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Radio-frequency unbalanced M-Z interferometer for wavelength interrogation of fiber Bragg grating sensors

机译:射频非平衡M-Z干涉仪,用于光纤布拉格光栅传感器的波长查询

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The optical unbalanced Mach - Zehnder interferometer (UMZI) has attracted significant interests for interrogation of FBG sensors owing to its excellent advantages in sensitivity, resolution, and demodulation speed. But this method is still limited to dynamic measurements due to its poor stability and reliability when used for quasi-static detections. Here, we propose for the first time, to the best of our knowledge, a radio-frequency unbalanced M-Z interferometer (RF-UMZI) for interrogation of FBG sensors, which, owing to its operation in an incoherent rather than a coherent regime, provides an ideal solution for the existing stability problem of the conventional UMZI, with remarkable features of adjustable resolution and potentially extremely high sensitivity. A dispersion compensation fiber (DCF) and single-mode fiber (SMF) with a small length difference are served as the two unbalanced arms of the RF interferometer. The induced differential chromatic dispersion transfers the wavelength shift of the FBG to the change of the RF phase difference between the two interferometric carriers, which ultimately leads to the variation of the RF signal intensity. An interrogation of a strain-turned FBG was accomplished and a maximum sensitivity of 0.00835 a.u./mu epsilon was obtained, which can easily be further improved by more than two orders of magnitude through various fiber dispersion components. Finally, the stability of the interrogation was tested. (C) 2016 Optical Society of America
机译:光学不平衡Mach-Zehnder干涉仪(UMZI)由于在灵敏度,分辨率和解调速度方面的卓越优势,引起了人们对于FBG传感器询问的极大兴趣。但是,由于该方法用于准静态检测时,其稳定性和可靠性较差,因此仍然仅限于动态测量。在此,据我们所知,我们首次提出了一种用于询问FBG传感器的射频不平衡MZ干涉仪(RF-UMZI),该干涉仪由于其工作在非相干而非相干状态而提供常规UMZI的现有稳定性问题的理想解决方案,具有可调节分辨率和极高灵敏度的显着特征。具有小的长度差的色散补偿光纤(DCF)和单模光纤(SMF)用作RF干涉仪的两个不平衡臂。所引起的差分色散将FBG的波长偏移转换为两个干涉式载波之间RF相位差的变化,最终导致RF信号强度的变化。进行了应变转变的FBG的询问,并获得了0.00835 a.u./muε的最大灵敏度,通过各种纤维分散成分,可以很容易地将其灵敏度提高两个以上。最后,测试了讯问的稳定性。 (C)2016美国眼镜学会

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