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Differential phase calibration of linearly polarized weather radars with simultaneous transmission/reception for estimation of circular depolarization ratio

机译:线性极化天气雷达的差分相位校准,同时发射/接收,用于估计圆消偏比

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The circular depolarization ratio (CDR) measurement recently regained great interest among radar meteorologists because of its significant potential for detection and quantification of hydrometeors above the melting layer. An innovative CDR estimator has recently been proposed by Ryzhkov et al. for a linearly polarized weather radar (LPWR) with simultaneous transmission and reception of the waves with horizontal and vertical polarizations (SHV), a popular operational radar configuration for most national weather radar networks. The key for efficient implementation of CDR estimator in LPWR is the accurate calibration of the system differential phase upon transmission in the SHV mode of operation. The Enterprise Electronics Corporation (EEC) recently has proposed a novel calibration method, which facilitates the implementation of the CDR measurement in LPWR. The paper addresses the details of the proposed calibration method. The measurements by the EEC C-band in-house polarimetric radar illustrate reliable performance of the proposed calibration method for CDR measurement, paving the way for a wide use of CDR to reveal important microphysical features of the storms.
机译:圆形除极化率(CDR)的测量方法最近在雷达气象学家中引起了极大的兴趣,因为它具有检测和量化融化层以上水汽的巨大潜力。 Ryzhkov等人最近提出了一种创新的CDR估计器。用于同时发射和接收水平和垂直极化波(SHV)的线性极化天气雷达(LPWR),这是大多数国家气象雷达网络中常用的运行雷达配置。在LPWR中有效实现CDR估计器的关键是在SHV操作模式下传输时准确校准系统差分相位。企业电子公司(EEC)最近提出了一种新颖的校准方法,该方法便于LPWR中CDR测量的实现。本文介绍了建议的校准方法的细节。 EEC C波段内部极化雷达的测量结果说明了所建议的CDR测量校准方法的可靠性能,从而为CDR的广泛使用铺平了道路,从而揭示了风暴的重要微物理特征。

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