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Pursuing atmospheric water vapor retrieval through NDSAmeasurements between two LEO satellites: evaluation ofestimation errors in spectral sensitivity measurements

机译:通过两个Leo卫星之间的NDSAMeSurements追求大气水蒸气检索:光谱敏感性测量中的估计误差评估

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NDSA (Normalized Differential Spectral Absorption) is a novel differential measurement method to estimate the total content of water vapor (IWV, Integrated Water Vapor) along a tropospheric propagation path between two Low Earth Orbit (LEO) satellites. A transmitter onboard the first LEO satellite and a receiver onboard the second one are required. The NDSA approach is based on the simultaneous estimate of the total attenuations at two relatively close frequencies in the K_u /K bands and of a "spectral sensitivity parameter" that can be directly converted into IWV. The spectral sensitivity has the potential to emphasize the water vapor contribution, to cancel out all spectrally flat unwanted contributions and to limit the impairments due to tropospheric scintillation. Based on a previous Monte Carlo simulation approach, through which we analyzed the measurement accuracy of the spectral sensitivity parameter at three different and complementary frequencies, in this work we examine such accuracy for a particularly critical atmospheric status as simulated through the pressure, temperature and water vapor profiles measured by a high resolution radiosonde. We confirm the validity of an approximate expression of the accuracy and discuss the problems that may arise when tropospheric water vapor concentration is lower than expected.
机译:NDSA(归一化差分光谱吸收)是一种新的差分测量方法,以估算沿着两个低地球轨道(Leo)卫星之间的对流层传播路径的水蒸气(IWV,集成水蒸气)的总含量。在第一个Leo卫星和第二个卫星上的发射器是必需的。 NDSA方法基于K_U / K带中的两个相对较好的频率的同时估计,并且可以直接转换为IWV的“光谱灵敏度参数”。光谱敏感性有可能强调水蒸气贡献,取消所有光谱平坦的不需要的贡献,并限制由于对流层闪烁引起的损伤。基于以前的蒙特卡罗模拟方法,通过其分析了三种不同和互补频率的光谱灵敏度参数的测量精度,在这项工作中,我们研究了通过压力,温度和水模拟的特别临界大气状态的这种精度通过高分辨率无线电硅基测量的蒸汽分布。我们确认了准确性近似表达的有效性,并讨论了对流层水蒸气浓度低于预期时可能出现的问题。

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