闪电VHF和微波辐射起始的小波分析

S. Baharin, M. R. Ahmad, D. Periannan, M. Sabri, B. Y. Seah, M. Aziz, M. Ismail, Mona Riza Mohd Esa, S. A. Mohammad, Z. Abdul-Malek, N. Yusop, V. Cooray, G. Lu
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引用次数: 1

摘要

闪电是空气中的一种放电(电介质击穿),它发射的电磁(EM)场跨越从几赫兹到可见波长的非常宽的光谱。电击穿过程是引发闪电的重要事件。要发生电击穿过程,必须满足至少有一个自由电子和电场面积大于3mv /m两个条件。这个过程从毫米尺度的电子雪崩开始,然后发展到厘米尺度的流光。最后,从流线型发展成为米级的领导者。在甚高频(VHF)波段,已经有理论和实验证明了拖缆的强烈发射。Cooray的研究从理论上证明了电子雪崩的发射峰在微波波段。设计并仿真了一种工作频率为1ghz的遥感气隙平行平板天线,用于测量雷电的微波辐射。利用时间分析和小波分析对微波辐射和甚高频辐射的起始时间和频率进行了比较,以确定电子雪崩发生在哪个电磁波段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wavelet Analysis of the Onset of VHF and Microwave Radiation Emitted by Lightning
Lightning flash is an electrical discharge in air (dielectric breakdown) which emits electromagnetic (EM) fields across very wide spectra from a few Hertz up to visible wavelength. Electrical breakdown process is an important event that initiates lightning. For electrical breakdown process to occur, it must fulfill two conditions which are at least has one free electron and the electric field region is more than 3 MV/m. This process starts with electron avalanche in millimeter scale then grows into streamer in centimeter scale. Lastly, from streamer it will grow into leader in meter scale. It has already established that streamer emits intensely at Very High Frequency (VHF) band as it's already proven both theoretically and experimentally. A study by Cooray, theoretically proved that emission of electron avalanche peaks at microwave band. Air-gap parallel plate antenna which could operate at 1 GHz with remote sensing is designed and simulated to measure the microwave radiation emitted by lightning. Both temporal and wavelet analyses are used to compare the onset of microwave radiation and VHF radiation in both time and frequency domains to determine electron avalanche appears at which electromagnetic band.
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