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Study of vibration monitoring system based on distributed feedback fiber laser

Published: 31 July 2024 Publication History

Abstract

In this paper, vibration sensing system was built based on distributed feedback fiber (DFB-FL) laser with narrow line width, low phase noise. DFB-FL was adhered onto a cantilever to enhance the sensitivity to vibration signal. Michelson optical fiber interferometer was used to convert the wavelength change of DFB-FL caused by vibration signal into phase change of the interferometer, and the vibration signal was demodulated by the Phase Generation Carrier algorithm. The sensing system can detect vibration signal within 150-2700Hz with resolution of 1Hz and has prospect application in the field of partial charge detection in transformers and switchgear.

References

[1]
Dimitrios Anastasopoulos, Edwin P.B. Reynders, Stijn François, Vibration-based monitoring of an FRP footbridge with embedded fiber-Bragg gratings: Influence of temperature vs. damage, Composite Structures 287, 2022, 115295.
[2]
Q.Z. Duan, Fault diagnosis of air compressor in nuclear power plant based on vibration observation window, IEEE Access 8, 2021, 222274-222284.
[3]
Igor Brutkowski Vieira da Costa, Guilherme Heim Weber, Danilo Fernandes Gomes, Electric discharge detection and localization using a distributed optical fiber vibration sensor, Optical Fiber Technology 58, 2020, 102266.
[4]
Vaahini Ganesan, Tuhin Das, Nazanin Rahnavard, Vibration-based monitoring and diagnostics using compressive sensing, Journal of Sound and Vibration, 394, 2017, 612-630.
[5]
Zhenshi Sun, Yingzhao Xu, Wenxing Yu,et al., Optical fiber distributed vibration sensor based on dual Mach-Zehnder interferometer using an improved phase generated carrier algorithm, Infrared Physics and Technology 127, 2022, 104440.
[6]
Yao Guozhen, Li Yongqian, Yang Zhi, A simple intensity modulation based fiber-optic accelerometer, Optical Fiber Technology 29, 2016, 53-58.
[7]
Y. N. Ning, K.T.V. Grattan, A.W. Palmer, A novel detection scheme for vibration monitoring using optical techniques, Optics and Lasers in Engineering, 1991, 15(2):115-126.
[8]
M. MacAlpine, Z. Zhiqiang, M. Demokan, Development of a fibre-optic sensor for partial discharges in oil-filled power transformers, Electr. Power Syst. Res. 63, 2002, 27-36.
[9]
T. Kringlebotn, J.L. Archambault, "Er3+:Yb3+ co-doped fiber distributed-feedback laser." Opt. Lett. 19(24): 2101-2103. 1994.
[10]
P.D. Liu, W.Z. Huang, W.T. Zhang, "Ultrahigh resolution optic fiber strain sensor with a frequency-locked random distributed feedback fiber laser." Opt. Lett. 43: 2499-2502. 2018.
[11]
Z.G. Wang, W.T. Zhang, W.Z. Huang, "A fiber optic accelerometer magnetometer." J. Lightwave Technol. 35(9): 1732-1737. 2017.
[12]
J. Wang, G. M. H. Flockhart, D. Uttamchandani., "Demodulation of polarimetric fiber laser ultrasonic sensor with intensity noise cancellation." J. Lightwave Technol. 37(18): 4872-4880. 2019.
[13]
G. A. Cranch, G. M. H. Flockhart, C. K. Kirkendall., "Distributed feedback fiber laser strain sensors." IEEE Sens. J. 8(7): 1161-1172. 2008.
[14]
Hill D J, Hodder B, Freitas J D, DFB fiber-laser sensor developments[J]. Proceedings of SPIE - The International Society for Optical Engineering, 2005, 5855: 904-907.
[15]
X. Q. Wu, R. Tao, and Q. F. Zhang, Eliminating additional laser intensity modulation with an analog divider for fiber-optic interferometers[J]. Opt. Commun. 285, 738. 2012.
[16]
Kong mingyang, Fanrong, Chufenghong,et al., Demodulation algorithm of distributed feedback laser vibration sensor based on 3×3 coupler, Science Technology and Engineering, 2023, 21:9113-9121.

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    PEAI '24: Proceedings of the 2024 International Conference on Power Electronics and Artificial Intelligence
    January 2024
    969 pages
    ISBN:9798400716638
    DOI:10.1145/3674225
    Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than the author(s) must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected].

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    Published: 31 July 2024

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