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An extended radar relative calibration adjustment (eRCA) technique for higher-frequency radars and range–height indicator (RHI) scans

机译:高频雷达和范围高度指示器(RHI)扫描的扩展雷达相对校准调整(ERCA)技术

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This study extends the relative calibration adjustment technique for calibration of weather radars to higher-frequency radars as well as range–height indicator (RHI) scans. The calibration of weather radars represents one of the most dominant sources of error for their use in a variety of fields including quantitative precipitation estimation and model comparisons. While most weather radars are routinely calibrated, the frequency of calibration is often less than required, resulting in miscalibrated time periods. While full absolute calibration techniques often require the radar to be taken offline for a period of time, there have been online calibration techniques discussed in the literature. The relative calibration adjustment (RCA) technique uses the statistics of the ground clutter surrounding the radar as a monitoring source for the stability of calibration but has only been demonstrated to work at S- and C-band for plan-position indicator (PPI) scans at a constant elevation. In this work the RCA technique is modified to work with higher-frequency radars, including Ka-band cloud radars. At higher frequencies the properties of clutter can be much more variable. This work introduces an extended clutter selection procedure that incorporates the temporal stability of clutter and helps to improve the operational stability of RCA for relatively higher-frequency radars. The technique is also extended to utilize range–height scans from radars where the elevation is varied rather than the azimuth. These types of scans are often utilized with research radars to examine the vertical structure of clouds. The newly extended technique (eRCA) is applied to four Department of Energy Atmospheric Radiation Measurement (DOE ARM) weather radars ranging in frequency from C- to Ka-band. Cross comparisons of three co-located radars with frequencies C, X, and Ka at the ARM Cloud, Aerosol, and Complex Terrain Interactions (CACTI) site show that the technique can determine changes in calibration. Using an X-band radar at the ARM Eastern North Atlantic (ENA) site, we show how the technique can be modified to be more resilient to clutter fields that show increased variability, in this case due to sea clutter. The results show that this technique is promising for a posteriori data calibration and monitoring.
机译:该研究扩展了相对校准调整技术,以校准天气雷达到更高频率的雷达以及范围高度指示器(RHI)扫描。天气雷达的校准代表了它们在各种领域中使用的最主导误差来源之一,包括定量降水估计和模型比较。虽然大多数天气雷达是常规校准的,但校准频率通常小于所需的频率,导致错误的时间段。虽然全绝对校准技术通常需要雷达在一段时间内脱机,但是在文献中讨论了在线校准技术。相对校准调整(RCA)技术使用雷达围绕地面杂波的统计数据作为校准稳定性的监测源,但仅在计划位置指示符(PPI)扫描的S-and C波段中工作在持续的海拔。在这项工作中,修改RCA技术以使用更高频率的雷达,包括KA波段云雷达。在较高频率下,杂波的属性可以变化得多。该工作引入了扩展的杂波选择过程,其包括杂波的时间稳定性,有助于提高RCA的相对较高频率雷达的操作稳定性。该技术还扩展以利用来自雷达的范围高度扫描,其中高度变化而不是方位角。这些类型的扫描通常与研究雷达一起使用,以检查云的垂直结构。新扩展的技术(ERCA)应用于四个能源大气辐射测量(DOE臂)天气雷达,从C到KA波段测量频率。三个共同定位雷达的交叉比较频率c,x和臂云,气溶胶和复杂地形相互作用(仙人掌)站点显示该技术可以确定校准的变化。在ARM东北大西洋(ENA)网站上使用X波段雷达,我们展示了如何修改该技术以更具弹性,在这种情况下,由于海杂波,在这种情况下显示出增加的变化。结果表明,该技术是对后验数据校准和监控的承诺。

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