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Polarization properties of interferometrically interrogated fiber Bragg grating and tandem-interferometer strain sensors

机译:干涉式光纤布拉格光栅和串联干涉仪应变传感器的偏振特性

摘要

Lead sensitivity in low-coherence interferometric fiber-optic sensors is a well-known problem. It can lead to a severe degradation in the sensor resolution and accuracy through its effect on the fringe visibility and interferometric phase. These sensitivities have been attributed to birefringence in the various components. In the current work, an analysis of the polarization properties of fiber Bragg grating and tandem-interferometer strain sensors, using Stokes calculus and the Poincare sphere, is presented. The responses of these sensors as a function of the birefringence properties of the various components under different illuminating conditions are derived. The predicted responses demonstrate very good agreement with experimentally measured responses. These models provide a clear insight into the evolution of the polarization states through the sensor networks. Methods to overcome the lead sensitivity are discussed and demonstrated, which yield a differential strain measurement accuracy of 18 n epsilon - rms for a fiber Bragg grating sensor.
机译:低相干干涉式光纤传感器中的铅灵敏度是一个众所周知的问题。通过影响条纹可见度和干涉相位,会导致传感器分辨率和精度的严重下降。这些敏感性归因于各种组分中的双折射。在当前的工作中,使用斯托克斯微积分和庞加莱球对光纤布拉格光栅和串联干涉仪应变传感器的偏振特性进行了分析。得出这些传感器在不同照明条件下的响应,这些响应是各个组件的双折射特性的函数。预测的反应表明与实验测量的反应非常吻合。这些模型为通过传感器网络的偏振态演变提供了清晰的见解。讨论并证明了克服引线灵敏度的方法,对于光纤布拉格光栅传感器,该方法可产生18 nε-rms的差分应变测量精度。

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