Dark-pulse Brillouin optical time-domain sensor with 20-mm spatial resolution

被引:128
|
作者
Brown, Anthony W.
Colpitts, Bruce G.
Brown, Kellie
机构
[1] Univ New Brunswick, Dept Elect & Comp Engn, Fredericton, NB E3B 5A3, Canada
[2] Innovatia Inc, Fredericton, NB E3B 5A3, Canada
关键词
Brillouin scattering; distributed sensors; optical fiber sensors;
D O I
10.1109/JLT.2006.886672
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Brillouin scattering-based distributed fiber-optic sensing is a powerful measurement tool that uses the inelastic scattering of incident light by an acoustic wave (phonon) to determine strain and/or temperature conditions of the fiber. Since the original Brillouin-time-domain-analysis (BOTDA) technique was proposed, several other analysis methods have been introduced to improve sensing performance in four key areas: spatial resolution; measurement accuracy; total sensing length; and measurementacquisition time. The four factors are generally interrelated and improvements to one factor often come at the cost of one or more of the others. For example, one system might sacrifice spatial resolution for total sensing length, while another might sacrifice accuracy to gain acquisition speed. We present a BOTDA system based on dark-pulse scattering that provides improved resolution, accuracy, and acquisition time over conventional BOTDA systems, without the severe limitations on sensing length often imposed by other high-resolution techniques. Theoretical validation of the method is given, and experimental results are presented that demonstrate 20-mm resolution strain measurements with an accuracy of +/- 20 mu epsilon, which is the highest spatial resolution yet reported for a BOTDA system.
引用
收藏
页码:381 / 386
页数:6
相关论文
共 50 条
  • [1] Distributed sensor based on dark-pulse Brillouin scattering
    Brown, AW
    Colpitts, BG
    Brown, K
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2005, 17 (07) : 1501 - 1503
  • [2] Brillouin optical time-domain analysis sensor with pump pulse amplification
    Jose Mompo, Juan
    Urricelqui, Javier
    Loayssa, Alayn
    OPTICS EXPRESS, 2016, 24 (12): : 12672 - 12681
  • [3] High-Pass Filtering for Accuracy Enhancement in Dark-Pulse Brillouin Optical Time Domain Analysis
    Coscetta, A.
    Catalano, E.
    Cerri, E.
    Zeni, L.
    Minardo, A.
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2019, 31 (15) : 1213 - 1216
  • [4] Short spatial resolution retrieval from a long pulse Brillouin optical time-domain analysis trace
    Wang, Sheng
    Yang, Zhisheng
    Zaslawski, Simon
    Thevenaz, Luc
    OPTICS LETTERS, 2020, 45 (15) : 4152 - 4155
  • [5] Novel technique to improve spatial resolution in Brillouin optical time-domain reflectometry
    Koyamada, Y.
    Sakairi, Y.
    Takeuchi, N.
    Adachi, S.
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2007, 19 (21-24) : 1910 - 1912
  • [6] A distributed optical-fiber sensor combined Brillouin optical time-domain analyzer with brillouin optical time-domain reflectometer
    Song M.
    Bao C.
    Qiu C.
    Ye X.
    Guangxue Xuebao/Acta Optica Sinica, 2010, 30 (03): : 650 - 654
  • [7] 1-cm-Spatial-Resolution Brillouin Optical Time-Domain Analysis Based on Bright Pulse Brillouin Gain and Complementary Code
    Mao, Y.
    Guo, N.
    Yu, K. L.
    Tam, H. Y.
    Lu, C.
    IEEE PHOTONICS JOURNAL, 2012, 4 (06): : 2243 - 2248
  • [8] Improvement of spatial resolution for strain measurement with Brillouin optical time-domain reflectometer by fitting method based on equivalent optical pulse
    Wang, Feng
    Zhang, Xuping
    Lu, Yuangang
    Dong, Yuming
    Guangxue Xuebao/Acta Optica Sinica, 2008, 28 (01): : 43 - 49
  • [9] Probe pulse design in Brillouin optical time-domain reflectometry
    Li, Mupeng
    Xu, Tianhua
    Wang, Shuang
    Hu, Wenxiu
    Jiang, Junfeng
    Liu, Tiegen
    IET OPTOELECTRONICS, 2022, 16 (06) : 238 - 252
  • [10] Pulse coding linearization for Brillouin optical time-domain analysis sensors
    Marinelarena, Jon
    Iribas, Haritz
    Loayssa, Alayn
    OPTICS LETTERS, 2018, 43 (22) : 5607 - 5610