共现大气特征及其对极端降水的贡献

IF 3.4 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Wei-Ming Tsai, Suqin Duan, Travis A. O’Brien, Jennifer L. Catto, Paul A. Ullrich, Yang Zhou, L. Ruby Leung, Zhe Feng, William R. Boos, D. L. Suhas, Fiaz Ahmed, J. David Neelin
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引用次数: 0

摘要

基于目标的大气特征识别算法通常用于确定全球降水的属性。本研究采用系统的方法来检验特征共现及其与平均和极端降水的关系。利用现有的大气河流(ARs)、中尺度对流系统(MCSs)、低压系统(LPSs)和锋面(FTs)数据集确定了四个特征。通常,单个大气现象满足由多个特征识别算法设定的标准,从而产生降水与多个特征之间的关联。在温带地区,归因于单一事件的特征数量通常随着降水强度的增加而增加。超过三分之二的降水来自共现特征,其中相当一部分与AR-FT共现有关。在热带地区,大约四分之一的降水与共现特征有关,在季风区,LPS-MCS共现现象的贡献很大。MCSs是热带陆地和海洋的主要单一特征贡献者。在外热带地区,风动、副风及其共现现象占海洋总降水的一半以上。AR-FT-MCS和FT-MCS的共同现象导致了海洋(超过30%)和陆地(超过20%)的极端现象(降水超过95%)。涉及MCSs的任何特征组合都对降水强度的高百分位数有较大贡献。案例分析表明,AR-FT-MCS共现表现出对流不稳定性和深垂直运动,表明特征跟踪和再分析正在捕获与对流和锋面系统相关的物理。这里的结果强调了在将降水归因于大气现象时需要同时识别多个特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Co-Occurring Atmospheric Features and Their Contributions to Precipitation Extremes

Co-Occurring Atmospheric Features and Their Contributions to Precipitation Extremes

Co-Occurring Atmospheric Features and Their Contributions to Precipitation Extremes

Co-Occurring Atmospheric Features and Their Contributions to Precipitation Extremes

Co-Occurring Atmospheric Features and Their Contributions to Precipitation Extremes

Object-based identification algorithms for atmospheric features are commonly utilized to attribute global precipitation. This study employs a systematic approach to examine feature co-occurrences and their relationships to mean and extreme precipitation. Four features are identified using existing data sets for atmospheric rivers (ARs), mesoscale convective systems (MCSs), low-pressure systems (LPSs), and fronts (FTs). Often, a single atmospheric phenomenon satisfies the criteria set by multiple feature identification algorithms, yielding an association between precipitation and multiple features. Over the extra-tropics, the number of features attributed to a single event typically increases with precipitation intensity. Over two-thirds of the precipitation is from co-occurring features, with a considerable fraction related to AR-FT co-occurrences. Over the tropics, about one-quarter of precipitation is associated with co-occurring features, with LPS-MCS co-occurrences contributing substantially in monsoon regions. MCSs are the leading single-feature contributors over tropical land and oceans. In the extra-tropics, FTs, ARs, and their co-occurrences account for over half of the total precipitation over oceans. AR-FT-MCS and FT-MCS co-occurrences contribute to extremes (precipitation exceeding the 95th percentile) over both oceans (over 30%) and land (over 20%). Any combination of features involving MCSs shows a larger contribution to high percentiles of precipitation intensity. A case analysis indicates that AR-FT-MCS co-occurrences exhibit convective instability and deep vertical motion, suggesting that the feature trackers and reanalysis are capturing physics relevant to both convective and frontal systems. The results here emphasize the need for simultaneous identifications of multiple features when attributing precipitation to atmospheric phenomena.

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来源期刊
Journal of Geophysical Research: Atmospheres
Journal of Geophysical Research: Atmospheres Earth and Planetary Sciences-Geophysics
CiteScore
7.30
自引率
11.40%
发文量
684
期刊介绍: JGR: Atmospheres publishes articles that advance and improve understanding of atmospheric properties and processes, including the interaction of the atmosphere with other components of the Earth system.
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