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首页> 外文期刊>Journal of Applied Meteorology >An Examination of Version-5 Rainfall Estimates from the TRMM Microwave Imager, Precipitation Radar, and Rain Gauges on Global, Regional, and Storm Scales
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An Examination of Version-5 Rainfall Estimates from the TRMM Microwave Imager, Precipitation Radar, and Rain Gauges on Global, Regional, and Storm Scales

机译:从TRMM微波成像仪,降水雷达和全球,地区和风暴尺度的雨量计检查第5版雨量估算

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摘要

An evaluation of the version-5 precipitation radar (PR; algorithm 2A25) and Tropical Rainfall Measuring Mission (TRMM) Microwave Imager (TMI; algorithm 2A12) rainfall products is performed across the Tropics in two ways: 1) by comparing long-term TRMMrainfall products with Global Precipitation Climatology Centre (GPCC) global rain gauge analyses and 2) by comparing the rainfall estimates from the PR and TMI on a rainfall feature-by-feature basis within the narrow swath of the PR using a 1-yr database of classified precipitation features (PFs). The former is done to evaluate the overall biases of the TMI and PR relative to "ground truth" to examine regional differences in the estimates; the latter allows a direct comparison of the estimates with thesame sampling area, also identifying relative biases as a function of storm type. This study finds that the TMI overestimates rainfall in most of the deep Tropics and midlatitude warm seasons over land with respect to both the GPCC gauge analysis and the PR (which agrees well with the GPCC gauges in the deep Tropics globally), in agreement with past results. The PR is generally higher than the TMI in midlatitude cold seasons over land areas with gauges. The analysis by feature type reveals that the TMIoverestimates relative to the PR are due to overestimates in mesoscale convective systems and in most features with 85-GHz polarization-corrected temperature of less than 250 K (i.e., with a significant optical depth of precipitation ice). The PR tendedto be higher in PFs without an ice-scattering signature of less than 250 K. Normalized for a subset of features with a large rain volume (exceeding 10~4 mm h~(-1) km~2) independent of the PF classification, features with TMI > PR in the Tropics tended to have a higher fraction of stratiform rainfall, higher IR cloud tops, more intense radar profiles and 85-GHz ice-scattering signatures, and larger rain areas, whereas the converse is generally true for features with PR > TMI. Subtropical-area PF bias characteristics tended not to have such a clear relationship (especially over the ocean), a result that is hypothesized to be due to the influence of more variable storm environments and the presence of frontal rain. Melting-layer effects in stratiform rain and a bias in the ice-scattering-rain relationship were linked to the TMI producing more rainfall than the PR. However, noting the distinct characteristic biases Tropics-wide by feature type, this study reveals that accounting for regime-dependent biases caused by the differing horizontal and vertical morphologies of precipitating systems may lead to a reduction in systematic relative biases in a microwave precipitation algorithm.
机译:在热带地区以两种方式对版本5降水雷达(PR;算法2A25)和热带降雨测量任务(TRMM)微波成像仪(TMI;算法2A12)降雨产品进行评估:1)通过比较长期TRMMrainfall产品带有全球降水气候中心(GPCC)的全球雨量计分析和2)通过比较PR和TMI的降雨估算值,并使用1年分类数据库在PR的狭窄范围内逐个特征地比较PR和TMI的降雨量降水特征(PF)。前者是为了评估TMI和PR相对于“地面真相”的总体偏差,以检查估计中的区域差异。后者可以直接将估计值与相同的采样区域进行比较,还可以根据风暴类型确定相对偏差。这项研究发现,就GPCC量表分析和PR(与全球深热带地区的GPCC量表非常吻合)而言,TMI高估了大部分热带地区和中纬度暖季的降雨量(这与全球热带地区的GPCC量表非常吻合)结果。在中纬度寒冷季节,有轨距的土地上的PR通常高于TMI。按特征类型进行的分析表明,相对于PR的TMI高估是由于中尺度对流系统以及大多数经85 GHz极化校正后的温度低于250 K(即,凝冰的光学深度较大)的特征的高估所致。在没有冰散射特征小于250 K的PF中,PR往往较高。针对与PF无关的大雨量(超过10〜4 mm h〜(-1)km〜2)的部分特征进行归一化在热带地区,TMI> PR的特征往往具有较高的层状降水量,较高的红外云层顶部,更强的雷达廓线和85 GHz的冰散射特征以及较大的降雨区域,而反之通常适用于PR> TMI的功能。亚热带地区的PF偏向特性往往没有如此明确的关系(尤其是在海洋上),这一结果被认为是由于风暴环境变化多端和正面降雨的影响。地层雨中的融化层效应和冰散射-雨关系的偏差与TMI产生的降水比PR多。但是,该研究注意到按特征类型在热带地区存在明显的特征偏差,该研究表明,考虑到降水系统水平和垂直形态不同而导致的与制度有关的偏差可能会导致微波降水算法中系统相对偏差的减少。

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