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瑞利散射对 UWFBG 阵列型 $\phi$-OTDR 的影响及其抑制方法。

The Impact of Rayleigh Scattering in UWFBG Array-Based Φ-OTDR and Its Suppression Method.

机构信息

Key Laboratory of Intelligent Optical Sensing and Manipulation, Ministry of Education, College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, China.

Shenzhen Research Institute of Nanjing University, Shenzhen 518000, China.

出版信息

Sensors (Basel). 2023 May 25;23(11):5063. doi: 10.3390/s23115063.

Abstract

Ultra-weak fiber Bragg grating (UWFBG) array-based phase-sensitive optical time-domain reflectometry (Φ-OTDR) utilizes the interference interaction between the reference light and the reflected light from the broadband gratings for sensing. It significantly improves the performance of the distributed acoustic sensing system (DAS) because the intensity of the reflected signal is much higher than that of the Rayleigh backscattering. This paper shows that Rayleigh backscattering (RBS) has become one of the primary noise sources in the UWFBG array-based Φ-OTDR system. We reveal the impact of the Rayleigh backscattering signal on the intensity of the reflective signal and the precision of the demodulated signal, and we suggest reducing the pulse duration to improve the demodulation accuracy. Experimental results demonstrate that using light with a 100 ns pulse duration can improve the measurement precision by three times compared with the use of a 300 ns pulse duration.

摘要

基于超弱光纤布拉格光栅 (UWFBG) 阵列的相位敏感光时域反射计 (Φ-OTDR) 利用参考光与宽带光栅反射光之间的干涉相互作用进行传感。它显著提高了分布式声学传感系统 (DAS) 的性能,因为反射信号的强度远高于瑞利背向散射。本文表明,瑞利背向散射 (RBS) 已成为 UWFBG 阵列式 Φ-OTDR 系统中的主要噪声源之一。我们揭示了瑞利背向散射信号对反射信号强度和解调信号精度的影响,并提出了降低脉冲持续时间以提高解调精度的建议。实验结果表明,与使用 300ns 脉冲持续时间相比,使用 100ns 脉冲持续时间的光可以将测量精度提高三倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ba0/10255203/c1945f1ef754/sensors-23-05063-g001.jpg

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