Cheng Yueying, Luo Mingming, Liu Jianfei, Luan Nannan
School of Electronic and Information Engineering, Hebei University of Technology, Tianjin 300401, China.
Tianjin Key Laboratory of Electronic Materials and Devices, Tianjin 300401, China.
Sensors (Basel). 2020 Sep 27;20(19):5540. doi: 10.3390/s20195540.
We analyze the source of the position deviation and propose a demodulation recursive compensation algorithm to ensure a sub-millimeter resolution in improved optical frequency domain reflectometry. The position deviation between the geometric path and optical path changes with the temperature or strain, due to the elastic-optic and thermal-optic effects. It accumulates along the fiber and becomes large enough to affect the spectral correlation between the measured and reference spectra at the fiber end. The proposed algorithm compensates for the position deviation of each measuring point and aligns the measured spectra with its reference. The numerical and experimental results both reveal that the signal-to-noise ratio of the correlation is improved doubly and a sub-millimeter spatial resolution becomes available at a 30 m fiber end. The recursive compensation algorithm helps to restrain the correlation degeneration at the fiber end and promises an effective approach to a sub-millimeter resolution in optical frequency domain reflectometry.
我们分析了位置偏差的来源,并提出了一种解调递归补偿算法,以确保改进后的光学频域反射仪具有亚毫米级分辨率。由于弹光效应和热光效应,几何路径和光路之间的位置偏差会随温度或应变而变化。它沿光纤累积,变得足够大,从而影响光纤末端测量光谱与参考光谱之间的光谱相关性。所提出的算法补偿每个测量点的位置偏差,并使测量光谱与其参考光谱对齐。数值和实验结果均表明,相关性的信噪比提高了两倍,并且在30 m光纤末端可获得亚毫米级空间分辨率。递归补偿算法有助于抑制光纤末端的相关性退化,并有望成为实现光学频域反射仪亚毫米级分辨率的有效方法。