Extracting Features of Transient Electric Fields With Fourier And Wavelet Transform–A Case Study Of Lightning Positive Return Stroke

Shriram Sharma
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Abstract

Frequency domain information were extracted from the time domain electric fields pertinent to the lightning positive return strokes applying Fourier transform and Wavelet transform. The electric field radiated by positive ground flashes striking the sea were recorded at 10 ns resolution at a coastal station to minimize the propagation effects. The frequency spectrum of the electric field of positive return strokes were computed applying the Fourier transform technique in the range of 10 kHz to 20 MHz owing to the fact that this range of frequency is of very much interest to the researchers and design engineers. The amplitude of the energy spectral density decreases nearly as 1  f from 10 kHz to about 0.1 MHz and drops nearly as 2  f up to 8 MHz. Applying the wavelet transform technique, the same positive return strokes are found to radiate in the frequency range of 5.5 to 81 kHz with the average spread distribution of 13.6 kHz to about 30 kHz. From frequency spectrum obtained from the Fourier transform it is difficult to identify as which phase of the return stroke radiates in the higher frequency range and that in the lower frequency range, whereas, one can easily identify from the frequency spectrum obtained with the wavelet transform that ramp portion of the positive return stroke radiates in the larger spectral range as compared to that of initial peak of the return stroke. Also, from the spectral density map obtained from wavelet transform one can easily observe the contribution of each phase in a range of frequency, which is not possible from the Fourier transform technique. Clearly, the wavelet transform is much more powerful tool to extract the frequency domain information of a non-stationary signal as compared to that of Fourier transform.
基于傅里叶和小波变换的瞬态电场特征提取——以闪电正回击为例
利用傅里叶变换和小波变换对与闪电正回波相关的时域电场进行频域信息提取。在海岸站以10纳秒的分辨率记录了正面地面闪光撞击海面所辐射的电场,以尽量减少传播影响。由于研究人员和设计工程师对这一频率范围非常感兴趣,因此应用傅里叶变换技术计算了10 kHz至20 MHz范围内正返回冲程电场的频谱。从10 kHz到0.1 MHz,能谱密度的幅值下降了近1个百分点,到8 MHz,幅值下降了近2个百分点。应用小波变换技术,发现在5.5 ~ 81 kHz的频率范围内辐射出相同的正回波,平均扩散分布为13.6 kHz ~ 30 kHz左右。从傅里叶变换得到的频谱中,很难识别回传冲程的哪个相位在较高的频率范围内辐射,哪个相位在较低的频率范围内辐射,而从小波变换得到的频谱中,可以很容易地识别出,与回传冲程的初始峰值相比,正回传冲程的斜坡部分辐射在更大的频谱范围内。此外,从小波变换得到的谱密度图可以很容易地观察到频率范围内每个相位的贡献,这是傅里叶变换技术不可能做到的。显然,与傅里叶变换相比,小波变换是提取非平稳信号频域信息的更强大的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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