Reduction of the effect of temperature in a fiber optic distributed sensor used for strain measurements in civil structures

被引:9
|
作者
Ohno, H [1 ]
Uchiyama, Y [1 ]
Kurashima, T [1 ]
机构
[1] Nippon Telegraph & Tel Corp, Access Network Serv Syst Labs, Tsukuba, Ibaraki 3050805, Japan
关键词
optical fiber; optical fiber sensor; strain; temperature; Brillouin scattering; structure; civil engineering;
D O I
10.1117/12.349763
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
We report on an approach for reducing the effects of temperature in a fiber optic distributed sensor. This technique employs a sensing fiber and a Brillouin optical time domain reflectometer (BOTDR). The BOTDR has been proposed for measuring both strain and optical loss distribution along optical fibers by accessing only one end of the fiber [1]. The BOTDR analyzes changes in the Brillouin frequency shift caused by strain [2][3]. This device can measure distributed strain with an accuracy of better than +/-60x10(-6) and a high spatial resolution of up to 1 m over a 10 km long fiber. However, temperature fluctuations have an adverse effect on the accuracy with which the Brillouin frequency shift can be measured because the shift changes with temperature as well as with strain [3][4]. This has meant that both spatial and temporal fluctuations in temperature must be compensated for when a fiber optic distributed sensor is used for continuous strain measurements in massive civil structures. We describe a method for the simultaneous determination of distributed strain and temperature which separates strain and temperature in a fiber optic sensor.
引用
收藏
页码:486 / 496
页数:11
相关论文
共 50 条
  • [21] A fiber optic distributed temperature sensor system
    Brehm, Robert
    SEA TECHNOLOGY, 2007, 48 (10) : 15 - +
  • [22] A novel distributed fiber-optic strain sensor
    García, MJ
    Ortega, JA
    Chávez, JA
    Salazar, J
    Turó, A
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2002, 51 (04) : 685 - 690
  • [23] Development of fiber optic distributed temperature sensor (optical fiber sensors for smart materials and structures)
    Osawa, S
    Yamamoto, S
    US-JAPAN WORKSHOP ON SMART MATERIALS AND STRUCTURES, 1996, : 235 - 242
  • [24] Numerical Analysis of the Effect of Microscale Components Interaction on Measurements of Fiber Optic Strain Sensors Used in Composite Structures
    Tashkinov, Mikhail
    Shardakov, Igor
    ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2019, 2019
  • [25] Novel fiber-optic distributed strain and temperature sensor with very high resolution
    Koyamada, Yahei
    Eda, Yousuke
    Hirose, Souichi
    Nakamura, Shinki
    Hogari, Kazuo
    IEICE TRANSACTIONS ON COMMUNICATIONS, 2006, E89B (05) : 1722 - 1725
  • [26] Brillouin gain spectrum characteristics for temperature compensation in fiber optic distributed strain sensor
    Wosniok, Aleksander
    22ND INTERNATIONAL CONFERENCE ON OPTICAL FIBER SENSORS, PTS 1-3, 2012, 8421
  • [27] Polarimetric distributed feedback fiber laser sensor for simultaneous strain and temperature measurements
    Hadeler, O
    Ronnekleiv, E
    Ibsen, M
    Laming, RI
    APPLIED OPTICS, 1999, 38 (10) : 1953 - 1958
  • [28] Fiber optic quasi-distributed temperature sensor
    Hypszer, R
    Kosmowski, BB
    Plucinski, J
    Wierzba, P
    OPTOELECTRONIC AND ELECTRONIC SENSORS II, 1997, 3054 : 122 - 125
  • [29] Distributed fiber-optic sensor for dynamic strain measurement
    Chaube, Prabodh
    Colpitts, Bruce G.
    Jagannathan, Deepak
    Brown, Anthony W.
    IEEE SENSORS JOURNAL, 2008, 8 (7-8) : 1067 - 1072
  • [30] Shape sensing using distributed fiber optic strain measurements
    Miller, GA
    Askins, CG
    Friebele, EJ
    SECOND EUROPEAN WORKSHOP ON OPTICAL FIBRE SENSORS: PROCEEDINGS, 2004, 5502 : 528 - 531