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基于弹性体与多模光纤集成的Φ-OTDR对准分布式弱声学信号检测的信噪比增强

SNR enhancement of quasi-distributed weak acoustic signal detection by elastomers and MMF integrated Φ-OTDR.

作者信息

Li Jialong, Liu Huanhuan, Shen Xingliang, Xiao Yihong, Wu Zhengting, Guo Penglai, Hu Jiaqi, Liu Yutian, Dang Hong, Sun Qizhen, Zhao Zhiyong, Zhang Yixin, Shum Perry Ping

出版信息

Opt Express. 2023 Oct 23;31(22):37019-37029. doi: 10.1364/OE.499806.

Abstract

We have proposed and demonstrated a weak acoustic signal detection technology based on phase-sensitive optical time-domain reflectometry (Φ-OTDR). Non-contact acoustic signals transmitting through air gap between the sound source and the receiver are difficult to detect due to fast attenuation. In order to improve the detection ability of non-contact weak acoustic signals, we demonstrate that multi-mode fiber (MMF) is a better solution than single-mode fiber (SMF) benefiting from its larger core and higher Rayleigh backscattering (RBS) capture coefficient. The frequency signal-to-noise ratio (SNR) has been enhanced by 9.26 dB. Then, with the help of 3D printing technology, elastomers have been designed to further enhance the detection ability due to the high-sensitive response to acoustic signals. Compared with the previous reported "I" type elastomer, the location and frequency SNR enhancement caused by our new proposed "n" type elastomer are 8.39 dB and 11.02 dB in SMF based system. The values are further improved to 10.51 dB and 13.38 dB in MMF and "n" type elastomer integrated system. And a phase-pressure sensitivity of -94.62 dB re rad/µPa has been achieved at 2.5 kHz. This non-contact weak acoustic signal detection technique has great application potential in the quasi-distributed partial discharge (PD) detection of smart grid.

摘要

我们提出并演示了一种基于相敏光时域反射仪(Φ-OTDR)的微弱声学信号检测技术。由于快速衰减,通过声源与接收器之间气隙传输的非接触式声学信号难以检测。为了提高非接触式微弱声学信号的检测能力,我们证明多模光纤(MMF)比单模光纤(SMF)是更好的解决方案,这得益于其更大的纤芯和更高的瑞利背向散射(RBS)捕获系数。频率信噪比(SNR)提高了9.26 dB。然后,借助3D打印技术,设计了弹性体,由于对声学信号的高灵敏度响应,进一步提高了检测能力。与先前报道的“I”型弹性体相比,在基于单模光纤的系统中,我们新提出的“n”型弹性体引起的位置和频率SNR增强分别为8.39 dB和11.02 dB。在多模光纤和“n”型弹性体集成系统中,这些值进一步提高到10.51 dB和13.38 dB。并且在2.5 kHz时实现了-94.62 dB re rad/µPa的相压灵敏度。这种非接触式微弱声学信号检测技术在智能电网的准分布式局部放电(PD)检测中具有巨大的应用潜力。

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