An optical filter is incorporated in a conventional ultrasound detection system that uses a fiber Bragg grating (FBG) and broadband light source, to demodulate the FBG sensor signal. A novel ultrasound sensing system that does not require an optical filter is presented herein. Ultrasound could be detected via the application of signal processing techniques, such as signal averaging and frequency filters, to the photodetector output that corresponds to the intensity of the reflected light from a broadband light-illuminated FBG. Ultrasonic sensitivity was observed to be enhanced when an FBG was installed as a resonant sensor. This FBG ultrasound detection system is small and cheap to fabricate because it does not use a demodulating optical filter. The experimental results demonstrate that this system could be applied to ultrasonic damage inspection and acoustic emission measurements. Furthermore, this system was able to detect ultrasound despite the amount of strain or temperature that was applied to the FBG sensor because the ultrasound detection was not sensitive to the Bragg wavelength of the FBG sensor.
Kojima, S; Hongo, A; Komatsuzaki, S; Takeda, N. High-Speed optical wavelength interrogator using a PLC-type optical filter for fiber Bragg grating sensors. Proceedings of Smart Structures and Materials 2004: Smart Sensor Technology and Measurement Systems, San Diego, CA, USA, 15 March 2004; pp. 241–249.
Lam, PM; Lau, KT; Ling, HY; Su, ZQ; Tam, HY. Acousto-ultrasonic sensing for delaminated GFRP composites using an embedded FBG sensor. Opt. Laser Eng 2009, 47, 1049–1055.
[7]
Lee, JR; Tsuda, H. Acousto-ultrasonic sensing using capsular fibre Bragg gratings for temperature compensation. Meas. Sci. Technol 2006, 17, 2920–2926.
[8]
Tsuda, H; Sato, E; Nakajima, T; Nakamura, H; Arakawa, T; Shiono, H; Minato, M; Kurabayashi, H; Sato, A. Acoustic emission measurement using a strain-insensitive fiber Bragg grating sensor under varying load conditions. Opt. Lett 2009, 34, 2942–2944.
[9]
Lee, JR; Tsuda, H; Akimune, Y. Apodized fibre Bragg grating acousto-ultrasonic sensor under arbitrary strain using dual Fabry-Perot filters. J. Opt. A 2007, 9, 95–100.
[10]
Fisher, NE; Webb, DJ; Pannell, CN; Jackson, DA; Gavrilov, LR; Hand, JW; Zhang, L; Bennion, I. Ultrasonic hydrophone based on short in-fiber Bragg gratings. Appl. Opt 1998, 37, 8120–8128.
[11]
Wild, G; Hinckley, S. Acousto-ultrasonic optical fiber sensors: Overview and state-of-the-art. IEEE Sens. J 2008, 8, 1184–1193.
[12]
Lee, JR; Lee, SS; Yoon, DJ. Simultaneous multipoint acoustic emission sensing using fibre acoustic wave grating sensors with identical spectrum. J Opt A 2008, 10, 085307:1–085307:3.
[13]
Tsuda, H; Sato, E; Nakajima, T; Nakamura, H; Arakawa, T; Shiono, H; Minato, M; Kurabayashi, H; Sato, A. Characterization of strain-insensitive fiber Bragg grating sensors and frequency analysis of acoustic emission signals detected under varying strain conditions. J. Jpn. Soc. Non-Destr. Insp 2010, 59, 520–525.