• Photonic Sensors
  • Vol. 8, Issue 4, 320 (2018)
Yi KUANG1、2, Yongxing GUO1、2、*, Li XIONG1、2, and Wenlong LIU1、2
Author Affiliations
  • 1Key Laboratory of Metallurgical Equipment and Control Technology, Ministry of Education, Wuhan University of Science and Technology, Wuhan 430081, China
  • 2Hubei Key Laboratory of Mechanical Transmission and Manufacturing Engineering, Wuhan University of Science and Technology, Wuhan 430081, China
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    DOI: 10.1007/s13320-018-0504-y Cite this Article
    Yi KUANG, Yongxing GUO, Li XIONG, Wenlong LIU. Packaging and Temperature Compensation of Fiber Bragg Grating for Strain Sensing: A Survey[J]. Photonic Sensors, 2018, 8(4): 320 Copy Citation Text show less
    References

    [1] K. O. Hill, Y. Fujii, D. C. Johnson, and B. S. Kawasaki, “Photosensitivity in optical fiber waveguides: application to reflection filter fabrication,” Applied Physics Letters, 1978, 32(10): 647–649.

    [2] B. S. Kawasaki, K. O. Hill, D. C. Johnson, and Y. Fujii, “Narrow-band Bragg reflectors in optical fibers,” Optics Letters, 1978, 3(2): 66–68.

    [3] W. W. Morey, G. Meltz, and W. H. Glenn, “Fiber optic Bragg grating sensors,” SPIE, 1990, 1169(96): 98–107.

    [4] Y. X. Guo, D. S. Zhang, J. J. Fu, S. B. Liu, S. Z. Zhang, and F. D. Zhu, “Development and operation of a fiber Bragg grating based online monitoring strategy for slope deformation,” Sensor Review, 2015, 35 (4): 348–356.

    [5] T. L. Li, Y. G. Tan, Y. Liu, A. Qu, M. Y. Liu, and Z. D. Zhou, “A fiber Bragg grating sensing based triaxial vibration sensor,” Sensors, 2015, 15(9): 24214–24229.

    [6] J. A. Chen, D. Huang, H. T. Zhao, Q. B. Wang, Y. Qiu, and D. P. Duan, “Fiber Bragg grating-based plane strain monitoring of aerostat envelope structures,” Applied Optics, 2013, 52(19): 4631–4639.

    [7] L. Xiong, G. Z. Jiang, Y. X. Guo, and H. H. Liu, “A three-dimensional fiber Bragg grating force sensor for robot,” IEEE Sensors Journal, 2018, 18(9): 3632–3639.

    [8] K. Wan, “Quantitative sensitivity analysis of surface attached optical fiber strain sensor,” IEEE Sensors Journal, 2014, 14(6): 1805–1812.

    [9] R. J. Wu, B. L. Zheng, Z. G. Liu, P. F. He, and Y. G. Tan, “Analysis on strain transfer of a pasted FBG strain sensor,” Optik – International Journal for Light and Electron Optics, 2014, 125(17): 4924–4928.

    [10] H. Zhou, X. G. Qiao, H. L. Wang, D. Q. Feng, and W. Wang, “Study of a high-temperature and high-pressure FBG sensor with Al2O3 thin-wall tube substrate,” Optoelectronics Letters, 2008, 4(4): 260–263.

    [11] J. Li, H. Neumann, and R. Ramalingam, “Design, fabrication, and testing of fiber Bragg grating sensors for cryogenic long-range displacement measurement,” Cryogenics, 2015, 68: 36–43.

    [12] Y. X. Guo, L. Xiong, J. Y. Kong, Z. Y. Zhang, and L. Qin, “Sliding type fiber Bragg grating displacement sensor,” Optics and Precision Engineering, 2017, 25(1): 50–58.

    [13] J. Huang, Z. D. Zhou, X. Y. Wen, and D. S. Zhang, “A diaphragm-type fiber Bragg grating pressure sensor with temperature compensation,” Measurement Journal of the International Measurement Confederation, 2013, 46(3): 1041–1046.

    [14] Y. D. Zhang, K. Y. Zhang, and H. Zhao, “Vacuum electrostatic voltage sensors based on uniform strain beam and twin-FBGs with temperature compensation,” Journal of Optoelectronics·Laser, 2015, 26(8): 1448–1453.

    [15] Y. X. Guo, J. Y. Kong, H. H. Liu, H. G. Xiong, G. F. Li, and L. Qin, “A three-axis force fingertip sensor based on fiber Bragg grating,” Sensors and Actuators A: Physical, 2016, 249: 141–148.

    [16] Y. Sun, H. S. Lee, and B. Han, “Measurement of elastic properties of epoxy molding compound by single cylindrical configuration with embedded fiber Bragg grating sensor,” Experimental Mechanics, 2017, 57: 313–324.

    [17] J. F. Wang, Y. Yu, Y. Chen, H. Luo, and Z. Meng, “Research of a double fiber Bragg gratings vibration sensor with temperature and cross axis insensitive,” Optik – International Journal for Light and Electron Optics, 2015, 126(7–8): 749–753.

    [18] W. T. Zhang, F. Li, and Y. L. Liu, “FBG pressure sensor based on the double shell cylinder with temperature compensation,” Measurement, 2009, 42(3): 408–411.

    [19] Y. J. Zhang, B. K. Huang, B. Wei, B. B. Jia, and W. H. Bi, “Experiment research in slope monitoring based on fiber Bragg grating sensing technology,” Optical Technology, 2011, 37(2): 208–212.

    [20] V. R. Pachava, S. Kamineai, S. S. Madhuvarasu, K. Putha, and V. R. Mamidi, “FBG based high sensitive pressure sensor and its low-cost interrogation system with enhanced resolution,” Photonic Sensors, 2015, 5(4): 321–329.

    [21] T. L. Li, Y. G. Tan, Z. D. Zhou, L. Cai, S. Liu, Z. T. He, et al., “Study on the non-contact FBG vibration sensor and its application,” Photonic Sensors, 2015, 5(2): 128–136.

    [22] T. L. Li, Y. G. Tan, Z. D. Zhou, and K. Zheng, “A non-contact FBG vibration sensor with double differential temperature compensation,” Optical Review, 2016, 21(3): 26–32.

    [23] T. L. Li, C. Y. Shi, Y. G. Tan, R. Y. Li, Z. D. Zhou, and H. L. Ren, “A diaphragm type fiber Bragg grating vibration sensor based on transverse property of optical fiber with temperature compensation,” IEEE Sensors Journal, 2016, 17(4): 1021–1029.

    [24] Y. X. Guo, J. Y. Kong, H. H. Liu, D. T. Hu, and L. Qin, “Design and investigation of a reusable surface-mounted optical fiber Bragg grating strain sensor,” IEEE Sensors Journal, 2016, 16(23): 8456–8462.

    [25] K. Tai, A. Hasegawa, and A. Tomita, “Embedding optical fibers in metal alloys,” Instrumentation & Measurement Magazine IEEE, 2003, 6(2): 31–36.

    [26] D. Fan, “Experimental study of sense characteristic based on metalized package fiber Bragg grating,” Chinese Journal of Sensors and Actuators, 2006, 1234–1237.

    [27] R. Teng, S. H. Song, R. S. Shen, Y. S. Zhang, and G. T. Du, “Study on electroless plating of nickel and electroplating of stannum on quartz optical fiber,” Optical Technique, 2008, 34: 87–88.

    [28] B. Shui, “Study on sensing technology of metal coating fiber Bragg grating,” Ph.D. dissertation, Wuhan University of Technology, Wuhan, China, 2012.

    [29] Y. Feng, H. Zhang, Y. L. Li, and C. F. Rao, “Temperature sensing of metal-coated fiber Bragg grating,” IEEE/ASME Transactions on Mechatronics, 2011, 15(4): 511–519.

    [30] Y. M. Zhang, L. Q. Zhu, F. Luo, M. L. Dong, R. T. Yang, W. He, et al., “Comparison of metal-packaged and adhesive-packaged fiber Bragg grating sensors,” IEEE Sensors Journal, 2016, 16(15): 2958–5963.

    [31] Y. L. Li, H. Zhang, Y. Feng, and G. Peng, “Metal coming of fiber grating and the temperature sensing character after metallization,” Optical Fiber Technology, 2009, 15(4): 391–397.

    [32] Y. Feng, H. Zhang, Y. L. Li, and G. Peng, “Temperature sensitization model of fiber Bragg grating with metal coating,” Acta Optica Sinica, 2009, 29(2): 336–341.

    [33] S. W. Lu, J. J. Wang, H. J. Zhang, and Y. Gao, “Fabrication of fiber Bragg grating sensor coated with nickel plate on Sn-Al substrate,” Journal of Optoelectronics Laser, 2012, 23(10): 1847–1850.

    [34] Y. L. Lo and C. P. Kuo, “Packaging a fiber Bragg grating with metal coming for an athermal design,” Journal of Lightwave Technology, 2003, 21(5): 1377–1383.

    [35] R. Shen, “Research of metal-coated and sensing technology applications on FBG,” Ph.D. dissertation, Dalian University of Technology, Dalian, China, 2008.

    [36] R. Rajini-Kumar, M. Suesser, K. G. Narayankhedkar, G. Krige, and M. D. Atrey, “Performance evaluation of metal-coated fiber Bragg grating sensors for sensing cryogenic temperature,” Cryogenics, 2008, 48(3): 142–147.

    [37] Y. X. Guo, D. S. Zhang, Z. D. Zhou, L. Xiong, and X. W. Deng, “Welding-packaged accelerometer based on metal-coated FBG,” Chinese Optics Letters, 2013, 11(7): 21–23.

    [38] Y. X. Guo, D. S. Zhang, H. Meng, X. Y. Wen, and Z. D. Zhou, “Metal packaged fiber Bragg grating accelerometer,” SPIE – The International Society for Optical Engineering, 2012, 8421: 84213V-1–84213V-4.

    [39] Q. Nan, H. U. Wu, and S. Li, “Metallization packaging method for FBG vibration sensor,” Transactions of the China Welding Institution, 2016, 37(2): 17–20.

    [40] Y. Tu and S. T. Tu, “Fabrication and characterization of a metal-packaged regenerated fiber Bragg grating strain sensor for structural integrity monitoring of high-temperature components,” Smart Materials & Structures, 2014, 23(3): 35001–35011.

    [41] Y. Tu, Y. H. Qi, and T. S. Tu, “Fabrication and thermal characteristics of Ti-Ag-Ni coated regenerated grating sensors for high-temperature sensing,” Smart Materials & Structures, 2013, 22(7): 075026-1–075026-7.

    Yi KUANG, Yongxing GUO, Li XIONG, Wenlong LIU. Packaging and Temperature Compensation of Fiber Bragg Grating for Strain Sensing: A Survey[J]. Photonic Sensors, 2018, 8(4): 320
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