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Remote sensing of cloud droplet radius profiles using solar reflectance from cloud sides – Part 1: Retrieval development and characterization

机译:云液体反射云液滴半径剖面的遥感 - 第1部分:检索开发和表征

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Convective clouds play an essential role for Earth's climate as well as for regional weather events since they have a large influence on the radiation budget and the water cycle. In particular, cloud albedo and the formation of precipitation are influenced by aerosol particles within clouds. In order to improve the understanding of processes from aerosol activation, from cloud droplet growth to changes in cloud radiative properties, remote sensing techniques become more and more important. While passive retrievals for spaceborne observations have become sophisticated and commonplace for inferring cloud optical thickness and droplet size from cloud tops, profiles of droplet size have remained largely uncharted territory for passive remote sensing. In principle they could be derived from observations of cloud sides, but faced with the small-scale heterogeneity of cloud sides, “classical” passive remote sensing techniques are rendered inappropriate. In this work the feasibility is demonstrated to gain new insights into the vertical evolution of cloud droplet effective radius by using reflected solar radiation from cloud sides. Central aspect of this work on its path to a working cloud side retrieval is the analysis of the impact unknown cloud surface geometry has on effective radius retrievals. This study examines the sensitivity of reflected solar radiation to cloud droplet size, using extensive 3-D radiative transfer calculations on the basis of realistic droplet size resolving cloud simulations. Furthermore, it explores a further technique to resolve ambiguities caused by illumination and cloud geometry by considering the surroundings of each pixel. Based on these findings, a statistical approach is used to provide an effective radius retrieval. This statistical effective radius retrieval is focused on the liquid part of convective water clouds, e.g., cumulus mediocris, cumulus congestus, and trade-wind cumulus, which exhibit well-developed cloud sides. Finally, the developed retrieval is tested using known and unknown cloud side scenes to analyze its performance.
机译:对流云对地球的气候以及区域天气事件发挥着重要作用,因为它们对辐射预算和水循环产生了很大影响。特别地,云反照孔和沉淀的形成受到云中的气溶胶颗粒的影响。为了改善从气溶胶激活的过程的理解,从云液滴生长到云辐射性能的变化,遥感技术变得越来越重要。虽然用于星载性观测的被动检索已经变得复杂并且用于推断云光学厚度和从云顶的液滴尺寸的常见,但液滴尺寸的曲线仍然基本上是无源遥感的未知领域。原则上,它们可以从云边的观察结果中得出,但面对云侧的小规模异质性,“经典”被动遥感技术呈现不合适。在这项工作中,通过使用来自云侧的反射的太阳辐射来证明可行性以获得云液滴有效半径的垂直演变的新见解。这项工作的中央方面对工作云侧检索的路径是对未知云表面几何的分析有效的半径检索。本研究研究了反射太阳辐射对云液滴尺寸的敏感性,基于现实液滴尺寸解决云模拟的广泛的3-D辐射转移计算。此外,它探讨了通过考虑每个像素的周围环境来解析由照明和云几何形状引起的含糊的含糊的技术。基于这些发现,使用统计方法来提供有效的半径检索。这种统计学有效的半径检索集中在对流水云的液体部分,例如积云中肌,积云和贸易风云,其展示出良好的云侧。最后,使用已知和未知的云侧场景测试开发的检索,以分析其性能。

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