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Coupling between lower‐tropospheric convective mixing and low‐level clouds: Physical mechanisms and dependence on convection scheme

机译:对流层低层对流混合与低层云之间的耦合:物理机制和对流方案的依赖性

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摘要

Several studies have pointed out the dependence of low‐cloud feedbacks on the strength of the lower‐tropospheric convective mixing. By analyzing a series of single‐column model experiments run by a climate model using two different convective parametrizations, this study elucidates the physical mechanisms through which marine boundary‐layer clouds depend on this mixing in the present‐day climate and under surface warming. An increased lower‐tropospheric convective mixing leads to a reduction of low‐cloud fraction. However, the rate of decrease strongly depends on how the surface latent heat flux couples to the convective mixing and to boundary‐layer cloud radiative effects: (i) on the one hand, the latent heat flux is enhanced by the lower‐tropospheric drying induced by the convective mixing, which damps the reduction of the low‐cloud fraction, (ii) on the other hand, the latent heat flux is reduced as the lower troposphere stabilizes under the effect of reduced low‐cloud radiative cooling, which enhances the reduction of the low‐cloud fraction. The relative importance of these two different processes depends on the closure of the convective parameterization. The convective scheme that favors the coupling between latent heat flux and low‐cloud radiative cooling exhibits a stronger sensitivity of low‐clouds to convective mixing in the present‐day climate, and a stronger low‐cloud feedback in response to surface warming. In this model, the low‐cloud feedback is stronger when the present‐day convective mixing is weaker and when present‐day clouds are shallower and more radiatively active. The implications of these insights for constraining the strength of low‐cloud feedbacks observationally is discussed.
机译:多项研究指出了低云反馈对低对流层对流混合强度的依赖性。通过使用两种不同的对流参数化方法对气候模型进行的一系列单列模型实验进行分析,本研究阐明了海洋边界层云在当今气候和地表温度下依赖于这种混合的物理机制。低对流层对流混合的增加导致低云部分的减少。但是,下降速度很大程度上取决于表面潜热通量如何与对流混合和边界层云辐射效应耦合:(i)一方面,由于对流层低层干燥引起的潜热通量增加通过对流混合抑制了低云量的减少,(ii)另一方面,由于低云层对流层在减少的低云辐射冷却的影响下稳定,因此潜热通量减少了,从而促进了减少低云部分。这两个不同过程的相对重要性取决于对流参数化的结束。有利于潜热通量和低云辐射冷却之间耦合的对流方案显示,在当前气候下,低云对对流混合的敏感性更高,并且响应于表面变暖而产生的低云反馈也更强。在此模型中,当当前对流混合较弱且当当前云较浅且辐射活跃时,低云反馈将更强。讨论了这些见解对于以观测方式约束低云反馈强度的意义。

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