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Statistics of Storm Updraft Velocities from TWP-ICE Including Verification with Profiling Measurements

机译:来自TWP-ICE的风暴上升气流速度的统计数据,包括带有分析测量的验证

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Comparisons between direct measurements and modeled values of vertical air motions in precipitating systems are complicated by differences in temporal and spatial scales. On one hand, vertically profiling radars more directly measure the vertical air motion but do not adequately capture full storm dynamics. On the other hand, vertical air motions retrieved from two or more scanning Doppler radars capture the full storm dynamics but require model constraints that may not capture all updraft features because of inadequate sampling, resolution, numerical constraints, and the fact that the storm is evolving as it is scanned by the radars. To investigate the veracity of radar-based retrievals, which can be used to verify numerically modeled vertical air motions, this article presents several case studies from storm events around Darwin, Northern Territory, Australia, in which measurements from a dual-frequency radar profiler system and volumetric radar-based wind retrievals are compared. While a direct comparison was not possible because of instrumentation location, an indirect comparison shows promising results, with volume retrievals comparing well to those obtained from the profiling system. This prompted a statistical analysis of an extended period of an active monsoon period during the Tropical Warm Pool International Cloud Experiment (TWP-ICE). Results show less vigorous deep convective cores with maximum updraft velocities occurring at lower heights than some cloud-resolving modeling studies suggest.
机译:由于时空尺度的差异,在降水系统中直接测量值与垂直空气运动模型值之间的比较变得复杂。一方面,垂直剖面雷达更直接地测量垂直空气运动,但不能充分捕获整个风暴动态。另一方面,从两个或多个扫描多普勒雷达获取的垂直空气运动可捕获整个风暴动态,但由于采样,分辨率,数值约束以及风暴在不断演变,因此需要模型约束,这些模型约束可能无法捕获所有上升气流特征。因为它是由雷达扫描的。为了调查可用于验证数值模拟的垂直空气运动的基于雷达的取回的准确性,本文介绍了澳大利亚北领地达尔文市周围风暴事件的一些案例研究,其中使用了双频雷达廓线仪系统的测量结果比较了基于体积雷达的风。尽管由于仪器位置的原因而无法进行直接比较,但间接比较显示出令人鼓舞的结果,体积检索与从配置文件系统获得的结果相当。这促使对热带暖池国际云实验(TWP-ICE)期间活动季风期延长时段进行统计分析。结果表明,与某些解决云的模型研究表明的那样,深对流层较不活跃,在较低的高度出现了最大的上升气流速度。

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