对流起生强度对后续模拟超级单体演化的影响

IF 2.8 3区 地球科学 Q3 METEOROLOGY & ATMOSPHERIC SCIENCES Monthly Weather Review Pub Date : 2023-06-23 DOI:10.1175/mwr-d-22-0069.1
Matthew D. Flournoy, E. Rasmussen
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引用次数: 0

摘要

最近的研究表明,超级单体背景环境的微小差异如何产生不同的结果,特别是在龙卷风产生方面。在这项研究中,我们使用一种新的对流起始(CI)技术来模拟六个超级细胞,重点是它们的早期发展。除了初始对流的热强迫强度不同外,每个实验都是相同的。每个实验都产生了一个成熟的超级单体,但在上升气流速度、冷池温度赤字和垂直涡度发展等风暴尺度特征上存在很大差异。其中,中层上升气流增强的时间与起生强度的关系最为密切,热强迫越强,上升气流发展越快。低层上升气流也是如此,在模拟的前2小时左右,更强的热强迫也倾向于产生更强的低层上升气流。上升气流发展较快的实验区地表涡增强较快;然而,在热强迫较弱和较强的模拟中,冷池演化是不同的。更强的热强迫也会在超级单体生命周期的早期产生反常的、向右的风暴运动,在模拟过程中,这种运动更加一致。这些结果强调了由于风暴规模起始强度的差异,在背景环境中可能出现的超级细胞结果的范围。它们对于实时预测超级单体的路径和龙卷风的潜力也具有潜在的重要性。
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The influence of convection initiation strength on subsequent simulated supercell evolution
Recent studies have shown how very small differences in the background environment of a supercell can yield different outcomes, particularly in terms of tornado production. In this study, we use a novel convection initiation (CI) technique to simulate six supercells with a focus on their early development. Each experiment is identical except for the strength of thermal forcing for the initial convection initiation. Each experiment yields a mature supercell, but differences in storm-scale characteristics like updraft speed, cold pool temperature deficit, and vertical vorticity development abound. Of these, the time when the mid-level updraft strengthens is most strongly related to initiation strength, with stronger thermal forcing favoring quicker updraft development. The same is true for the low-level updraft, with the additional relationship that stronger thermal forcing also tends to yield stronger low-level updrafts for around the first 2 hrs of the simulations. The experiments with faster updraft development tend to be associated with more rapid surface vortex intensification; however, cold pool evolution differs between simulations with weaker vs. stronger thermal forcing. Stronger thermal forcing also yields deviant, rightward storm motion earlier in the supercell’s life cycle that remains more consistent for the duration of the simulation. These results highlight the range of supercellular outcomes that are possible across a background environment due to differences in storm-scale initiation strength. They are also of potential importance for predicting the paths and tornado potential of supercells in real time.
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来源期刊
Monthly Weather Review
Monthly Weather Review 地学-气象与大气科学
CiteScore
6.40
自引率
12.50%
发文量
186
审稿时长
3-6 weeks
期刊介绍: Monthly Weather Review (MWR) (ISSN: 0027-0644; eISSN: 1520-0493) publishes research relevant to the analysis and prediction of observed atmospheric circulations and physics, including technique development, data assimilation, model validation, and relevant case studies. This research includes numerical and data assimilation techniques that apply to the atmosphere and/or ocean environments. MWR also addresses phenomena having seasonal and subseasonal time scales.
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