• Infrared and Laser Engineering
  • Vol. 53, Issue 2, 20230518 (2024)
Xiang Tang1、2, Jun Wu3, Qihui Li1、2, Jingtao Xin1、2、4, and Mingli Dong1、2、4
Author Affiliations
  • 1Key Laboratory of the Ministry of Education for Optoelectronic Measurement Technology and Instrument, Beijing Information Science & Technology University, Beijing 100192, China
  • 2Beijing Laboratory of Optical Fiber Sensing and System, Beijing Information Science & Technology University, Beijing 100016, China
  • 3Beijing Institute of Space Electromechanics, Beijing 100089, China
  • 4Guangzhou Nansha Intelligent Photonic Sensing Research Institute, Guangzhou 511462, China
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    DOI: 10.3788/IRLA20230518 Cite this Article
    Xiang Tang, Jun Wu, Qihui Li, Jingtao Xin, Mingli Dong. Research on miniature three-axis vibration sensor based on FBG[J]. Infrared and Laser Engineering, 2024, 53(2): 20230518 Copy Citation Text show less
    References

    [1] L Wei, L Yu, J Wang, et al. An FBG-sensing two-dimensional vibration sensor based on multi-axis flexure hinge. IEEE Sensors Journal, 19, 3698-3710(2019).

    [2] X Zhao, W Fan, H Gao, et al. A two-dimensional cantilever beam vibration sensor based on fiber Bragg grating. Optical Fiber Technology, 61, 102447(2021).

    [3] Zihao Zhang, Jing Wang, Xinyu Yu, et al. Experimental research on thermal-indeced vibration based on optical fiber sensor. Aerospace Control and Application, 48, 76-80(2022).

    [4] Zhengyong Liu, Hten Lin, Yi Liu, et al. Special microstructured optical fiber based vibration sensor and its application in railway monitoring. Journal of Mechanical Engineering, 58, 63-70(2022).

    [5] S Y Xu, F F Xing, R L Wang, et al. Vibration sensor for the health monitoring of the large rotating machinery: Review and outlook. Sensor Review, 38, 44-64(2018).

    [6] Faye Zhang, Mingshun Jiang, Qingmei Sui, et al. High sensitivity and low-frequency FBG acceleration sensors based on flexure hinge structure. Infared and Laser Engineering, 46, 0317004(2017).

    [7] Liu Wenmin, Dai Yutang, Wei Yu. et al. High sensitivity lowfrequency acceleration senss based on flexure hinge structure[J]. Infrared Laser Engineering, 2017, 46(3): 0317004. (in Chinese)

    [8] Jialiang Huang, Yuntian Teng. Research on miniaturized low-frequency FBG acceleration sensor based on symmetric cantilever beam. Semiconductor Optoelectronics, 43, 873-880(2022).

    [9] L Liang, H Wang, Z C Li, et al. Miniature bending-resistant fiber grating accelerometer based on a flexible hinge structure. Optics Express, 30, 33502-33514(2022).

    [10] Hongke Wang, Decheng Xu, Lei. Lin et al. Design and strain characteristics of trifarious fiber Bragg grating strain sensor. Laser & Optoelectronics Progress, 59, 1128001(2022).

    [11] H Wang, L Liang, X B Zhou, et al. New fiber Bragg grating three-dimensional accelerometer based on composite flexure hinges. Sensors, 21, 4715(2021).

    [12] Zhenan Jia, Xianfeng Zhao, Kaiqing. Yang et al. Fiber Bragg grating vibration sensor based on ‘E’ beam structure. Journal of Optoelectronics·Laser, 31, 1239-1244(2020).

    [13] Zhao Huizhi, Dong Mingli, Xin Jingtao. et al. Structural design acteristic research of micro broadb FBG vibration sens[JOL].[20230105] https:kns.cnki.kcmsdetail31.1690.TN.20230104.1353.042.html

    [14] Li Su, Xiaotong Zhang, Peitong. Lv et al. Reaserch on a fiber grating low frequency vibraton sensor with large range and high sensitivity. Infrared and Laser Engineering, 49, 20200340(2020).

    [15] Li Binwen. Study on the design demodulation method of optical fiber optic grating vibration sens[D]. Daqing: Nthwest Petroleym University, 2023. (in Chinese)

    CLP Journals

    [1] Zhongze XIAN, Jingtao XIN, Qihui LI, Xiang TANG, Mingli DONG. Wide-band high-sensitivity fiber Bragg grating vibration sensor based with hinged complementary structure[J]. Infrared and Laser Engineering, 2024, 53(7): 20240132

    Xiang Tang, Jun Wu, Qihui Li, Jingtao Xin, Mingli Dong. Research on miniature three-axis vibration sensor based on FBG[J]. Infrared and Laser Engineering, 2024, 53(2): 20230518
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