COMPASS: COnvection Morphology Parameter Space Study
COMPASS: COnvection Morphology Parameter Space Study
批准号:
0126408
负责人:
Eugene McCaul
金额:
$36.7万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-06-15 至 2006-05-31
中文摘要
了解和预报作为风暴环境函数的深对流风暴的强度和结构特征是一个有趣的科学问题,也是业务预报员非常感兴趣的问题。这项研究试图探索调节对流风暴形态和强度的大参数空间的几个新维度。这项研究将使用全物理三维云模拟模型进行,初始环境旨在允许独立调查八个独立的参数,据信这些参数是风暴结构对风暴环境的大部分敏感性的原因。探索性研究已经证明,风暴对这些参数中的大多数都存在很大的敏感性,至少在整个参数空间的一部分。已发现的敏感性包括整体对流有效势能(CAPE)和整体切变、包裹浮力和切变剖面的形状,以及混合层和湿层的深度。相对湿度廓线的形状和云底温度是其他可能重要的参数。虽然已经报告的初步结果是探索许多相关参数空间维度的第一步,但这些发现需要扩大,以涵盖更大范围的参数值。为了满足这些需求,该项目将通过建立和分析更完整的理想化云模拟档案来扩展先前的研究。预计进展会很快,因为建立模拟环境和分析模型输出所需的工具已经基本到位。在模式数据的分析中,重点将放在量化风暴形态变化和记录各种相互竞争的物理机制的影响上。预计对这些模拟的研究将大大加强对广泛环境条件下对流风暴行为的了解,并将使改进风暴预报的目标取得进展。
英文摘要
Understanding and forecasting the intensity and structural characteristics of deep convective storms as a function of the storm environment is an interesting scientific problem and of great interest to operational forecasters. This research seeks to explore several new dimensions of the large parameter space that regulates the morphology and intensity of convective storms. The study will be undertaken using a full-physics three dimensional cloud simulation model, initialized with environments designed to permit independent investigation of eight separate parameters that are believed to be responsible for much of the sensitivity of storm structure to storm environment. Exploratory studies have already demonstrated the existence of large sensitivities of storms to most of these parameters, in at least portions of the full parameter space. Sensitivities already found include bulk convective available potential energy (CAPE) and bulk shear, the shapes of parcel buoyancy and shear profiles, and the depths of both the mixed layer and moist layer. The shape of the relative humidity profile and the temperature at cloud base are other parameters of potential importance. Although the preliminary results already reported constitute a first step in exploring many of the relevant parameter space dimensions, the findings need to be extended to embrace a larger range of values of parameters. In order to address these needs, this project will expand the previous research by building and analyzing a more complete archive of idealized cloud simulations. Progress is expected to be rapid because the tools needed to build the simulation environments and to analyze the model output are already mostly in place. In the analysis of the model data, emphasis will be placed on quantifying the storm morphology variations and on documenting the effects of the various competing physical mechanisms. It is expected that study of these simulations will significantly enhance understanding of convective storm behavior within a broad range of environmental conditions and will allow progress towards the goal of improving storm forecasts.
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Collaborative Research: Understanding Relationships between Dual-Polarimetric In-cloud Microphysics and Satellite-Observed Cumulus Cloud Properties to Predict Lightning Character
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批准号:1261393
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项目类别:Continuing Grant
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资助金额:$12.49万
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财政年份:2013
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负责人:Eugene McCaul
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依托单位:
Collaborative Research: Understanding Relationships between First Lightning, In-cloud Microphysics and Satellite-Observed Cumulus Cloud-top Properties
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批准号:0817836
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项目类别:Continuing Grant
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资助金额:$11.86万
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财政年份:2008
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负责人:Eugene McCaul
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依托单位:
海外基金