• Chinese Journal of Quantum Electronics
  • Vol. 30, Issue 3, 341 (2013)
Bing YAN1、*, Feng-zhong DONG1, Xiao-lei ZHANG1, Xue-yi CHEN1, Jun LI2, Guo-jie TU1, Xue-jun CHEN1, and Brian CULSHAW3
Author Affiliations
  • 1[in Chinese]
  • 2Department of Engineering and Physics Science, Heriot-Watt University, Edinburgh, United Kingdom
  • 3Department of Electrical and Electronic Engineering, Strathclyde University, Glasgow, United Kingdom
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    DOI: 10.3969/j.issn.1007461. 2013.03.016 Cite this Article
    YAN Bing, DONG Feng-zhong, ZHANG Xiao-lei, CHEN Xue-yi, LI Jun, TU Guo-jie, CHEN Xue-jun, CULSHAW Brian. Application of pipeline safety real-time monitoring with distributed optical fiber sensing technique based on coherent Rayleigh backscattering[J]. Chinese Journal of Quantum Electronics, 2013, 30(3): 341 Copy Citation Text show less

    Abstract

    Preliminary investigation for pipeline safety real-time monitoring with distributed fiber optic sensing technique based on coherent Rayleigh backscattering was carried out. On the basis of a novel one-dimensional impulse-response model of coherent Rayleigh backscattering in fiber, the influence of backscattering power curve with multiple continuous input pulses under external disturbance was explained. Coherent Rayleigh backscattering light power curve was visually presented through numerical simulations with the theoretical model. In order to demonstrate the model, an experimental measurement with 4 km-long single-mode sensing fiber was performed and the position where the disturbance occurs was easily found. To improve the SNR, a normalization method of peak-seeking with software was introduced. This method can effectively reduce average number and enhance the maximum detectable frequency range of external disturbance.
    YAN Bing, DONG Feng-zhong, ZHANG Xiao-lei, CHEN Xue-yi, LI Jun, TU Guo-jie, CHEN Xue-jun, CULSHAW Brian. Application of pipeline safety real-time monitoring with distributed optical fiber sensing technique based on coherent Rayleigh backscattering[J]. Chinese Journal of Quantum Electronics, 2013, 30(3): 341
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