Small-diameter optical fiber and high-speed wavelength interrogator for FBG/PZT hybrid sensing system

被引:2
|
作者
Komatsuzaki, Shinji [1 ]
Kojima, Seiji [1 ]
Hongo, Akihito [1 ]
Takeda, Nobuo [2 ]
Sakurai, Takeo [3 ]
机构
[1] Hitachi Cable Ltd, Photon Res & Dev Ctr, 5-1-1 Hitaka Cho, Hitachi, Ibaraki 3191414, Japan
[2] Univ Tokyo, Grad Sch Frontier Sci, Dept Adv Energy, Kashiwa, Chiba 2778561, Japan
[3] R&D Inst Met & Composites Future Ind RIMCOF, Composites Div, Minato Ku, Tokyo 1050001, Japan
关键词
fBG; AWG; composite materials; health monitoring; small-diameter optical fiber;
D O I
10.1117/12.715900
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
We have been developing a sensing system for checking the health of aircraft structures made of composite materials. In this system, lead zirconium titanate (PZT) actuators generate elastic waves that travel through the composite material and are received by embedded fiber Bragg grating (FBG) sensors. By analyzing the change in received waveforms, we can detect various kinds of damage. The frequency of the elastic waves is several hundred kHz, which is too high for a conventional optical spectrum analyzer to detect the wavelength change. Moreover, a conventional single-mode optical fiber cannot be used for an embedded FBG sensor because it is so thick that it induces defects in the composite material structure when it is embedded. We are thus developing a wavelength interrogator with an arrayed waveguide grating (AWG) that can detect the high-speed wavelength change and a small-diameter optical fiber (cladding diameter of 40 Rm) that does not induce defects. We use an AWG to convert the wavelength change into an output power change by using the wavelength dependency of the AWG transmittance. For this conversion, we previously used two adjacent output ports that cover the reflection spectrum of an FBG sensor. However, this requires controlling the temperature of the AWG because the ratio of the optical power change to the wavelength change is very sensitive to the relationship of the center wavelengths between an FBG sensor and the output ports of the AWG. We have now investigated the use of a denser AWG and six adjacent output ports, which covers the reflection spectrum of an FBG sensor, for detecting the elastic waves. Experimental results showed that this method can suppress the sensitivity of the power change ratio to the relationship of the center wavelengths between an FBG sensor and the output ports. Although our improved smalldiameter optical fiber does not induce structural defects in the composite material when it is embedded, there is some micro or macro bending of the fiber, which causes propagation loss. To suppress this embedment loss, we adjusted the refractive index difference of the fiber to have larger value. Experimental result showed that this reduced the embedment loss by about 0.3 dB/cm. These enhancements make our sensing system more practical and should promote the use of composite materials in a wider range of applications.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Development of small-diameter optical fiber sensors and high-speed optical wavelength interrogator for damage detection in composite materials - art. no. 616703
    Komatsuzaki, Shinji
    Kojima, Seiji
    Hongo, Akihito
    Takeda, Nobuo
    Sakurai, Takeo
    [J]. Smart Structures and Materials 2006: Smart Sensor Monitoring Systems and Applications, 2006, 6167 : 16703 - 16703
  • [2] High-Speed Interferometric FBG Interrogator With Dynamic and Absolute Wavelength Measurement Capability
    Perry, Marcus
    Orr, Philip
    Niewczas, Pawel
    Johnston, Michael
    [J]. JOURNAL OF LIGHTWAVE TECHNOLOGY, 2013, 31 (17) : 2897 - 2903
  • [3] Embedded small-diameter fiber Bragg grating sensors and high speed wavelength detection
    Hongo, A
    Fukuchi, K
    Kojima, S
    Takeda, N
    [J]. SMART STRUCTURES AND MATERIALS 2003: SMART SENSOR TECHNOLOGY AND MEASUREMENT SYSTEMS, 2003, 5050 : 144 - 151
  • [4] HIGH-SPEED OPTICAL FIBER DIAMETER MEASUREMENT AND CHARACTERIZATION SYSTEM
    SMITHGALL, DH
    WATKINS, LS
    [J]. IEEE JOURNAL OF QUANTUM ELECTRONICS, 1977, 13 (09) : D19 - D20
  • [5] High-speed optical wavelength interrogator using a PLC-type optical filter for fiber Bragg grating sensors
    Kojima, S
    Hongo, A
    Komatsuzaki, S
    Takeda, N
    [J]. SMART STRUCTURES AND MATERIALS 2004: SMART SENSOR TECHNOLOGY AND MEASUREMENT SYSTEMS, 2004, 5384 : 241 - 249
  • [6] High-speed FBG interrogator based on fiber interferometry and FPGA real-time processing
    Elaskar, Javier
    Luda, Marcelo
    Codnia, Jorge
    Oton, Claudio J.
    [J]. 2021 ANNUAL CONFERENCE OF THE IEEE PHOTONICS SOCIETY (IPC), 2021,
  • [7] Solid-State interferometric interrogator and multiplexer for high-speed dynamic and absolute FBG wavelength measurement
    Orr, Philip
    Perry, Marcus
    Fusiek, Grzegorz
    Niewczas, Pawel
    [J]. FIFTH EUROPEAN WORKSHOP ON OPTICAL FIBRE SENSORS, 2013, 8794
  • [8] High-speed wavelength interrogator of fiber Bragg gratings for capturing impulsive strain waveforms
    Lee, Bong-Wan
    Seo, Min-Seong
    Oh, Ho-Guen
    Park, Chan Yik
    [J]. MULTI-FUNCTIONAL MATERIALS AND STRUCTURES III, PTS 1 AND 2, 2010, 123-125 : 867 - +
  • [9] High-speed drilling of small-diameter holes by core flat drills
    Myasnikov Y.I.
    Pimenov D.Y.
    [J]. Russian Engineering Research, 2016, 36 (10) : 879 - 882
  • [10] High-speed FBG interrogation system insensitive to fiber link attenuation for magnetic field sensing
    Fracarolli, Joao Paulo V.
    Floridia, Claudio
    Rosolem, Joao B.
    Leonardi, Ariovaldo A.
    Dini, Danilo C.
    Dilli, Paulo Iva G.
    da Silva, Erlon V.
    dos Santos, Marceu C.
    Fruett, Fabiano
    [J]. 24TH INTERNATIONAL CONFERENCE ON OPTICAL FIBRE SENSORS, 2015, 9634