Clear imaging method based on far-field beamforming for substation noise source identification

Q3 Physics and Astronomy
Li Li, Zhigang Chu, Yang Zhao, Linyong Li
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引用次数: 0

Abstract

The noise problem of substations has become increasingly prominent in recent years, and the accurate identification of noise sources has been the prerequisite for substation noise control. By virtue of the advantages of long measurement distance and panoramic acoustic imaging, far-field beamforming based on solid spherical microphone arrays has broad application prospects in large substation noise source identification. Spherical harmonics beamforming (SHB) is a classical algorithm matched with spherical microphone arrays. However, its sound source identification results suffer from problems such as wide mainlobes at low frequencies and abundant sidelobes at high frequencies, which lead to limited acoustic imaging clarity. In order to achieve clear acoustic imaging of noise sources in large substations, the output of far-field SHB is reconstructed and the method of clear SHB (C-SHB) is proposed. The simulations and experiment show that C-SHB can significantly reduce the mainlobe width and suppress the sidelobe contamination, thus effectively improving the imaging clarity of SHB and enhancing its weak source identification capability.
基于远场波束形成的变电站噪声源识别清晰成像方法
近年来,变电站噪声问题日益突出,噪声源的准确识别已成为变电站噪声控制的前提。基于实心球形麦克风阵列的远场波束形成具有测量距离远、声成像全景等优点,在大型变电站噪声源识别中具有广阔的应用前景。球面谐波波束形成(SHB)是一种经典的球面传声器阵列匹配算法。但其声源识别结果存在低频主瓣宽、高频副瓣丰富等问题,导致声成像清晰度受限。为了实现大型变电站噪声源的清晰声成像,对远场SHB输出进行了重构,提出了清晰SHB的方法(C-SHB)。仿真和实验结果表明,C-SHB可以显著减小主瓣宽度,抑制副瓣污染,从而有效提高SHB成像清晰度,增强其弱源识别能力。
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来源期刊
Noise and Vibration Worldwide
Noise and Vibration Worldwide Physics and Astronomy-Acoustics and Ultrasonics
CiteScore
1.90
自引率
0.00%
发文量
34
期刊介绍: Noise & Vibration Worldwide (NVWW) is the WORLD"S LEADING MAGAZINE on all aspects of the cause, effect, measurement, acceptable levels and methods of control of noise and vibration, keeping you up-to-date on all the latest developments and applications in noise and vibration control.
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