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Characterization of Precipitating Clouds by Ground-Based Measurements with the Triple-Frequency Polarized Microwave Radiometer ADMIRARI

机译:利用三频极化微波辐射计ADMIRARI进行地基测量来表征降水云

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A groundbreaking new-concept multiwavelength dual-polarized Advanced Microwave Radiometer for Rain Identification (ADMIRARI) has been built and continuously operated in two field campaigns: the Convective and Orographically Induced Precipitation Study(COPS) and the European Integrated Project on Aerosol Cloud Climate Air Quality Interactions (EUCAARI). The radiometer has 6 channels working in horizontal and vertical polarization at 10.65, 21.0, and 36.5 GFIz, and it is completely steerable both in azimuth and in elevation. The instrument is suited to be operated in rainy conditions and is intended for retrieving simultaneously water vapor, rain, and cloud liquid water paths. To this goal the authors implemented a Bayesian retrieval scheme based onmany state realizations simulated by the Goddard Cumulus Ensemble model that build up a prior probability density function of rainfall profiles. Detailed three-dimensional radiative transfer calculations, which account for the presence of nonspherical particles in preferential orientation, simulate the downwelling brightness temperatures and establish the similarity of radiative signatures and thus the probability that a given profile is actually observed. Particular attention is devoted to the sensitivity of the ADMIRARI signal to 3D effects, raindrop size distribution, and axial ratio parameterizations. The polarization and multifrequency signals represent key information to separate the effects introduced by non-Rayleigh scatterers and to separate rainwater (r-LWP) from the cloud water component (c-LWP). Long-term observations demonstrate that observed brightness temperatures and polarization differences can be well interpreted and reproduced by the simulated ones for all three channels simultaneously. Rough estimates of r-LWP derived from collocated observations with a micro rain radar confirm the raino rain separation and the variability trend of r-LWP provided by the radiometer-based retrieval algorithm. With this work the authors demonstratethe potential of ADMIRARI to retrieve information about the rain/cloud partitioning for midlatitude precipitation systems; future studies with this instrument will provide crucial information on rain efficiency of clouds for cloud modelers that might lead toward a better characterization of rain processes.
机译:建立了具有开创性的新概念的多波长双极化雨量识别高级微波辐射计(ADMIRARI),并在两个野外活动中连续运行:对流和地形诱发降水研究(COPS)和欧洲气溶胶云气候空气质量综合项目互动(EUCAARI)。辐射计有6个通道,分别在10.65、21.0和36.5 GFIz的水平和垂直极化下工作,并且在方位角和仰角都可以完全控制。该仪器适合在多雨的条件下使用,旨在同时取回水蒸气,雨水和云状液态水路径。为此,作者基于由Goddard Cumulus Ensemble模型模拟的许多状态实现实现了贝叶斯检索方案,该状态建立了降雨剖面的先验概率密度函数。详细的三维辐射转移计算,考虑了优先取向下非球形粒子的存在,可模拟下降流中的亮度温度并建立辐射特征的相似性,从而确定实际观察到给定轮廓的可能性。特别要注意的是ADMIRARI信号对3D效果,雨滴大小分布和轴向比率参数化的敏感性。极化和多频信号代表关键信息,以区分非瑞利散射体带来的影响,并将雨水(r-LWP)与云水成分(c-LWP)分开。长期观察表明,对于所有三个通道,模拟的温度和偏振差异可以很好地解释和再现。从微雨雷达的并置观测中得出的r-LWP的粗略估计证实了雨/无雨分离以及基于辐射计的检索算法提供的r-LWP的变化趋势。通过这项工作,作者展示了ADMIRARI检索中纬度降水系统雨/云分区信息的潜力。将来使用该仪器进行的研究将为云建模人员提供有关云的降雨效率的重要信息,这可能会导致更好地描述降雨过程。

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