非均质云遥感的光谱不变新方法

Alexander Marshak, Yuri Knyazikhin, Tamás Várnai
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引用次数: 0

摘要

目前对云光学和微物理特性的业务卫星检索可追溯到 20 世纪 80 年代末开发的 Nakajima-King 技术。它通常能很好地适用于阴天,但对于不均匀和破碎的云场,平面平行几何假设不再有效,因此会导致很大的误差。新技术的基本概念最初是在核物理中引入的,用于量化反应堆的临界状态。基于辐射传递方程的特征值,他们的方法为三维介质结构的参数化提供了强有力的手段。这种参数化后来被成功应用于将表面反射光谱与三维冠层结构联系起来,被称为光谱不变近似。所提出的方法将这一技术应用于遥感云特性,如液滴单散射反照率和平均散射数(辐射传递理论中的基本参数),重点是量化相关误差和不确定性。这种检索摆脱了平面平行均质云假设。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new spectrally-invariant approach to the remote sensing of inhomogeneous clouds
Current operational satellite retrievals of cloud optical and microphysical properties go back to the Nakajima-King technique developed at the end of the 1980 s. This technique is based on library calculations for plane-parallel homogeneous clouds. It often works well for overcast skies but leads to substantial errors for inhomogeneous and broken cloud fields where the plane-parallel-geometry assumption is no longer valid. The basic concept of a new technique was first introduced in nuclear physics to quantify the critical conditions of reactors. Based on the eigenvalues of the radiative transfer equation, their approach provides a powerful means to parameterize the structure of 3D media. This parameterization was later successfully applied to relate surface reflectance spectra to 3D canopy structure and is known as the spectrally-invariant approximation. The proposed approach adapts this technique to the remote sensing of cloud properties such as droplet single scattering albedo and the average number of scatterings (which are the fundamental parameters in radiative transfer theory), with an emphasis on quantifying the associated errors and uncertainties. This retrieval is free from the plane-parallel homogeneous cloud assumption.
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