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Evaluating and Improving Convection-Permitting Simulations of the Life Cycle of Convective Storms using Polarimetric Radar Data

Evaluating and Improving Convection-Permitting Simulations of the Life Cycle of Convective Storms using Polarimetric Radar Data
使用极化雷达数据评估和改进对流风暴生命周期的允许对流模拟
批准号:
408026808
负责人:
Dr. Andrew Barrett
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2018
资助国家:
德国
项目状态:
已结题
起止时间:
2017-12-31 至 2022-12-31

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中文摘要
翻译
对流风暴是造成恶劣天气的原因,例如大冰雹、山洪暴发和强风阵风。决定这些事件破坏性的一个关键因素是对流系统内的云微物理。云的微物理过程直接促成了大冰雹和雨的形成,但是,另外,由于潜热加热和冷却,改变了对流发展的环境。对流风暴结构的这些变化也会影响哪些微物理过程是活跃的,以及风暴的位置。这些复杂的相互作用的存在已在许多最近的出版物中报道。然而,到目前为止,还没有研究采取系统的方法来调查云微物理-对流动力学的相互作用。在这个项目中,我们将进行云微物理过程和对流系统结构之间的相互作用和对生命周期和由此产生的恶劣天气的影响的系统分析。将对照从双极化雷达数据中发现的微物理过程、风暴结构和生命周期对ICON(分辨率约1公里)模式模拟进行评估,该项目的主要目的是为改进强对流天气事件的对流允许模拟提供一个框架。这将通过以下方式实现:1)量化哪些云微物理过程对产生破坏性降水最重要,2)评估ICON模拟的对流风暴的生命周期、风暴结构和微物理过程与偏振雷达观测相比的情况,3)调查风暴结构和生命周期对微物理过程表示的敏感性。ICON模型将被修改以输出3D微物理过程速率。微物理“捎带”也将被纳入,从耦合的微物理-动力学效应中分离出纯粹的微物理效应。在这个项目的最后,我们将能够总结ICON目前模拟对流风暴及其破坏性降水的能力,确定哪些过程对破坏性降水的产生最重要,并提出改进建议,以解决模型系统目前的缺点。最终结果将不仅是对真实的和模拟的对流的更好的理解,而且是提高预测对流的破坏性降水的技能的具体建议。
英文摘要
Convective storms are responsible for severe weather, for example large hail, flash flooding and strong wind gusts. A critical factor that determines how damaging these events are is the cloud microphysics within the convective system. The cloud microphysics processes directly contribute to the formation of large hail and rain, but, additionally, modify the environment in which the convection develops due to latent heating and cooling. These changes to the structure of the convective storm also then affect which microphysical processes are active, and where in the storm. The existence of these complex interactions have been reported in numerous recent publications. However, to date there are no studies taking a systematic approach to investigating the cloud microphysics – convective dynamics interactions. In this project, we will perform a systematic analysis of the interactions between cloud microphysics processes and convective system structure and the effects on the lifecycle and resulting severe weather. Model simulations with ICON (~1 km resolution) will be evaluated against the microphysics processes, storm structure and lifecycle found from dual-polarization radar data.The main aim of this project is to provide a framework for the improvement of convection-permitting simulation of severe convective weather events. This will be achieved by 1) quantifying which cloud microphysics processes are most important for the production of damaging precipitation, 2) evaluation of how well the life cycle, storm structure and microphysical processes of convective storms simulated by ICON compares to polarimetric radar observations 3) investigation of the sensitivity of the storm structure and lifecycle to the representation of microphysical processes.Therefore, the ICON model will be modified to output the 3D microphysical process rates. Microphysical “piggybacking” will also be incorporated, to separate purely microphysical effects from coupled microphysical-dynamical effects.At the conclusion of this project, we will be in a position to summarise the current ability of ICON to simulate convective storms and their damaging precipitation, identify which processes are most important for the production of the damaging precipitation, and recommend improvements to address current shortcomings in the model system. The end result will be not just an improved understanding of both real and modelled convection, but also specific recommendations to increase skill of predicting damaging precipitation from convection.
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国内基金
海外基金
Improving modelling of compact binary evolution.
  • 批准号:
    10903001
  • 项目类别:
    青年科学基金项目
  • 资助金额:
    20.0万元
  • 批准年份:
    2009
  • 负责人:
    史蒂芬
  • 依托单位: