Optical Fiber Sensors Technology

Progress in Research of Brillouin Optical Time Domain Analysis for Dynamic Strain Sensing

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  • Key Laboratory of Optoelectronic Technology & Systems (Ministry of Education), Chongqing University, Chongqing 400044, China

Received date: 2019-10-28

  Online published: 2020-04-01

Abstract

Brillouin optical time domain analysis (BOTDA) has wide application prospects in health monitoring of large infrastructure and condition monitoring of aircraft, since it is capable of sensing distributed strain over long distance with high spatial resolution and accuracy. However, the sensing speed of conventional BOTDA is fairly slow and hardly realize dynamic strain measurement due to its frequency sweeping process. Aim at this problem, this paper reviews the research progress of BOTDA for dynamic strain sensing in recent years, including slope-assisted BOTDA (SA-BOTDA), fast BOTDA (F-BOTDA), sweep free BOTDA (SF-BOTDA) and dynamic BOTDA based on chirped pump/probe. The advantages and disadvantages of these technologies are discussed, and the development prospects of BOTDA for dynamic sensing are estimated as well.

Cite this article

ZHU Tao, ZHENG Hua, ZHANG Jingdong . Progress in Research of Brillouin Optical Time Domain Analysis for Dynamic Strain Sensing[J]. Journal of Applied Sciences, 2020 , 38(2) : 197 -214 . DOI: 10.3969/j.issn.0255-8297.2020.02.001

References

[1] Maurer R D, Schultz P C. Fused silica optical waveguide:U.S. Patent 3659915[P]. 1972-5-2.
[2] Ikechukwu I P, 黄仕宏,李雨佳,et al. 光纤传感用激光光源技术[J]. 光电工程,2018, 45(9):5-15. Ikechukwu I P, Huang S H, Li Y J, et al. Laser sources for optical fber sensing[J]. OptoElectronic Engineering, 2018, 45(9):5-15. (in Chinese)
[3] Grattan K T, Meggitt B. Optical fber sensor technology[M]. Boston:Springer, 1995.
[4] Lee B. Review of the present status of optical fber sensors[J]. Optical Fiber Technology, 2003, 9(2):57-79.
[5] Grattan L, Meggitt B. Optical fber sensor technology:advanced applications-Bragg gratings and distributed sensors[M]. Boston:Springer Science & Business Media, 2013.
[6] Culshaw B. Optical fber sensor technologies:opportunities and-perhaps-pitfalls[J]. Journal of Lightwave Technology, 2004, 22(1):39-50.
[7] Preininger C, Klimant I, Wolfbeis O S. Optical fber sensor for biological oxygen demand[J]. Analytical Chemistry, 1994, 66(11):1841-1846.
[8] Ohno H, Naruse H, Kihara M, et al. Industrial applications of the BOTDR optical fber strain sensor[J]. Optical Fiber Technology, 2001, 7(1):45-64.
[9] Nikles M, Thévenaz L, Robert P A. Simple distributed fber sensor based on Brillouin gain spectrum analysis[J]. Optics Letters, 1996, 21(10):758-760.
[10] 况洋,吴昊庭,张敬栋,等. 分布式多参数光纤传感技术研究进展[J]. 光电工程,2018, 45(9):66-81. Kuang Y, Wu H T, Zhang J D, et al. Advances of key technologies on distributed fber system for multi-parameter sensing[J]. Opto-Electronic Engineering, 2018, 45(9):66-81. (in Chinese)
[11] Kersey A D, Berkoff T, Morey W. Multiplexed fber Bragg grating strain-sensor system with a fber Fabry-Perot wavelength flter[J]. Optics Letters, 1993, 18(16):1370-1372.
[12] Meltz G, Morey W W, Glenn W. Formation of Bragg gratings in optical fbers by a transverse holographic method[J]. Optics Letters, 1989, 14(15):823-825.
[13] Hill K O, Meltz G. Fiber Bragg grating technology fundamentals and overview[J]. Journal of Lightwave Technology, 1997, 15(8):1263-1276.
[14] Bhatia V. Applications of long-period gratings to single and multi-parameter sensing[J]. Optics Express, 1999, 4(11):457-466.
[15] Blake J, Tantaswadi P, De Carvalho R. In-line Sagnac interferometer current sensor[J]. IEEE Transactions on Power Delivery, 1996, 11(1):116-121.
[16] Ippen E, Stolen R. Stimulated Brillouin scattering in optical fbers[J]. Applied Physics Letters, 1972, 21(11):539-541.
[17] Culverhouse D, Farahi F, Pannell C, et al. Potential of stimulated Brillouin scattering as sensing mechanism for distributed temperature sensors[J]. Electronics Letters, 1989, 25(14):913-915.
[18] Horiguchi T, Kurashima T, Tateda M. Tensile strain dependence of Brillouin frequency shift in silica optical fbers[J]. IEEE Photonics Technology Letters, 1989, 1(5):107-108.
[19] Horiguchi T, Tateda M. BOTDA-nondestructive measurement of single-mode optical fber attenuation characteristics using Brillouin interaction:theory[J]. Journal of Lightwave Technology, 1989, 7(8):1170-1176.
[20] Dong Y, Zhang H, Chen L, et al. 2 cm spatial-resolution and 2 km range Brillouin optical fber sensor using a transient differential pulse pair[J]. Applied Optics, 2012, 51(9):1229-1235.
[21] Dong Y, Chen L, Bao X. Time-division multiplexing-based BOTDA over 100 km sensing length[J]. Optics Letters, 2011, 36(2):277-279.
[22] Li Z, Yan L, Shao L, et al. Enhanced performance in coherent BOTDA sensor with reduced effect of chromatic dispersion[J]. Optics Express, 2015, 23(23):30483-30490.
[23] Li Z, Yan L, Shao L, et al. Precise Brillouin gain and phase spectra measurements in coherent BOTDA sensor with phase fluctuation cancellation[J]. Optics Express, 2016, 24(5):4824-4833.
[24] He H, Shao L, Li H, et al. SNR enhancement in phase-sensitive OTDR with adaptive 2-D bilateral fltering algorithm[J]. IEEE Photonics Journal, 2017, 9(3):1-10.
[25] Hu J, Xia L, Yang L, et al. Strain-induced vibration and temperature sensing BOTDA system combined frequency sweeping and slope-assisted techniques[J]. Optics Express, 2016, 24(12):13610-13620.
[26] Wang F, Zhu C, Cao C, et al. Enhancing the performance of BOTDR based on the combination of FFT technique and complementary coding[J]. Optics Express, 2017, 25(4):3504-3513.
[27] Lu P, Lalam N, Badar M, et al. Distributed optical fber sensing:review and perspective[J]. Applied Physics Reviews, 2019, 6(4):041302-041336.
[28] Foaleng S M, Tur M, Beugnot J C, et al. High spatial and spectralresolution long-range sensing using Brillouin echoes[J]. Journal of Lightwave Technology, 2010, 28(20):2993-3003.
[29] Bernini R, Minardo A, Zeni L. Dynamic strain measurement in optical fbers by stimulated Brillouin scattering[J]. Optics Letters, 2009, 34(17):2613-2615.
[30] Peled Y, Motil A, Yaron L, et al. Slope-assisted fast distributed sensing in optical fbers with arbitrary Brillouin profle[J]. Optics Express, 2011, 19(21):19845-19854.
[31] Motil A, Danon O, Peled Y, et al. Pump-power-independent double slope-assisted distributed and fast Brillouin fber-optic sensor[J]. IEEE Photonics Technology Letters, 2014, 26(8):797-800.
[32] Ba D, Wang B, Zhou D, et al. Distributed measurement of dynamic strain based on multislope assisted fast BOTDA[J]. Optics Express, 2016, 24(9):9781-9793.
[33] Zhou D, Dong Y, Wang B, et al. Slope-assisted BOTDA based on vector SBS and frequencyagile technique for wide-strain-range dynamic measurements[J]. Optics Express, 2017, 25(3):1889-1902.
[34] Yang G, Fan X, He Z. Strain dynamic range enlargement of slope-assisted BOTDA by using Brillouin phase-gain ratio[J]. Journal of Lightwave Technology, 2017, 35(20):4451-4458.
[35] Zheng H, Feng D, Zhang J, et al. Distributed vibration measurement based on a coherent multi-slope-assisted BOTDA with a large dynamic range[J]. Optics Letters, 2019, 44(5):1245-1248.
[36] Peled Y, Motil A, Tur M. Fast Brillouin optical time domain analysis for dynamic sensing[J]. Optics Express, 2012, 20(8):8584-8591.
[37] Dong Y, Ba D, Jiang T. High-spatial-resolution fast BOTDA for dynamic strain measurement based on differential double-pulse and second-order sideband of modulation[J]. IEEE Photonics Journal, 2013, 5(3):2600407.
[38] Zheng H, Zhang J, Zhu T, et al. Fast distributed Brillouin optical fber sensing based on pump frequency modulation[J]. Applied Physics Express, 2018, 11(7):072502.
[39] Zheng H, Zhang J, Zhu T, et al. Polarization independent fast BOTDA based on pump frequency modulation and cyclic coding[J]. Optics Express, 2018, 26(14):18270-18278.
[40] Chaube P, Colpitts B G, Jagannathan D, et al. Distributed fber-optic sensor for dynamic strain measurement[J]. IEEE Sensors Journal, 2008, 8(7):1067-1072.
[41] Voskoboinik A, Wang J, Shamee B, et al. SBS-based fber optical sensing using frequencydomain simultaneous tone interrogation[J]. Journal of Lightwave Technology, 2011, 29(11):1729-1735.
[42] Voskoboinik A, Yilmaz O F, Willner A W, et al. Sweep-free distributed Brillouin timedomain analyzer (SF-BOTDA)[J]. Optics Express, 2011, 19(26):B842-B847.
[43] Voskoboinik A, Rogawski D, Huang H, et al. Frequency-domain analysis of dynamically applied strain using sweep-free Brillouin time-domain analyzer and sloped-assisted FBG sensing[J]. Optics Express, 2012, 20(26):B581-F586.
[44] Jin C, Guo N, Feng Y, et al. Scanning-free BOTDA based on ultra-fne digital optical frequency comb[J]. Optics Express, 2015, 23(4):5277-5284.
[45] Jin C, Wang L, Chen Y, et al. Single-measurement digital optical frequency comb based phase-detection Brillouin optical time domain analyzer[J]. Optics Express, 2017, 25(8):9213-9224.
[46] Fang J, Xu P, Dong Y, et al. Single-shot distributed Brillouin optical time domain analyzer[J]. Optics Express, 2017, 25(13):15188-15198.
[47] Liang Z, Pan J, Gao S, et al. Spatial resolution improvement of single-shot digital optical frequency comb-based Brillouin optical time domain analysis utilizing multiple pump pulses[J]. Optics Letters, 2018, 43(15):3534-3537.
[48] Zhao C, Tang M, Wang L, et al. BOTDA using channel estimation with direct-detection optical OFDM technique[J]. Optics Express, 2017, 25(11):12698-12709.
[49] Fang J, Shieh W, Xu P. Single-shot Brillouin optical time domain analysis for distributed fber sensing[C]//2016 IEEE Sensors. IEEE, 2016:1-3.
[50] Kito C, Takahashi H, Toge K, et al. Dynamic strain measurement of 10 km fber with frequency-swept pulsed BOTDA[J]. Journal of Lightwave Technology, 2017, 35(9):1738-1743.
[51] Kito C, Takahashi H, Toge K, et al. Fast acquirable long range measurement with frequencyswept probe BOTDA[J]. Journal of Lightwave Technology, 2018, 36(4):885-890.
[52] Zhou D, Dong Y, Wang B, et al. Single-shot BOTDA based on an optical chirp chain probe wave for distributed ultrafast measurement[J]. Light, Science & Applications, 2018, 7(1):1-11.
[53] Wang B, Fan B, Zhou D, et al. High-performance optical chirp chain BOTDA by using a pattern recognition algorithm and the differential pulse-width pair technique[J]. Photonics Research, 2019, 7(6):652-658.
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