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Vertical dependence of horizontal variation of cloud microphysics: observations from the ACE-ENA field campaign and implications for warm-rain simulation in climate models

机译:云微观物理水平变化的垂直依赖性:气候模型中的艾斯 - ena场运动的观察和对热雨模拟的影响

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In the current global climate models (GCMs), the nonlinearity effect of subgrid cloud variations on the parameterization of warm-rain process, e.g., the autoconversion rate, is often treated by multiplying the resolved-scale warm-rain process rates by a so-called enhancement factor (EF). In this study, we investigate the subgrid-scale horizontal variations and covariation of cloud water content ( q c ) and cloud droplet number concentration ( N c ) in marine boundary layer (MBL) clouds based on the in situ measurements from a recent field campaign and study the implications for the autoconversion rate EF in GCMs. Based on a few carefully selected cases from the field campaign, we found that in contrast to the enhancing effect of q c and N c variations that tends to make EF? ?1, the strong positive correlation between q c and N c results in a suppressing effect that tends to make EF? ?1. This effect is especially strong at cloud top, where the q c and N c correlation can be as high as 0.95. We also found that the physically complete EF that accounts for the covariation of q c and N c is significantly smaller than its counterpart that accounts only for the subgrid variation of q c , especially at cloud top. Although this study is based on limited cases, it suggests that the subgrid variations of N c and its correlation with q c both need to be considered for an accurate simulation of the autoconversion process in GCMs.
机译:在目前的全球气候模型(GCMS)中,亚底云变化对热雨过程参数化的非线性效应,例如自电转口可变率,通常通过将解析规模的热雨处理率乘以所以的解决方案被称为增强因子(EF)。在这项研究中,我们根据最近场地运动的原位测量研究了云水含量(QC)和云液体含量(QC)和云液滴数浓度(n c)的亚级级水平变化和变焦研究GCMS中的自动增压率EF的影响。根据现场活动的一些精心挑选的案例,我们发现与Q C和N C变异的增强效果相比,倾向于制造EF? & 1,Q C和N C之间的强正相关导致抑制效果,趋于制造EF? ?1。这种效果在云顶部特别强大,其中Q C和N C相关性可以高达0.95。我们还发现,用于Q C和N C的协变的物理完整的EF显着小于其仅用于仅用于Q C的底层变化的对应物,尤其是在云顶。尽管本研究基于有限的情况,但它表明N C的细分变化及其与Q C的相关性需要考虑用于准确模拟GCM中的自动控制过程。

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