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Vector Brillouin optical time-domain analysis with Raman amplification and optical pulse coding

机译:带拉曼放大和光脉冲编码的矢量布里渊光时域分析

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摘要

This paper proposes a new vector Brillouin optical time-domain analysis optical fiber sensor with large dynamic rangeand high signal-to-noise ratio that combines distributed Raman amplification with optical pulse coding. The optimizedRaman pumping configurations are numerically simulated by solving the coupled differential equations of the hybridBrillouin-Raman process, and experimentally investigated with respect to the Brillouin pump pulse. A vector networkanalyzer is adopted to extract both the amplitude and phase spectrograms of the Brillouin interaction in a distributedfashion which effectively lessens the impact of the Raman relative intensity noise transfer problem and achieve highaccuracy measurement over a long sensing distance. Advanced pulse coding is further introduced to increase the sensingrange under high spatial resolution. Initial experimental results of phase and amplitude from a custom built BOTDAsystem is presented. Compared to typically tens of kilometers measurement distance of conventional Brillouin opticaltime-domain analysis techniques, the proposed optical fiber Brillouin sensor has the potential to greatly enhances sensingrange up to one hundred kilometers or greater, providing distributed temperature and strain monitoring of high spatialresolution and high sensing resolution in structures such as oil and natural gas pipelines.
机译:本文提出了一种新的矢量布里渊光时域分析光纤传感器,该传感器具有大的动态范围\ r \ n和高的信噪比,将分布式拉曼放大与光脉冲编码相结合。通过求解混合\ r \ n布里渊-拉曼过程的耦合微分方程,对优化的\ r \ n拉曼泵浦配置进行了数值模拟,并针对布里渊泵浦脉冲进行了实验研究。采用矢量网络\ r \ nanalyzer提取布氏相互作用在分布\ r \ n时尚中的振幅和相位谱图,有效地减轻了拉曼相对强度噪声传递问题的影响,并实现了较高的\ r \准确性测量长的感应距离。进一步引入了高级脉冲编码,以在高空间分辨率下增加感测范围。展示了来自定制BOTDA \ r \ n系统的相位和幅度的初始实验结果。与传统的布里渊光学\ r \ n \\\\\\\\\\\\\\\\\\\\\\,\\\\\\\,\\\\\\\,\\\\\\\\\,\\\\\\\\\,\\\\\\\\\\ 、、石油和天然气管道等结构中的高空间分辨率和高传感分辨率的应变监测。

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  • 来源
    《Photonic Instrumentation Engineering VI 》|2019年|1092512.1-1092512.7|共7页
  • 会议地点 0277-786X;1996-756X
  • 作者单位

    Leidos, 626 Cochran’s Mill Road, Pittsburgh, PA, 15236 National Energy Technology Laboratory, 626 Cochrans Mill Road, Pittsburgh, PA, 15236;

    National Energy Technology Laboratory, 626 Cochrans Mill Road, Pittsburgh, PA, 15236;

    West Virginia University Research Corporation, 3610 Collins Ferry Road, Morgantown, WV,26505 National Energy Technology Laboratory, 3610 Collins Ferry Road, Morgantown, WV, 26505;

    National Energy Technology Laboratory, 3610 Collins Ferry Road, Morgantown, WV, 26505;

    National Energy Technology Laboratory, 626 Cochrans Mill Road, Pittsburgh, PA, 15236 Department of Materials Science and Engineering, Carnegie Mellon University, 5000 ForbesAvenue, Pittsburgh, PA, 15213 Department of Engineering and Public Policy, Carnegie Mellon University, 5000 Forbes Avenue,Pittsburgh, PA, 15213;

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  • 正文语种 eng
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