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Large-scale tropospheric transport in the Chemistry-Climate Model Initiative (CCMI) simulations

机译:化学 - 气候模型倡议(CCMI)模拟中大规模的对流层运输

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Understanding and modeling the large-scale transport of trace gases and aerosols is important for interpreting past (and projecting future) changes in atmospheric composition. Here we show that there are large differences in the global-scale atmospheric transport properties among the models participating in the IGAC SPARC Chemistry-Climate Model Initiative (CCMI). Specifically, we find up to 40% differences in the transport timescales connecting the Northern Hemisphere (NH) midlatitude surface to the Arctic and to Southern Hemisphere high latitudes, where the mean age ranges between 1.7 and 2.6 years. We show that these differences are related to large differences in vertical transport among the simulations, in particular to differences in parameterized convection over the oceans. While stronger convection over NH midlatitudes is associated with slower transport to the Arctic, stronger convection in the tropics and subtropics is associated with faster interhemispheric transport. We also show that the differences among simulations constrained with fields derived from the same reanalysis products are as large as (and in some cases larger than) the differences among free-running simulations, most likely due to larger differences in parameterized convection. Our results indicate that care must be taken when using simulations constrained with analyzed winds to interpret the influence of meteorology on tropospheric composition.
机译:理解和建模痕量气体和气溶胶的大规模运输对于解释过去(和投影未来)在大气成分中的变化非常重要。在这里,我们表明,在参与IGAC SPARC化学 - 气候模型倡议(CCMI)的模型中,全球范围大气运输特性存在巨大差异。具体而言,我们发现在将北半球(NH)中际面向北极和南半球高纬度的运输时间表中发现了高达40%的差异,平均年龄在1.7和2.6岁之间。我们表明这些差异与模拟之间的垂直传输的巨大差异有关,特别是对海洋的参数化对流的差异。虽然NH中位于NH中位的更强对流与北极交通较慢相关,但热带和副波中的更强烈对流与更快的互动式运输相关。我们还表明,使用从相同的再分析产物的域的仿真仿真的差异如同(在某些情况下大于)自由运行模拟之间的差异,很可能是由于参数化对流的较大差异。我们的结果表明,在使用分析风的模拟时,必须小心拍摄,以解释气象学对流层组成的影响。

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