Shiloh Lihi, Eyal Avishay
Opt Express. 2017 Aug 7;25(16):19205-19215. doi: 10.1364/OE.25.019205.
Recently it was shown that sinusoidal frequency scan optical frequency domain reflectometry (SFS-OFDR) can achieve remarkable performance in applications of distributed acoustic sensing (DAS). The main advantage of SFS-OFDR is the simplicity with which highly accurate sinusoidal frequency scans can be generated (in comparison with linear frequency scans). One drawback of SFS-OFDR has been the computationally intensive algorithm it required for processing of the measured backscatter data. The complexity of this algorithm was O(N) where N is the number of backscatter samples. In this work a fast processing algorithm for SFS-OFDR, with computational complexity O (N log N), is derived and its performance and limitations are studied in details. The new algorithm facilitated highly sensitive DAS operation over a sensing fiber of 64km, with 6.5m resolution and scan rate of 400Hz. The high sensitivity of the system was demonstrated in a field trial where it successfully detected human footsteps near the end of the fiber with excellent SNR.
最近的研究表明,正弦频率扫描光学频域反射计(SFS-OFDR)在分布式声学传感(DAS)应用中可实现卓越性能。SFS-OFDR的主要优势在于能够简便地生成高精度正弦频率扫描(与线性频率扫描相比)。SFS-OFDR的一个缺点是处理测量的反向散射数据所需的算法计算量很大。该算法的复杂度为O(N),其中N是反向散射样本的数量。在这项工作中,推导了一种用于SFS-OFDR的快速处理算法,其计算复杂度为O(N log N),并详细研究了其性能和局限性。新算法助力在64公里的传感光纤上实现高灵敏度DAS操作,分辨率为6.5米,扫描速率为400赫兹。在一次现场试验中展示了该系统的高灵敏度,它成功地在光纤末端附近检测到人类脚步声,信噪比极佳。