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A new merged dataset for analyzing clouds, precipitation and atmospheric parameters based on ERA5 reanalysis data and the measurements of the Tropical Rainfall Measuring Mission (TRMM) precipitation radar and visible and infrared scanner

机译:一种新的合并数据集,用于分析基于ERA5再分析数据的云,降水和大气参数以及热带降雨测量任务(TRMM)降水雷达和可见和红外扫描仪的测量

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Clouds and precipitation have vital roles in the global hydrological cycle and the radiation budget of the atmosphere–Earth system and are closely related to both the regional and the global climate. Changes in the status of the atmosphere inside clouds and precipitation systems are also important, but the use of multi-source datasets is hampered by their different spatial and temporal resolutions. We merged the precipitation parameters measured by the Tropical Rainfall Measuring Mission (TRMM) precipitation radar (PR) with the multi-channel cloud-top radiance measured by the visible and infrared scanner (VIRS) and atmospheric parameters in the ERA5 reanalysis dataset. The merging of pixels between the precipitation parameters and multi-channel cloud-top radiance was shown to be reasonable. The 1B01-2A25 dataset of pixel-merged data (1B01-2A25-PMD) contains cloud parameters for each PR pixel. The 1B01-2A25 gridded dataset (1B01-2A25-GD) was merged spatially with the ERA5 reanalysis data. The statistical results indicate that gridding has no unacceptable influence on the parameters in 1B01-2A25-PMD. In one orbit, the difference in the mean value of the near-surface rain rate and the signals measured by the VIRS was no more than 0.87 and the standard deviation was no more than 2.38. The 1B01-2A25-GD and ERA5 datasets were spatiotemporally collocated to establish the merged 1B01-2A25 gridded dataset (M-1B01-2A25-GD). Three case studies of typical cloud and precipitation events were analyzed to illustrate the practical use of M-1B01-2A25-GD. This new merged gridded dataset can be used to study clouds and precipitation systems and provides a perfect opportunity for multi-source data analysis and model simulations. The data which were used in this paper are freely available at https://doi.org/10.5281/zenodo.4458868 (Sun and Fu, 2021).
机译:云和降水在全球水文周期和大气地球系统的辐射预算中具有重要作用,与区域和全球气候密切相关。云内和降水系统内的大气状态的变化也很重要,但是使用多源数据集的使用是由他们不同的空间和时间分辨率的妨碍。我们合并了通过热带降雨测量任务(TRMM)降水雷达(PR)测量的降水参数,其中通过可见和红外扫描仪(VIR)和ERA5 Reanalysic DataSet中的可见和红外扫描仪(VIR)和大气参数测量的多通道云顶辐射。汇总参数和多通道云顶辐射之间的像素的合并被认为是合理的。像素合并数据(1b01-2a25-pmd)的1b01-2a25数据集包含每个PR像素的云参数。 1B01-2A25网格数据集(1B01-2A25-GD)在空间上与ERA5再分析数据合并。统计结果表明,网格对1B01-2A25-PMD中的参数没有不可接受的影响。在一个轨道中,近表面雨率的平均值和由该病毒测量的信号的差异不大于0.87,标准偏差不大于2.38。 1B01-2A25-GD和ERA5数据集是SPATIBPOLALPELALPELALPLEALLAPLESTEALALLY,以建立合并的1B01-2A25网格数据集(M-1B01-2A25-GD)。分析了对典型云和降水事件的三种案例研究,以说明M-1B01-2A25-GD的实际应用。该新合并的网格数据集可用于研究云和降水系统,并为多源数据分析和模型模拟提供了一个完美的机会。本文使用的数据在https://doi.org/10.5281/zenodo.4458868(Sun和Fu,2021)上自由使用。

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