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Reanalysis comparisons of upper tropospheric–lower stratospheric jets and multiple tropopauses

机译:对流层-平流层下部和多个对流层顶射流的再分析比较

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摘要

The representation of upper tropospheric–lower stratospheric (UTLS) jet and tropopause characteristics is compared in five modern high-resolution reanalyses for 1980 through 2014. Climatologies of upper tropospheric jet, subvortex jet (the lowermost part of the stratospheric vortex), and multiple tropopause frequency distributions in MERRA (Modern-Era Retrospective analysis for Research and Applications), ERA-I (ERA-Interim; the European Centre for Medium-Range Weather Forecasts, ECMWF, interim reanalysis), JRA-55 (the Japanese 55-year Reanalysis), and CFSR (the Climate Forecast System Reanalysis) are compared with those in MERRA-2. Differences between alternate products from individual reanalysis systems are assessed; in particular, a comparison of CFSR data on model and pressure levels highlights the importance of vertical grid spacing. Most of the differences in distributions of UTLS jets and multiple tropopauses are consistent with the differences in assimilation model grids and resolution – for example, ERA-I (with coarsest native horizontal resolution) typically shows a significant low bias in upper tropospheric jets with respect to MERRA-2, and JRA-55 (the Japanese 55-year Reanalysis) a more modest one, while CFSR (with finest native horizontal resolution) shows a high bias with respect to MERRA-2 in both upper tropospheric jets and multiple tropopauses. Vertical temperature structure and grid spacing are especially important for multiple tropopause characterizations. Substantial differences between MERRA and MERRA-2 are seen in mid- to high-latitude Southern Hemisphere (SH) winter upper tropospheric jets and multiple tropopauses as well as in the upper tropospheric jets associated with tropical circulations during the solstice seasons; some of the largest differences from the other reanalyses are seen in the same times and places. Very good qualitative agreement among the reanalyses is seen between the large-scale climatological features in UTLS jet and multiple tropopause distributions. Quantitative differences may, however, have important consequences for transport and variability studies. Our results highlight the importance of considering reanalyses differences in UTLS studies, especially in relation to resolution and model grids; this is particularly critical when using high-resolution reanalyses as an observational reference for evaluating global chemistry–climate models.
机译:在1980年至2014年的五次现代高分辨率再分析中,比较了对流层上空平流层下层(UTLS)射流和对流层顶的特征。对流层上层射流,次涡流(平流层涡旋的最低部分)和多次对流层顶的气候学MERRA(研究和应用的现代时代回顾分析),ERA-I(ERA中期;欧洲中程天气预报中心,ECMWF,中期再分析),JRA-55(日本55年再分析)中的频率分布)和CFSR(气候预测系统再分析)与MERRA-2中的进行了比较。评估来自各个再分析系统的替代产品之间的差异;特别是,将CFSR数据在模型和压力水平上进行的比较突出了垂直网格间距的重要性。 UTLS射流和多个对流层顶分布的大多数差异与同化模型网格和分辨率上的差异一致-例如,ERA-I(具有最粗糙的自然水平分辨率)通常显示出较高的对流层射流相对于MERRA-2和JRA-55(日本为期55年的再分析)较为温和,而CFSR(具有最佳的自然水平分辨率)在对流层射流和多个对流层顶均显示出相对于MERRA-2的高偏差。垂直温度结构和网格间距对于多次对流层顶的表征尤为重要。在中高纬度的南半球冬季对流层上空急流和多次对流层顶上,以及在冬至季节与热带环流相关的对流层上空急流中,发现了MERRA和MERRA-2之间存在显着差异。在相同的时间和地点可以看到与其他再分析最大的不同。在重新分析之间,UTLS射流的大规模气候特征与对流层顶的多个分布之间的定性一致性非常好。但是,数量差异可能会对运输和变异性研究产生重要影响。我们的结果强调了考虑重新分析UTLS研究中差异的重要性,尤其是在分辨率和模型网格方面。当使用高分辨率再分析作为评估全球化学-气候模型的观测参考时,这一点尤其重要。

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