• Laser & Optoelectronics Progress
  • Vol. 51, Issue 12, 120601 (2014)
Wang Xiaxiao1,*, Qin Yi1, Yu Jia1, Wang Ye2..., Lü Jiangtao3 and Zhou Xiangui4|Show fewer author(s)
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    DOI: 10.3788/lop51.120601 Cite this Article Set citation alerts
    Wang Xiaxiao, Qin Yi, Yu Jia, Wang Ye, Lü Jiangtao, Zhou Xiangui. Study on Geometrical Axial Magnetic Field Sensitivity in PM Optical Fiber Coil of Fiber Optic Gyroscope[J]. Laser & Optoelectronics Progress, 2014, 51(12): 120601 Copy Citation Text show less
    References

    [1] Zhang Guicai. The Principles and Technologies of Fiber- Optic Gyroscope[M]. Beijing: National Defence Industry Press, 2008.

    [2] Wang Lihui, Xu Xiaosu, Liu Xixiang, et al.. Investigation on modeling methods of axial magnetic field error characteristics in small fiber optic gyroscope[J]. Journal of Chinese Inertial Technology, 2012, 20(1): 84-89.

    [3] Zhang Dengwei, Mou Xudong, Shu Xiaowu, et al.. Theory study on axial magnetic field in single- mode fiber loop[J]. Chinese Jounal of Sensors and Actuators, 2005, 18(3): 672-675.

    [4] Li Chuansheng. Investigation on Analysis and Suppression Technique for Polarization Errors of Sagnac Interferometer-type Fiber-Optic Current Transformer[D]. Beijing: Beihang University, 2013.

    [5] Xisheng Fang, Zongqi Lin. Field in single- mode helically- wound optical fibers[J]. IEEE Transactions on Microwave Theory and Techniques, 1985, 33(11): 1150-1154.

    [6] J R Qian. Coupled-mode theory for helical fibres[J]. IEEE Proceedings J Optoelectronics, 1988, 135(2): 178-182.

    [7] Qian Jingren, Wang Xuxu. Coupled-mode theory for spun multi-lobe stress region fibers[J]. Acta Optica Sinica, 2007, 27(3): 550-554.

    [8] Erna M Frins, Wolfgang Dultz. Rotation of the polarization plane in optical fibers[J]. J Lightwave Technology, 1997, 15(1): 144-147.

    [9] J N ROSS. The rotation of the polarization in low birefringence monomode optical fibres due to geometric effects[J]. Optical and Quantum Electronics, 1984, (16): 455-461.

    [10] Qian Jingren. Principles for geometrically distinguishing circular- birefringence fibers[J]. Acta Optica Sinica, 2009, 29(4): 884-887.

    [11] Wang Xiaxiao, Song Ningfang, Zhang Chunxi, et al.. Experimental study on magnet sensitivity of fiber optic gyro[J]. Journal of Beijing University of Aeronautics and Astronautics, 2005, 31(10): 1116-1120.

    [12] Kazuo Hotate, Kunio Tabe. Drift of an optical fiber gyroscope caused by the Faraday effect: influence of the earth′s magnetic field[J]. Appl Opt, 1986, 25(7): 1086-1092.

    [13] Kazuo Hotate, Kunio Tabe. Drift of an optical fiber gyroscope caused by the faraday effect: experiment[J]. J Lightwave Technology, 1987, 5(7): 997-1001.

    [14] T Saida, K Hotate. General formula describing drift of interferometer fiber-optic gyro due to Faraday effect: reduction of the drift in twin-depo-I-FOG[J]. J Lightwave Technology, 1999, 17(2): 222-228.

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    Wang Xiaxiao, Qin Yi, Yu Jia, Wang Ye, Lü Jiangtao, Zhou Xiangui. Study on Geometrical Axial Magnetic Field Sensitivity in PM Optical Fiber Coil of Fiber Optic Gyroscope[J]. Laser & Optoelectronics Progress, 2014, 51(12): 120601
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