Initial Nonreciprocal Phase Shift Measurement Method for Reflective Fiber Optical Voltage Sensor

被引:0
|
作者
Yang, Hanrui [1 ]
Li, Zixin [1 ]
Liu, Dongle [1 ]
Tian, Jiaxing [1 ]
机构
[1] Northeast Elect Power Univ, Sch Automat Engn, Jilin 123012, Peoples R China
关键词
Optical fiber sensors; Optical fiber polarization; Optical variables measurement; Voltage measurement; Interference; Phase measurement; Adaptive optics; Fiber optic voltage sensor; measurement method; nonreciprocal phase shifts; phase shift correction technique; reflective piezoelectric effect; senor accuracy improvement;
D O I
10.1109/TIM.2024.3458043
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
The reflective piezoelectric effect fiber optic voltage sensor (RFOVS) encounters significant challenges in practical application. Due to limitations in the manufacturing process, achieving the theoretically reciprocal structure for RFOVS proves challenging. This limitation significantly impacts measurement accuracy due to the initial nonreciprocal phase shift and environmental-induced phase shift. This study introduces a novel measurement approach to address this challenge, facilitating a straightforward and efficient assessment of the initial nonreciprocal phase shift. This is achieved by precisely measuring the wavelength and wavelength spacing at adjacent troughs of intensity within the spectrum. Simulation analysis and experimental results demonstrate the efficacy of this measurement method, reducing the nonreciprocal phase shift error of the RFOVS to just 1/45 of its initial value. This discovery provides practical solutions and theoretical foundations for addressing the initial nonreciprocal phase shift issue in RFOVS, thereby promoting its practical application.
引用
收藏
页数:7
相关论文
共 50 条
  • [41] An optical fiber hydrophone using equivalent phase shift fiber bragg grating for underwater acoustic measurement
    Huang S.
    Jin X.
    Zhang J.
    Chen Y.
    Wang Y.
    Zhou Z.
    Ni J.
    Photonic Sensors, 2011, 1 (3) : 289 - 294
  • [42] Measurement of chromatic dispersion for long distance optical fiber composite overhead ground wire by phase-shift method
    Zhao, Hong-Bo
    Li, Wei
    Wang, Yang
    Gong, Tao-Rong
    Duan, Shi-Gang
    Dianwang Jishu/Power System Technology, 2010, 34 (07): : 186 - 189
  • [43] Design and Simulation of Silicon Waveguide Optical Circulator Employing Nonreciprocal Phase Shift
    Takei, Ryohei
    Mizumoto, Tetsuya
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2010, 49 (05) : 0522031 - 0522036
  • [44] High Isolation in Silicon Waveguide Optical Isolator Employing Nonreciprocal Phase Shift
    Shirato, Yuya
    Shoji, Yuya
    Mizumoto, Tetsuya
    2013 OPTICAL FIBER COMMUNICATION CONFERENCE AND EXPOSITION AND THE NATIONAL FIBER OPTIC ENGINEERS CONFERENCE (OFC/NFOEC), 2013,
  • [45] Design of reflective optical fiber displacement sensor using double optical paths
    Du, Wenlong
    Computer Modelling and New Technologies, 2014, 18 (11): : 1438 - 1442
  • [46] Integrated optical isolator employing nonreciprocal phase shift by wafer direct bonding
    Yokoi, H
    Mizumoto, T
    HIGH-DENSITY MAGNETIC RECORDING AND INTEGRATED MAGNETO-OPTICS: MATERIALS AND DEVICES, 1998, 517 : 469 - 473
  • [47] Optical isolation based on nonreciprocal phase shift induced by interband photonic transitions
    Yu, Zongfu
    Fan, Shanhui
    APPLIED PHYSICS LETTERS, 2009, 94 (17)
  • [48] Polarization-independent waveguide optical isolator based on nonreciprocal phase shift
    Fujita, J
    Levy, M
    Osgood, RM
    Wilkens, L
    Dötsch, H
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2000, 12 (11) : 1510 - 1512
  • [49] Influence of Initial Phase Modulation on the Sensitivity of the Optical Fiber Sagnac Acoustic Emission Sensor
    Cheng, Zhuming
    Zeng, Jie
    Liang, Dakai
    Chang, Chen
    Wang, Bing
    APPLIED SCIENCES-BASEL, 2019, 9 (05):
  • [50] Integrable Semiconductor Optical Isolators Towards Larger Optical Isolation utilizing Nonreciprocal Phase Shift
    Shimizu, H.
    Yoshida, S.
    2008 CONFERENCE ON LASERS AND ELECTRO-OPTICS & QUANTUM ELECTRONICS AND LASER SCIENCE CONFERENCE, VOLS 1-9, 2008, : 839 - 840