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New approaches to quantifying aerosol influence on the cloud radiative effect

机译:量化气溶胶对云辐射效应影响的新方法

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摘要

The topic of cloud radiative forcing associated with the atmospheric aerosol has been the focus of intense scrutiny for decades. The enormity of the problem is reflected in the need to understand aspects such as aerosol composition, optical properties, cloud condensation, and ice nucleation potential, along with the global distribution of these properties, controlled by emissions, transport, transformation, and sinks. Equally daunting is that clouds themselves are complex, turbulent, microphysical entities and, by their very nature, ephemeral and hard to predict. Atmospheric general circulation models represent aerosol−cloud interactions at ever-increasing levels of detail, but these models lack the resolution to represent clouds and aerosol−cloud interactions adequately. There is a dearth of observational constraints on aerosol−cloud interactions. We develop a conceptual approach to systematically constrain the aerosol−cloud radiative effect in shallow clouds through a combination of routine process modeling and satellite and surface-based shortwave radiation measurements. We heed the call to merge Darwinian and Newtonian strategies by balancing microphysical detail with scaling and emergent properties of the aerosol−cloud radiation system.
机译:数十年来,与大气气溶胶相关的云辐射强迫一直是人们关注的焦点。该问题的严重性反映在需要了解诸如气溶胶成分,光学特性,云凝结和冰成核潜力等方面的需求,以及这些特性的全球分布(受排放,运输,转化和沉没控制)的情况。同样令人生畏的是,云本身是复杂的,湍流的,微物理的实体,并且就其本质而言,是短暂的且难以预测。大气总环流模型以越来越高的细节水平表示气溶胶-云相互作用,但是这些模型缺乏足够的分辨率来表示云和气溶胶-云相互作用。缺乏对气溶胶-云相互作用的观测约束。我们通过结合常规过程建模以及基于卫星和基于地面的短波辐射测量,开发了一种概念性方法来系统地限制浅云中的气溶胶-云辐射效应。我们注意到通过平衡微物理细节与气溶胶-云辐射系统的结垢和涌现特性来融合达尔文和牛顿策略的呼吁。

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