Using Satellite Observations of Lightning and Precipitation to Diagnose the Behavior of Deep Convection in Tropical Cyclones Traversing the Midlatitudes

IF 3.8 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Lena Heuscher, Patrick Gatlin, Walter A. Petersen
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Abstract

This study uses a unique combination of geostationary and low-Earth orbiting satellite-based lightning and precipitation observations, respectively, to examine the evolution of deep convection during the tropical cyclone (TC) lifecycle. The study spans the 2018–2021 Atlantic Basin hurricane seasons and is unique as it provides the first known analysis of total lightning (intra-cloud and cloud-to-ground) observed in TCs through their extratropical transition and post-tropical cyclone (PTC) phases. We consider the TC lifecycle stage, geographic location (e.g., land, coast, and ocean), shear strength, and quadrant relative to the storm motion and environmental shear vectors. Total lightning maxima are found in the forward right quadrant relative to storm motion and downshear of the TC center, consistent with previous studies using mainly cloud-to-ground lightning. Increasing environmental shear focuses the lightning maxima to the downshear right quadrant with respect to the shear vector in tropical storm phases. Vertical profiles of radar reflectivity from the Global Precipitation Measurement mission show that super-electrically active convective precipitation features (>75 flashes) within the PTC phase of TCs have deeper mixed phase depths and higher reflectivity at −10°C than other phases, indicating the presence of more intense convection. Differences in the net convective behavior observed throughout TC evolution manifest in both the TC-scale frequency of lightning-producing cells and the intensity variations amongst individual convective cells. The combination of continuous lightning observations and precipitation snapshots improves our understanding of convective-scale processes in TCs, especially in PTC phases, as they traverse the tropics and mid-latitudes.

Abstract Image

利用对闪电和降水的卫星观测诊断穿越中纬度地区的热带气旋中的深层对流行为
这项研究利用地球静止轨道和低地轨道卫星分别进行的闪电和降水观测的独特组合,研究热带气旋(TC)生命周期中深层对流的演变。这项研究的时间跨度为2018-2021年大西洋盆地飓风季节,其独特之处在于它首次对在热带气旋外热带过渡和后热带气旋(PTC)阶段观测到的总闪电(云内闪电和云到地面闪电)进行了分析。我们考虑了热带气旋的生命周期阶段、地理位置(如陆地、海岸和海洋)、切变强度以及相对于风暴运动和环境切变矢量的象限。闪电总量最大值出现在相对于风暴运动和热气旋中心下切的右前象限,这与之前主要使用云对地闪电的研究结果一致。相对于热带风暴阶段的切变矢量,环境切变的增加使闪电最大值集中在下切右象限。全球降水测量任务的雷达反射率垂直剖面图显示,在热带风暴的PTC阶段,超电活跃对流降水特征(75闪)的混合相深度更深,在-10°C时的反射率比其他阶段更高,表明存在更强烈的对流。在整个TC演变过程中观察到的净对流行为差异表现在TC尺度的闪电产生单元频率和单个对流单元之间的强度变化上。连续闪电观测和降水快照的结合提高了我们对热带气旋穿越热带和中纬度时对流尺度过程的理解,特别是在 PTC 阶段。
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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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