三维射频映射和偏振观测显示,闪电是由宇宙射线阵雨点燃的

IF 3.4 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Xuan-Min Shao, Daniel P. Jensen, Cheng Ho, Michael P. Caffrey, Eric Y. Raby, Paul S. Graham, W. Brian Haynes, William G. Blaine
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引用次数: 0

摘要

以前的二维射频干涉观测表明,闪电通常以一个正的快速放电(+FD)开始,然后一个正常的负先导从+FD的起源继续到随后的闪电。然而,现有的放电理论无法令人信服地解释+FD的产生和发展。利用我们新的3D宽带干涉测绘和偏振系统,我们观察到+FD有时会出现更快、更广泛的负放电(- FD),反向传播并超过原点数百米,正如之前的2D研究报告的那样。令人惊讶的是,测量放电电流方向的信号极化系统地从放电传播方向倾斜,并在两个相反的放电之间旋转,这表明+FD和- FD是由风暴电场之外的其他与风暴无关的因素驱动的,否则所有因素都会在同一方向上对齐。假设宇宙射线阵雨(CRS)在+FD/−FD放电之前穿透云层,我们发现它们的路径与CRS的预电离路径一致,并且两个相反放电的极化与高能正电子和电子在地磁场和电场中的各自偏转轨迹一致。我们进一步分析了更常见的+FD,并表明它与CRS解释一致,表明雷暴中的这些闪光是由宇宙射线阵雨点燃的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

3D Radio Frequency Mapping and Polarization Observations Show Lightning Flashes Were Ignited by Cosmic-Ray Showers

3D Radio Frequency Mapping and Polarization Observations Show Lightning Flashes Were Ignited by Cosmic-Ray Showers

Previous 2D radio frequency interferometric observations showed that lightning is commonly started with a positive fast discharge (+FD) before a normal negative leader continues from the origin of the +FD to the ensuing lightning flash. However, the inception and development of the +FD cannot be convincingly explained by existing discharge theories. With our new 3D broadband interferometric mapping and polarization system, we observed that the +FD was sometimes followed by an even faster and more extensive negative discharge (−FD) that propagated backward and overshoot the origin by a few hundred meters, as reported by an earlier 2D study. Surprisingly, the signal polarization, which measures the orientation of the discharge current, systematically slanted from the discharge propagation direction and rotated between the two opposite discharges, showing the +FD and −FD were driven by other storm-independent factors in addition to the storm electric field, or otherwise all would align in the same direction. Assuming a cosmic-ray shower (CRS) piercing through the cloud immediately before the +FD/−FD discharge, we found that their path is consistent with a pre-ionized path by the CRS, and the polarizations for the two opposite discharges are consistent with the respective deflected trajectories of high-energy positrons and electrons in the geomagnetic and an electric field. We further analyzed the more commonly observed +FD and showed that it is consistent with the CRS interpretation, suggesting these flashes in thunderstorms were ignited by cosmic-ray showers.

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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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