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Fiber Bragg Gratings in Microstructured Optical Fibers for Stress Monitoring

机译:用于应力监测的微结构化光纤中的光纤布拉格光栅

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Combining the functionalities of fiber Bragg gratings (FBG) and microstructured optical fibers (MOF) offers promising technological perspectives in the field of optical fiber sensors. Indeed, MOFs could overcome some of the limitations of FBGs in conventional fibers for sensor applications. The added value of MOFs stems from the ability to design an optical fiber in which an FBG acts as a sensor with a selective sensitivity, e.g. a sensor that is sensitive to directional strain but not to temperature. For this purpose we use a MOF with a phase modal birefringence on the order of 8×10~(-3), which is more than the double obtained in conventional birefringent fibers. A FBG in this MOF results in two Bragg peak wavelengths, with a wavelength separation that depends on the phase modal birefringence. We characterize these FBGs for transversal loads on a bare fiber and compare the results with simulated sensitivities. Then, we embed the sensor in a composite coupon and we measure the response of the Bragg peak wavelengths as a function of the applied transversal pressure on the composite material. This allows drawing conclusions on the advantages of FBGs in MOFs for sensing applications.
机译:结合光纤布拉格光栅(FBG)和微结构化光纤(MOF)的功能在光纤传感器领域提供了有前途的技术观点。实际上,MOF可以克服传统纤维中FBGS的一些局限性。 MOF的附加值源于设计光纤的能力,其中FBG用作具有选择性灵敏度的传感器,例如,对定向应变而不是温度敏感的传感器。为此目的,我们使用具有相位模态双折射的MOF,大约为8×10〜(-3),其大于常规双折射纤维中获得的双重。该MOF中的FBG导致两个布拉格峰值波长,其波长分离取决于相位模态双折射。我们在裸光纤上表征了这些FBG,用于晶体光纤上的横向载荷,并将结果与​​模拟敏感性进行比较。然后,我们将传感器嵌入复合优惠券中,我们测量布拉格峰值波长的响应作为复合材料上施加的横向压力的函数。这允许在MOFS中汲取FBG的优点,用于感测应用。

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