识有关的一些方面。然后示出了基于某些假设的NDSA性能分析,然后显示一些选定的模拟大气条件。

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