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Interrogation of a Wavelength Tunable Fiber Bragg Grating Sensor Based Ring Laser for Dynamic Strain Monitoring

机译:基于波长可调光纤布拉格光栅传感器的环形激光器的动态应变监测

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Fiber Bragg gratings (FBGs) are wavelength selective optical reflectors with excellent strain sensitivity and small sensing footprint, which makes them suitable as diagnostic sensors for structural health monitoring applications. In this work, we explore the narrowband wavelength selectivity of FBGs for optical feedback in a tunable fiber ring laser. The fiber ring laser consists of an erbium doped fiber laser that is pumped with a Raman laser (980 nm) to produce population inversion and amplified spontaneous emission (ASE) in the C-band. The ASE light is used to illuminate a FBG sensor connected to the ring, and the reflected light from the sensor is fed back into the laser cavity to produce stimulated emission at the instantaneous center wavelength of the sensor. As the wavelength of the sensor shifts due mechanical or thermal strains, the wavelength of the optical output from the ring laser shifts accordingly. By combining the ring laser with a dynamic spectral demodulator for optical readout, the instantaneous wavelength of the ring laser is tracked with high temporal resolution. The fiber ring laser system offers several potential advantages in the diagnostic sensing of mechanical strains for SHM applications including, fully integrated laser and sensor system, high source power levels at the sensor wavelength, narrow spectral line-width, coherent spectral demodulation, and low system costs.In this work, we present experimental results that detail the feasibility of dynamic spectral tuning of the fiber ring laser at frequencies up to hundreds of kilohertz using a single FBG sensing element. Using multiple sensing elements, the fiber ring laser system would allow for active monitoring of dynamic strains in a multi-point sensor array configuration, which is particularly suitable for the localization of high frequency mechanical strains produced by impact loading and cracking events in structures.
机译:光纤布拉格光栅(FBG)是波长选择光学反射器,具有出色的应变敏感性和较小的感测占用空间,使其适合用作结构健康监测应用的诊断传感器。在这项工作中,我们探索了可调谐光纤环形激光器中光反馈的FBG的窄带波长选择性。光纤环形激光器由掺do光纤激光器组成,该激光器与拉曼激光器(980 nm)一起泵浦,以产生种群反转和C波段放大的自发发射(ASE)。 ASE光用于照亮与环相连的FBG传感器,并且来自传感器的反射光被反馈到激光腔中,以在传感器的瞬时中心波长处产生受激发射。由于传感器的波长由于机械应变或热应变而偏移,因此来自环形激光器的光学输出的波长也随之偏移。通过将环形激光器与动态光谱解调器组合以进行光学读出,可以以较高的时间分辨率跟踪环形激光器的瞬时波长。光纤环形激光器系统在用于SHM应用的机械应变的诊断检测中具有几个潜在的优势,包括完全集成的激光器和传感器系统,传感器波长处的高源功率水平,窄谱线宽,相干谱解调和低系统费用。 在这项工作中,我们提供的实验结果详细说明了使用单个FBG传感元件在高达数百千赫兹的频率下动态调制光纤环形激光器的可行性。使用多个传感元件,光纤环形激光器系统将允许主动监测多点传感器阵列配置中的动态应变,这特别适合于定位由结构中的冲击载荷和破裂事件产生的高频机械应变。

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