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Sensing properties of optical fiber sensor to ultrasonic guided waves

  • Zhou, Wensong (Key Lab of Structures Dynamic Behavior and Control of the Ministry of Education, Harbin Institute of Technology) ;
  • Li, Hui (Key Lab of Structures Dynamic Behavior and Control of the Ministry of Education, Harbin Institute of Technology) ;
  • Dong, Yongkang (National Key Laboratory of Science and Technology on Tunable Laser, Harbin Institute of Technology) ;
  • Wang, Anbang (Key Lab of Structures Dynamic Behavior and Control of the Ministry of Education, Harbin Institute of Technology)
  • Received : 2015.05.30
  • Accepted : 2015.08.20
  • Published : 2016.09.25

Abstract

Optical fiber sensors have been proven that they have the potential to detect high-frequency ultrasonic signals, in structural health monitoring field which generally refers to acoustic emission signals from active structural damages and guided waves excited by ultrasonic actuators and propagating in waveguide. In this work, the sensing properties of optical fiber sensors based on Mach-Zehnder interferometer were investigated in the metal plate. Analytical formulas were conducted first to explore the parameters affecting its sensing performances. Due to the simple and definable frequency component, the Lamb wave excited by the piezoelectric wafer was employed to study the sensitivity of the proposed optical fiber sensors with respect to the frequency, rather than the acoustic emission signals. In the experiments, according to above investigations, spiral shape optical fiber sensors with different size were selected to increase their sensitivity. Lamb waves were excited by a circular piezoelectric wafer, while another piezoelectric wafer was used to compare their voltage responses. Furthermore, by changing the excitation frequency, the tuning frequency characteristic of the proposed optical fiber sensor was also investigated experimentally.

Keywords

Acknowledgement

Supported by : National Science Foundation of China

References

  1. Alcoz, J.J., Lee, C.E. and Taylor, H.F. (1990), "Embedded fiber-optic fabry-perot ultrasound sensor", IEEE T. Ultrason. Ferr., 37(4), 302-306. https://doi.org/10.1109/58.56491
  2. Atherton, K., Dong, F., Pierce, G. and Culshaw, B. (2000), "Mach-Zehnder optical fiber interferometers for the detection of ultrasound", Proceedings of SPIE, 3986, 27-34.
  3. Bucaro, J.A., Dardy, H.D. and Carome, E.F. (1977), "Optical fiber acoustic sensor", Appl. Optics, 16(7), 1761-1762. https://doi.org/10.1364/AO.16.001761
  4. Carpinteri, A., Lacidogna, G. and Pugno, N. (2007), "Structural damage diagnosis and life-time assessment by acoustic emission monitoring", Eng. Fract. Mech., 74, 273-289. https://doi.org/10.1016/j.engfracmech.2006.01.036
  5. Cawley, P. and Alleyne, D. (1996), "The use of Lamb waves for the long range inspection of large structures", Ultrasonics, 34, 287-290. https://doi.org/10.1016/0041-624X(96)00024-8
  6. Gachagan, A., Hayward, G., Mcnab, A. and Reynolds, P. (1999) "Generation and reception of ultrasonic guided waves in composite plates using conformable piezoelectric transmitters and optical-fiber detectors", IEEE T. Ultrason. Ferr., 46(1), 72-81. https://doi.org/10.1109/58.741426
  7. Gachagan, A., Pierce, S.G., Philp, W.R., Mcnab, A., Hayward, G. and Culshaw, B. (1995), "Detection of ultrasoncis Lamb waves in composite plates using optical-fibers", IEEE Ultrasoncis Symp., 803-806.
  8. Gao, H., Ali, S. and Lopez, B. (2010), "Efficient detection of delamination in multilayered structures using ultrasonic guided wave EMATs", NDT&E Int., 43. 316-322. https://doi.org/10.1016/j.ndteint.2010.03.004
  9. Giurgiutiu, V. (2003), "Lamb wave generation with piezoelectric wafer active sensors for structural health monitoring". Proceeding of SPIE, Smart Structures And Materials, 5056.
  10. Gong, J., MacAlpine, J.M.K., Jin, W. and Liao Y. (2001), "Locating acoustic emission with an amplitude-multiplexed acoustic sensor array based on a modified Mach-Zehnder interferometer", Appl. Optics, 40(34), 6199-6202. https://doi.org/10.1364/AO.40.006199
  11. Hocker, G.B. (1979), "Fiber-optic sensing of pressure and temperature", Appl. Optics, 18(9), 1445-1448. https://doi.org/10.1364/AO.18.001445
  12. Kwun, H. and Teller, C.M. (1994), "Magnetostrictive generation and detection of longitudinal, torsional, and flexural waves in a steel rod", J. Acoust. Soc. Am., 96, 1202-1204. https://doi.org/10.1121/1.411391
  13. Li, F., Murayama, H., Kageyama, K. and Shirai, T. (2009), "Doppler effect-based fiber-optic sensor and its application in ultrasonic detection", Opt. Fiber Technol., 15, 296-303. https://doi.org/10.1016/j.yofte.2009.01.003
  14. Liang, Y., Qu, D. and Deng, Hu. (2013), "Based on optical fiber Michelson interferometer for acoustic emission detection experimental research", Proc. of SPIE, 8914, 89140Z1-8.
  15. Liu, K., Wu, Z., Jiang Y., Wang Y., Zhou K. and Chen Y. (2016), "Guided waves based diagnostic imaging of circumferential cracks in small-diameter pipe", Ultrasonics, 65, 34-42. https://doi.org/10.1016/j.ultras.2015.10.025
  16. Ma, S., Wu, Z., Wang Y. and Liu K. (2015), "The reflection of guided waves from simple dents in pipes", Ultrasonics, 57, 190-197. https://doi.org/10.1016/j.ultras.2014.11.012
  17. Matt, H.M. and Scalea, F.L. (2007), "Macro-Fiber Composite piezoelectric rosettes for acoustic source location in complex structures", Smart Mater. Struct., 16, 1489-1499. https://doi.org/10.1088/0964-1726/16/4/064
  18. Pierce, S.G., Philp, W.R., Gachagan, A., Mcnab, A., Hayward G. and Culshaw, B. (1996), "Surface-bonded and embedded optical fibers as ultrasonic sensors", Appl. Optics, 35(25), 5191-5197. https://doi.org/10.1364/AO.35.005191
  19. Raghavan, A. and Cesnik, C.E.S. (2007), "Review of guided-wave structural health monitoring", Shock Vib. Dig., 39, 91-114. https://doi.org/10.1177/0583102406075428
  20. Sirohi, J. and Chopra, I. (2000), "Fundamental understanding of piezoelectric strain sensors", J. Intel. Mat. Syst. Str., 11, 246-257. https://doi.org/10.1106/8BFB-GC8P-XQ47-YCQ0
  21. Verstrynge, E., Pfeiffer, H. and Wevers, M. (2014), "A novel technique for acoustic emission monitoring in civil structures with global fiber optic sensors", Smart Mater. Struct., 23, 065022. https://doi.org/10.1088/0964-1726/23/6/065022
  22. Xiong, W. and Cai, C.S. (2012), "Development of fiber optic acoustic emission sensors for applications in civil infrastructures", Adv. Struct. Eng., 15(8), 1471-1486. https://doi.org/10.1260/1369-4332.15.8.1471

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