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首页> 外文期刊>Geophysical Research Letters >Impact on modeled cloud characteristics due to simplified treatment of uniform cloud condensation nuclei during NEAQS 2004
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Impact on modeled cloud characteristics due to simplified treatment of uniform cloud condensation nuclei during NEAQS 2004

机译:NEAQS 2004对均匀云凝结核的简化处理,对建模云特征的影响

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[1] Subgrid-scale cloud condensation nuclei (CCN) heterogeneity is not represented in global climate models (GCM) and potentially contributes systematic errors to simulated cloud effects. High-resolution WRF-Chem model simulations were performed to investigate the impact of assuming a uniform CCN distribution on cloud properties and surface radiation over a region the size of a GCM grid column. Results indicate that a prescribed CCN distribution allowing for vertical and temporal fluctuations does substantially better in simulating cloud properties and radiative effects than does a prescribed uniform and constant CCN distribution. Spatially and temporally averaged net effects on downwelling shortwave radiation are between -3 and -11 W m -2 for the fluctuating and uniform distributions, respectively, versus a control simulation with fully interactive aerosols. Both prescribed CCN distributions produce optically thicker clouds more often than the control, with the mean cloud optical depth increasing by over 25% when using the uniform and constant CCN distribution.
机译:[1]全球气候模型(GCM)中未表示亚网格规模的云凝结核(CCN)的异质性,并且可能为模拟云效应贡献系统误差。进行了高分辨率的WRF-Chem模型仿真,以研究假设均一的CCN分布对GCM网格柱尺寸区域内的云特性和表面辐射的影响。结果表明,允许垂直和时间波动的规定CCN分布比模拟均匀和恒定CCN分布在模拟云特性和辐射效应方面要好得多。与具有完全交互的气溶胶的控制模拟相比,对于下伏短波辐射的时空平均净效应分别在-3和-11 W m -2之间,波动和均匀分布。两种规定的CCN分布都比对照组更频繁地产生光学上较厚的云,当使用均匀且恒定的CCN分布时,平均云的光学深度增加了25%以上。

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