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Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals

机译:多多普勒雷达三维变分垂直空气运动检索观测误差源的研究

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Multi-Doppler-radar network observations have been used in different configurations over the last several decades to conduct three-dimensional wind retrievals in mesoscale convective systems. Here, the impacts of the selected radar volume coverage pattern (VCP), the sampling time for the VCP, the number of radars used, and the added value of advection correction on the retrieval of the vertical air motion in the upper part of convective clouds are examined using the Weather Research and Forecasting (WRF) model simulation, the Cloud Resolving Model Radar SIMulator (CR-SIM), and a three-dimensional variational multi-Doppler-radar retrieval technique. Comparisons between the model truth (i.e., WRF kinematic fields) and updraft properties (updraft fraction, updraft magnitude, and mass flux) retrieved from the CR-SIM-generated multi-Doppler-radar field are used to investigate these impacts. The findings are that (1) the VCP elevation strategy and sampling time have a significant effect on the retrieved updraft properties above 6 km in altitude; (2) 2 min or shorter VCPs have small impacts on the retrievals, and the errors are comparable to retrievals using a snapshot cloud field; (3) increasing the density of elevation angles in the VCP appears to be more effective to reduce the uncertainty than an addition of data from one more radar, if the VCP is performed in 2 min; and (4) the use of dense elevation angles combined with an advection correction applied to the 2 min VCPs can effectively improve the updraft retrievals, but for longer VCP sampling periods (5 min) the value of advection correction is challenging. This study highlights several limiting factors in the retrieval of upper-level vertical velocity from multi-Doppler-radar networks and suggests that the use of rapid-scan radars can substantially improve the quality of wind retrievals if conducted in a limited spatial domain.
机译:在过去几十年中,多多普勒 - 雷达网络观测已经在不同的配置中使用,以便在Mesoscale对流系统中进行三维风检测。这里,所选雷达体积覆盖图案(VCP)的影响,VCP的采样时间,所使用的雷达数,以及对流云上部检索垂直空气运动的进展校正的附加值使用天气研究和预测(WRF)模型仿真,云解析模型雷达模拟器(CR-SIM)以及三维变分多多普勒 - 雷达检索技术进行检查。使用从CR-SIM生成的多多普勒 - 雷达场检出的模型真理(即WRF运动场)和上升性的(上升式分数,上升幅度和质量磁通)的比较来研究这些影响。调查结果是(1)VCP高程策略和取样时间对海拔6公里以上的检出的上升性质具有显着影响; (2)2分钟或更短的VCP对检索影响小,并且错误与使用快照云字段的检索相当; (3)如果VCP在2分钟内进行,则增加VCP中的高度角度的密度似乎更有效地降低了来自更多雷达的数据的不确定性; (4)使用密集的高度角度与应用于2分钟的VCP的平流校正可以有效地改善上升的检索,但对于更长的VCP采样期(5分钟),平流校正的价值是具有挑战性的。本研究突出了来自多多普勒 - 雷达网络的上层垂直速度检索的几个限制因素,并且建议在有限的空间域中进行快速扫描雷达的使用基本上可以提高风检索的质量。

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