Laser & Optoelectronics Progress, Volume. 58, Issue 11, 1106008(2021)

Application of Optical Fiber Sensing Technology in State Monitoring of Superconducting Magnet

Song Yang1、*, Yanchao Liu2, Xiandao Lei2, Xinyu Fang1, Wenlong Li1, and Jin Fang1、**
Author Affiliations
  • 1School of Electrical Engineering, Beijing Jiaotong University, Beijing , 100044, China
  • 2Institute of Science and Technology, China Three Gorges Corporation, Beijing , 100038, China
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    References(63)

    [1] Xiao L Y, Liu X H, Wang Q L et al. Superconducting materials and their application status and development prospect[J]. China Industry & Information Technology, 30-37(2018).

    [2] Wu X C, Li Y S, Xu F. Development and application status of HTS materials[J]. Development and Application of Materials, 29, 95-100(2014).

    [3] Zhang B. Status and prospects of the development of superconducting materials[J]. Advanced Materials Industry, 53-55(2014).

    [4] Chen J X. Measurement of quench behavior of high temperature superconducting tapes by fiber grating[D], 1-10(2019).

    [5] Wu Q X, Xi D M, Jiang J J et al. Temperature distribution detection of high temperature superconducting coils based on optical fiber temperature measurement technology[J]. Cryo & Supercond, 49, 22-25(2021).

    [6] Ma Y W. Recent developments of practical superconducting materials[J]. Physics, 44, 674-683(2015).

    [7] Bernd S[M]. Handbook of applied superconductivity, 1-30(1998).

    [8] Loyd R J, Bulc A M, Chang C L. Coil protection for the 20.4 MWh SMES/ETM[J]. IEEE Transactions on Magnetics, 27, 1716-1719(1991).

    [9] Sugimoto M, Isono T, Koizumi N et al. An evaluation of the inlet flow reduction for a cable in conduit conductor by rapid heating[J]. Cryogenics, 39, 939-945(1999).

    [10] Ninomiya A, Sakaniwa K, Kado H et al. Quench detection of superconducting magnets using ultrasonic wave[J]. IEEE Transactions on Magnetics, 25, 1520-1523(1989).

    [11] Liu B, Wu Y, Liu F et al. Axial strain characterization of the Nb3Sn strand used for China's TF conductor[J]. IEEE Transactions on Applied Superconductivity, 15, 3368-3371(2005).

    [12] Zhou Y H, Wang X Z. Review on some key issues related to design and fabrication of superconducting magnets in ITER[J]. Scientia Sinica (Physica,Mechanica & Astronomica), 43, 1558-1569(2013).

    [13] Tang H M, Wang L, Du X Y et al. Numerical study of cool-down or warm-up of the superconducting solenoid magnet in BEPCⅡ[J]. Journal of Huazhong University of Science and Technology (Nature Science Edition), 35, 82-84(2007).

    [14] Guan M Z, Ma L Z, Wang X Z et al. Stress and strain measurements on a 5 T superconducting magnet during coil excitation[J]. IEEE Transactions on Applied Superconductivity, 22, 9002404(2012).

    [15] James S W, Tatam R P, Twin A et al. Strain response of fibre Bragg grating sensors at cryogenic temperatures[J]. Measurement Science and Technology, 13, 1535-1539(2002).

    [16] Bednorz J G, Müller K A. Possible high Tc superconductivity in the Ba-La-Cu-O system[J]. Zeitschrift Für Physik B Condensed Matter, 64, 189-193(1986).

    [17] Chen Y, An W Y, Liu H L et al. Detection method using FBG sensing signal to diagnose rolling bearing fault[J]. Chinese Journal of Lasers, 47, 1104004(2020).

    [18] Zhang Z L, Gao L, Sun Y Y et al. Strain transfer law of distributed optical fiber sensor[J]. Chinese Journal of Lasers, 46, 0410001(2019).

    [19] Zhang W, Su C Q, Zhang M et al. Theory and method for improving optimization objective function in demodulation algorithm of fiber Bragg grating strain distribution[J]. Chinese Journal of Lasers, 46, 0206002(2019).

    [20] Liu D H. Quantitative study of thermal stability and mechanical behaviors in high-temperature superconducting coils[D], 1-20(2019).

    [21] Cui Y M, Pan W J, Wu S T et al. Study on VPI process of epoxy impregnating resin for cryogenic superconducting magnets in TOKAMAK[J]. Insulating Materials, 34, 44-46(2001).

    [22] Chen B. Research and related experiments of quench detection technology for high-temperature superconducting magnet[D], 1-10(2020).

    [23] Hill K O, Fujii Y, Johnson D C et al. Photosensitivity in optical fiber waveguides: application to reflection filter fabrication[J]. Applied Physics Letters, 32, 647-649(1978).

    [24] Hill K O, Malo B, Bilodeau F et al. Bragg gratings fabricated in monomode photosensitive optical fiber by UV exposure through a phase mask[J]. Applied Physics Letters, 62, 1035-1037(1993).

    [25] Jiang D S, He W. Review of applications for fiber Bragg grating sensors[J]. Journal of Optoelectronics·Laser, 13, 420-430(2002).

    [26] Jiang H, Zhou Q X, Chen J et al. Wavelength detection optimization of fiber Bragg grating sensing networks based on distortion spectrum[J]. Acta Optica Sinica, 39, 1006002(2019).

    [27] Chen J, Guo Y X, Zhu F D et al. Fiber Bragg grating inclination sensor for transmission tower[J]. Laser & Optoelectronics Progress, 56, 080602(2019).

    [28] Zhang X, Hou M S, Liu Z C et al. Surface reconstruction algorithm of plate-shell structure based on fiber Bragg grating sensor[J]. Laser & Optoelectronics Progress, 57, 090603(2020).

    [29] Chan T H T, Yu L, Tam H Y et al. Fiber Bragg grating sensors for structural health monitoring of Tsing Ma bridge: background and experimental observation[J]. Engineering Structures, 28, 648-659(2006).

    [30] Liu Q, Tokunaga T, Mogi K et al. Ultrahigh resolution multiplexed fiber Bragg grating sensor for crustal strain monitoring[J]. IEEE Photonics Journal, 4, 996-1003(2012).

    [31] Moslehi B, Black R J, Faridian F. Multifunctional Fiber Bragg grating sensing system for load monitoring of composite wings[C], 1-9(2011).

    [32] El-Gammal H M, El-Badawy E S A, Rizk M R M et al. A new hybrid FBG with a π-shift for temperature sensing in overhead high voltage transmission lines[J]. Optical and Quantum Electronics, 52, 1-24(2020).

    [33] Rogers A J. Polarization-optical time domain reflectometry[J]. Proceedings of SPIE, 236, 358-364(1981).

    [34] Hartog A. A distributed temperature sensor based on liquid-core optical fibers[J]. Journal of Lightwave Technology, 1, 498-509(1983).

    [35] Han Y W, Hao W J, Zhang L X et al. Research of distributed optical fiber temperature measurement system based on Raman scattering principle[J]. Semiconductor Optoelectronics, 34, 342-345(2013).

    [36] Chen J P, Li W L, Cai Z G. Review of distributed optical fiber Raman temperature measuring system[J]. Journal of Guangdong University of Technology, 32, 102-109(2015).

    [37] Froggatt M, Moore J. High-spatial-resolution distributed strain measurement in optical fiber with Rayleigh scatter[J]. Applied Optics, 37, 1735-1740(1998).

    [38] Zhao M M. Study on distributed optical fiber sensor based on optical frequency domain reflectometry[D], 1-25(2020).

    [39] Turenne M, Johnson R, Hunte F et al. Multi-purpose fiber optic sensors for high temperature superconducting magnets[C], 1-4(2009).

    [40] Liu Y C, Fang J, Jia D Y et al. Temperature characteristics of FBG sensors with different coatings for high temperature superconductor application[C], 1546-1550(2019).

    [41] Liu Y C, Fisser M, Fang J et al. Feasibility study of fiber Bragg grating sensor for quench detection of high temperature superconductors[J]. IEEE Transactions on Applied Superconductivity, 29, 1-6(2019).

    [42] Liu Y C, Badcock R A, Fang X Y et al. Selecting of FBG coatings for quench detection in HTS coils[J]. IEEE Transactions on Applied Superconductivity, 28, 1-5(2018).

    [43] James S W, Tatam R P, Twin A et al. Strain response of fibre Bragg grating sensors at cryogenic temperatures[J]. Measurement Science and Technology, 13, 1535-1539(2002).

    [44] Feng Z A. Study of strain in superconducting magnet by fiber Bragg grating and numerical simulation[D], 15-54(2004).

    [45] Chiuchiolo A, Bajko M, Perez J C et al. Structural health monitoring of superconducting magnets at CERN using fiber Bragg grating sensors[C], 2014.

    [46] Chiuchiolo A, Bajas H, Bajko M et al. Advances in fiber optic sensors technology development for temperature and strain measurements in superconducting magnets and devices[J]. IEEE Transactions on Applied Superconductivity, 26, 1-5(2016).

    [47] Chiuchiolo A, Bajas H, Bajko M et al. Embedded fiber Bragg grating sensors for true temperature monitoring in Nb3Sn superconducting magnets for high energy physics[J]. Proceedings of SPIE, 9916, 99160A(2016).

    [48] Chiuchiolo A, Bajko M, Perez J C et al. Fiber Bragg grating sensors based monitoring system for superconducting accelerator magnets[C], 1-3(2014).

    [49] Dai J S, Wang Y S, Zhao W J et al. A novel calorimetric method for measurement of AC losses of HTS tapes by optical fiber Bragg grating[C], 124-127(2013).

    [50] Dai J S, Wang Y S, Zhao W J et al. A novel calorimetric method for measurement of AC losses of HTS tapes by optical fiber Bragg grating[J]. IEEE Transactions on Applied Superconductivity, 24, 1-4(2014).

    [51] Dai J S. Experimental research on AC losses of HTS tapes by optical fiber Bragg grating[D], 16-40(2014).

    [52] Liu Y C, Jiang Z N, Badcock R et al. Study of calorimetric self-field AC loss measurement of HTS stacks using FBG sensors[J]. IEEE Transactions on Applied Superconductivity, 30, 1-6(2020).

    [53] Gao X J. Study on application of optical fiber sensing technology in high-temperature superconducting cables‍[D], 38-48(2015).

    [54] Jiang J J, Sheng J, Wu Q X et al. Spatial and temporal resolution optimization on Raman distributed temperature sensor system for quench detection in a No-insulated coil[J]. IEEE Transactions on Applied Superconductivity, 29, 1-5(2019).

    [55] Jiang J J, Zhao Y, Hong Z Y et al. Experimental study on quench detection of a No-insulation HTS coil based on Raman-scattering technology in optical fiber[J]. IEEE Transactions on Applied Superconductivity, 28, 1-5(2018).

    [56] Lü Y Y, Jiang J J, Wang L B et al. Experimental study on temperature distribution measurement of an optical fiber encapsulated coil in liquid nitrogen[J]. Journal of Physics: Conference Series, 1590, 012050(2020).

    [57] Hong Z Y, Wang Y W. Superconducting tape with measuring optical fibers sealed inside, and preparation method and device thereof[P].

    [58] Zhou K, Shi J, Wu Z C et al. Study on temperature measurement performance of different packaged optical fibers at low temperature[J]. Low Temperature Physical Letters, 41, 308-314(2019).

    [59] Chan W K, Flanagan G, Schwartz J. Spatial and temporal resolution requirements for quench detection in (RE)Ba2Cu3Oxmagnets using Rayleigh-scattering-based fiber optic distributed sensing[J]. Superconductor Science and Technology, 26, 105015(2013).

    [60] Scurti F, Ishmael S, Flanagan G et al. Quench detection for high temperature superconductor magnets: a novel technique based on Rayleigh-backscattering interrogated optical fibers[J]. Superconductor Science and Technology, 29, 03(2016).

    [61] Chen B, Li J G, Hu Y L et al. Quench detection of Bi2223/Ag insulated double-pancake coil using distributed optic fiber sensor[J]. IEEE Transactions on Applied Superconductivity, 30, 1-5(2020).

    [62] Koshikiya Y, Fan X Y, Ito F. Influence of acoustic perturbation of fibers in phase-noise-compensated optical-frequency-domain reflectometry[J]. Journal of Lightwave Technology, 28, 3323-3328(2010).

    [63] Venkatesh S, Sorin W V. Phase noise considerations in coherent optical FMCW reflectometry[J]. Journal of Lightwave Technology, 11, 1694-1700(1993).

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    Song Yang, Yanchao Liu, Xiandao Lei, Xinyu Fang, Wenlong Li, Jin Fang. Application of Optical Fiber Sensing Technology in State Monitoring of Superconducting Magnet[J]. Laser & Optoelectronics Progress, 2021, 58(11): 1106008

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    Paper Information

    Category: Fiber Optics and Optical Communications

    Received: Oct. 29, 2020

    Accepted: Dec. 8, 2020

    Published Online: Jun. 7, 2021

    The Author Email: Yang Song (yangsong6636@163.com), Fang Jin (fangseer@sina.com)

    DOI:10.3788/LOP202158.1106008

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