北极地区同步原位和三频雷达机载观测

C. Nguyen, M. Wolde, A. Battaglia, L. Nichman, Natalia Bliankinshtein, S. Haimov, Kenny Bala, D. Schuettemeyer
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引用次数: 9

摘要

摘要在雷达降雪实验(RadSnowExp)期间收集的数据集首次展示了三频雷达反射率与加拿大国家研究委员会(NRC) Convair-580飞机上几乎完美地同时定位和同步机载微物理探测器的结合。在非瑞利区,混合相位云和冰川云中至少一个雷达频率超过3.4小时的超过12小时的飞行数据为研究云微物理特性与雷达三频信号之间的关系提供了一个独特的机会。本研究的原位颗粒图像数据包括来自CPI探头的图像,它提供了高分辨率的颗粒图像,并允许准确识别DFR平面内的颗粒类型,包括边缘水平。根据主要粒子组成和微物理过程(聚集和边缘水平)对机载三频雷达数据进行了分析和分组。这项研究的结果与之前的主要模拟研究结果一致,双频比(DFR)平面的特定区域与不同冰习性的独特散射特性有关,特别是在雷达信号主要由大聚集体主导的云中。此外,分析还表明,三频特征与颗粒的体积密度、边缘和聚集程度以及颗粒尺寸分布(PSD)的特征尺寸密切相关。
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Coincident In-situ and Triple-Frequency Radar Airborne Observations in the Arctic
Abstract. The dataset collected during the Radar Snow Experiment (RadSnowExp) presents the first-ever triple-frequency radar reflectivities combined with almost perfectly co-located and coincident airborne in situ microphysics probes on board the National Research Council Canada (NRC) Convair-580 aircraft. Over 12 hours of flight data in mixed phased and glaciated clouds with more than 3.4 hours in non-Rayleigh regions for at least one of the radar frequencies provide a unique opportunity for studying the relationship between cloud microphysical properties and radar triple-frequency signals. The in situ particle imagery data for this study include imagery from the CPI probe, which provides high resolution particle imagery and allow accurate identification of particle types including level of riming within the DFR plane. The airborne triple-frequency radar data are analysed and grouped based on the dominant particle compositions and microphysical processes (level of aggregation and riming). The results from this study are consistent with the main findings of previous modelling studies with specific regions of the dual-frequency ratio (DFR) plane associated with unique scattering properties of different ice habits, especially in clouds where radar signal is dominated by large aggregates. Moreover, the analysis shows that the close relationships between the triple-frequency signatures and particles’ bulk density, level of riming and aggregations and characteristic size of the particle size distribution (PSD).
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