High-Accuracy Distributed Bend Sensor Eligible for High-Curvature Structures Based on Brillouin Optical Correlation Domain Analysis

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초록

We present a high-accuracy distributed bend sensor suitable for high-curvature structures based on Brillouin frequency measurement using a multi-fiber probe. Brillouin optical correlation domain analysis (BOCDA) with differential measurement is adopted for distributed strain sensing with a cm-order spatial resolution (minimum 1 cm), and a specially designed sensing probe embedding three optical fibers is used to enhance the minimum measurable bending radius and accuracy of bend sensing. Analysis on the reconstruction accuracy is performed for various spatial resolutions (10, 20, 30, 40 mm) and steps (1, 5, 10, 15, 20 mm) of the BOCDA system. Our results show that the maximum measurable curvature of three-dimensional bending is 143 m-1, which is the highest curvature so far measured by Brillouin sensors in three-dimensional space, with about 0.7% of tip position error. Additionally, both pseudo-discrete sensing and fully distributed sensing are performed together to analyze the relation between the methods of sensing (discrete or distributed) and the accuracy of probing multi-bend curvatures according to the measurement step. © 1995-2012 IEEE.

키워드

Brillouin optical correlation domain analysis; distributed fiber sensor; Multi-fiber optical sensor; three-dimensional shape measurement; Optical fibers; Probes; Brillouin frequency; Brillouin optical correlation domain analysis; Differential measurements; Distributed sensing; Distributed strain; Reconstruction accuracy; Spatial resolution; Three dimensional space; Optical correlation
제목
High-Accuracy Distributed Bend Sensor Eligible for High-Curvature Structures Based on Brillouin Optical Correlation Domain Analysis
저자
Jang, Minsu; Choi, Jae Ho; Kim, Jun Sik; Song, Yong-Won; Song, KwangYong; Kim, Jinseok
DOI
10.1109/JSTQE.2020.2989815
발행일
2020-07
유형
Article
저널명
IEEE Journal on Selected Topics in Quantum Electronics
권
26
호
4