首页> 外文期刊>Journal of the Atmospheric Sciences >An evaluation of microphysics fields from mesoscale model simulations of tropical cyclones. Part I: Comparisons with observations
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An evaluation of microphysics fields from mesoscale model simulations of tropical cyclones. Part I: Comparisons with observations

机译:从热带气旋的中尺度模型模拟评估微观物理学领域。第一部分:与观察结果的比较

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This study presents a framework for comparing hydrometeor and vertical velocity fields from mesoscale model simulations of tropical cyclones with observations of these fields from a variety of platforms. The framework is based on the Yuter and Houze constant frequency by altitude diagram (CFAD) technique, along with a new hurricane partitioning technique, to compare the statistics of vertical motion and reflectivity fields and hydrometeor concentrations from two datasets: one consisting of airborne radar retrievals and microphysical probe measurements collected from tropical cyclone aircraft flights over many years, and another consisting of cloud-scale (1.67-km grid length) tropical cyclone simulations using the fifth-generation Pennsylvania State University-National Center for Atmospheric Research Mesoscale Model (MM5). Such comparisons of the microphysics fields can identify biases in the simulations that may lead to an identification of deficiencies in the modeling system, such as the formulation of various physical parameterization schemes used in the model. Improvements in these schemes may potentially lead to better forecasts of tropical cyclone intensity and rainfall. In Part I of this study, the evaluation framework is demonstrated by comparing the radar retrievals and probe measurements to MM5 simulations of Hurricanes Bonnie (1998) and Floyd (1999). Comparisons of the statistics from the two datasets show that the model reproduces many of the gross features seen in the observations, though notable differences are evident. The general distribution of vertical motion is similar between the observations and simulations, with the strongest up- and downdrafts making up a small percentage of the overall population in both datasets, but the magnitudes of vertical motion are weaker in the simulations. The model-derived reflectivities are much higher than observed, and correlations between vertical motion and hydrometeor concentration and reflectivity show a much stronger relationship in the model than what is observed. Possible errors in the data processing are discussed as potential sources of differences between the observed and simulated datasets in Part I. In Part II, attention will be focused on using the evaluation framework to investigate the role that different model configurations (i.e., different resolutions and physical parameterizations) play in producing different microphysics fields in the simulation of Hurricane Bonnie. The microphysical and planetary boundary layer parameterization schemes, as well as higher horizontal and vertical resolutions, will be tested in the simulation to identify the extent to which changes in these schemes are reflected in improvements of the statistical comparisons with the observations.
机译:这项研究提出了一个框架,用于比较热带气旋的中尺度模型模拟中的水汽和垂直速度场,以及从各种平台上观测到的这些场。该框架基于Yuter和Houze恒定频率高空图(CFAD)技术以及一种新的飓风分区技术,以比较两个数据集的垂直运动和反射率场以及水凝物浓度的统计数据:一个由机载雷达检索组成和多年以来从热带气旋飞机飞行中收集的微物理探针测量值,以及使用第五代宾夕法尼亚州立大学-国家大气研究中尺度模型(MM5)进行的云规模(1.67公里网格长度)热带气旋模拟组成的测量结果。微观物理学领域的这种比较可以识别模拟中的偏差,这些偏差可能导致识别建模系统中的缺陷,例如模型中使用的各种物理参数化方案的制定。这些方案的改进可能会导致对热带气旋强度和降雨的更好预报。在本研究的第一部分中,通过将雷达取回和探测器测量值与Hurricanes Bonnie(1998)和Floyd(1999)的MM5模拟进行比较,展示了评估框架。来自两个数据集的统计数据的比较表明,该模型再现了观测中看到的许多总体特征,尽管明显的差异是显而易见的。垂直运动的总体分布在观察和模拟之间是相似的,在两个数据集中,最强的上下气流占总人口的一小部分,但垂直运动的幅度在模拟中较弱。模型得出的反射率远高于观测值,垂直运动与水凝物浓度和反射率之间的相关性在模型中显示出比观测值强得多的关系。在第一部分中,讨论了数据处理中可能的错误,作为观察到的数据集和模拟数据集之间潜在差异的来源。在第二部分中,将重点关注使用评估框架来调查不同模型配置(即不同分辨率和物理参数化)在飓风邦妮的模拟中产生不同的微观物理学领域。微物理和行星边界层参数化方案,以及更高的水平和垂直分辨率,将在模拟中进行测试,以确定这些方案的变化在与观测值的统计比较改进中得到反映的程度。

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