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Dynamic Optical Fiber Sensing With Brillouin Optical Time Domain Reflectometry: Application to Pipeline Vibration Monitoring

机译:布里渊光时域反射仪实现动态光纤传感:在管道振动监测中的应用

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摘要

Brillouin distributed optical fiber strain sensors are often limited to static events because of necessary long acquisition time due to the frequency sweep technique. Dynamic distributed strain monitoring is necessary to ensure the integrity of linear structures submitted to fatigue loading or vibrations, such as subsea risers or flowlines, overhead pipelines, long bridges, railways, or high-rise towers. In this paper, a novel dynamic Brillouin optical time domain reflectometer for single ended truly distributed strain measurement based on the slope-assisted method is presented. The optical local oscillator frequency is adjusted to measure Brillouin backscattered power at the maximum slope of the Brillouin gain spectrum along the fiber length. Any strain variation inducing Brillouin frequency shift will be detected by amplitude variation. To demonstrate the performance of our acquisition system, three optical fibers have been implemented along a 10 m steel pipe submitted to vibration. Through this mockup testing, we were able to measure the oscillation damping time and the geometrical displacement of the pipe in real time. A 7.6 Hz acquisition rate was achieved with a strain error of ± 40 μ strain and with a spatial resolution of 1 m. From integration of longitudinal strains, pipe displacement is calculated with an error of ± 12 mm. A performance comparison between frequency sweep and slope assisted method is made with a 2 km fiber sensor.
机译:布里渊分布式光纤应变传感器通常由于频率扫描技术而需要较长的采集时间,因此仅限于静态事件。动态分布应变监测对于确保承受疲劳载荷或振动的线性结构(例如海底立管或流水线,高架管道,长桥,铁路或高层塔架)的完整性是必要的。本文提出了一种基于斜率辅助法的动态单布里渊光时域反射仪,用于单端真实分布应变测量。调整光学本地振荡器的频率,以测量布里渊增益谱沿光纤长度的最大斜率处的布里渊反向散射功率。引起布里渊频移的任何应变变化将通过幅度变化来检测。为了演示我们的采集系统的性能,沿着10米长的钢管振动了三根光纤。通过该模型测试,我们能够实时测量振动阻尼时间和管道的几何位移。达到7.6Hz的采集速率,应变误差为±40μ应变,空间分辨率为1m。根据纵向应变的积分计算出的管位移为±12 mm。使用2 km光纤传感器进行扫频和斜率辅助方法之间的性能比较。

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