地中海冬季风暴中高能雷击的快速演变

IF 8.5 1区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
I. Kolmašová, O. Santolík, A. Kolínská, S. Pédeboy, R. Lán, L. Uhlíř
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引用次数: 0

摘要

冬季闪电的发生集中在世界上的几个特定地区,包括地中海,在那里这种有趣的危险现象的电磁特征尚未得到详细研究。我们利用2014/2015年冬季记录的宽带磁场测量(5 kHz-90 MHz)研究了西地中海地区高能负云对地冬季闪电的初始阶段,这是一个异常丰富的全球闪电活动。我们发现冬季预冲击过程导致雷电的峰值电流(<−100 kA)平均仅持续1.7 ms(在一个案例中仅持续220µs)。高能闪电的快速演化表明,先导起爆电荷中心可以低至距地面500 m。测量到的脉冲前振幅和脉冲间隔的分布可以用来模拟雷云下部偶极子的电荷结构,并推导云内闪电通道的性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rapid evolution of energetic lightning strokes in Mediterranean winter storms

Rapid evolution of energetic lightning strokes in Mediterranean winter storms

The occurrence of winter lightning concentrates in a few specific regions in the world, including the Mediterranean, where electromagnetic signatures of this interesting dangerous phenomenon have not yet been studied in detail. We investigate the initial stage of energetic negative cloud-to-ground winter lightning flashes in the West Mediterranean region using broadband magnetic field measurements (5 kHz–90 MHz) recorded in winter 2014/2015, which was unusually rich in global lightning activity. We found that the winter pre-stroke processes leading to the high peak current lightning (<−100 kA) lasted on average only 1.7 ms (in one case only 220 µs). Rapid evolution of energetic lightning indicates that leader initiation charge centers can be as low as 500 m above the ground. The measured distribution of pre-stroke pulse amplitudes and interpulse intervals can be used to model the charge structure in the lower thundercloud dipole and to derive the properties of in-cloud lightning channels.

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来源期刊
npj Climate and Atmospheric Science
npj Climate and Atmospheric Science Earth and Planetary Sciences-Atmospheric Science
CiteScore
8.80
自引率
3.30%
发文量
87
审稿时长
21 weeks
期刊介绍: npj Climate and Atmospheric Science is an open-access journal encompassing the relevant physical, chemical, and biological aspects of atmospheric and climate science. The journal places particular emphasis on regional studies that unveil new insights into specific localities, including examinations of local atmospheric composition, such as aerosols. The range of topics covered by the journal includes climate dynamics, climate variability, weather and climate prediction, climate change, ocean dynamics, weather extremes, air pollution, atmospheric chemistry (including aerosols), the hydrological cycle, and atmosphere–ocean and atmosphere–land interactions. The journal welcomes studies employing a diverse array of methods, including numerical and statistical modeling, the development and application of in situ observational techniques, remote sensing, and the development or evaluation of new reanalyses.
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