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Optimal Temporal Frequency of NSSL Phased Array Radar Observations for an Experimental Warn-on-Forecast System

机译:NSSL相控阵雷达观测的最佳时间频率进行实验警报的预测系统

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摘要

A potential replacement candidate for the aging operational WSR-88D infrastructure currently in place is the phased array radar (PAR) system. The current WSR-88Ds take 5 min to produce a full volumetric scan of the atmosphere, whereas PAR technology allows for full volumetric scanning of the same atmosphere every 1 min. How this increase in temporal frequency of radar observations might affect the National Severe Storms Laboratory's (NSSL) Warn-on-Forecast system (WoFS), which is a storm-scale ensemble data assimilation and forecast system for severe convective weather, is unclear. Since radar data assimilation is critical for the WoFS, this study explores the optimal temporal frequency of PAR observations for storm-scale data assimilation using the 31 May 2013 El Reno, Oklahoma, tornadic supercell event. The National Severe Storms Laboratory's National Weather Radar Testbed PAR in Norman, Oklahoma, began scanning this event more than an hour before the first (and strongest) tornado developed near El Reno, and scanned most of the tornadic supercell's evolution. Several experiments using various cycling and data frequencies to synchronously and asynchronously assimilate these PAR observations are conducted to produce analyses and very short-term forecasts of the El Reno supercell. Forecasts of low-level reflectivity and midlevel updraft helicity are subjectively evaluated and objectively verified using spatial and object-based techniques. Results indicate that assimilating more frequent PAR observations can lead to more accurate analyses and probabilistic forecasts of the El Reno supercell at longer lead times. Hence, PAR is a promising radar platform for WoFS.
机译:目前到位的老化操作WSR-88D基础设施的潜在替代候选者是相控阵雷达(PAR)系统。目前的WSR-88DS需要5分钟以产生大气的全容积扫描,而PAR技术允许每1分钟全容积扫描相同的氛围。如何增加雷达观测的时间频率可能会影响国家严重风暴实验室(NSSL)警告预测系统(WOFS),这是一个暴风雨集合数据同化和预测系统,用于严重对比天气,尚不清楚。由于雷达数据同化对于WOF而言至关重要,因此本研究探讨了使用2013年5月31日El Reno,俄克拉荷马州的牛头瘤,龙卷风超级胶片事件的暴风平数据同化的PAR比例观测的最佳时间频率。全国严重风暴实验室的国家天气雷达测试牛诺马州诺曼州诺曼·罗马特(俄克拉荷马州)开始扫描这一活动超过一个小时在El Reno附近开发的第一个(最强大)龙卷风前一小时,并扫描了大部分龙卷椅的超级轮廓。使用各种循环和数据频率进行同步和异步同步地同步这些PAR观察的几个实验,以产生EL Reno SuperCell的分析和非常短期预测。使用空间和基于对象的技术进行高级反射率和MIDlevel上升循环的预测是通过基于空间和对象的技术进行了评估和客观验证。结果表明,同化更频繁的PAR观测可以导致EL Reno Supercell在更长的交货时间内更准确的分析和概率预测。因此,Par是WOF的有希望的雷达平台。

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