Study on the Output Signal Modulation for Laser Gyro with Mechanical Dither Bias

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Abstract:

The amplitude of the output signal of prisms laser gyro with mechanical dither bias is always modulated. Theoretical analysis and experimental research on the ray trajectories, assembly situation and polarized properties of light were carried out. Results show that during the dither bias, the light transmitting route deviation caused by stress induced birefringence of prisms and the relative displacement between the photodetector and output light spot was the main reason responsible for the modulation. Polarized experiment data demonstrated that when the value of polarized power of output light below the 25.5% of that in ideal static situation, the standard error over 0.0337dBm, and the displacement extent of prism is higher than the 53% of radius of the beam waist in gyro cavity, the amplitude modulation extent of gyro output signal would be up to 16%, which badly influences measurement precision of laser gyro. Using the symmetric structure for laser gyro design, adopting prisms material with a suitable refractive index and reducing the photodetector deviation could reduce the extent of output signal's amplitude modulation obviously.

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1752-1758

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February 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] S. D. Zhao, B. Zhong, Y. Tang and R. F. Zhao: Advanced Materials Research. Forum Vol. 291-294 (2011), p.3064.

Google Scholar

[2] C. K. Yao and Q. H. Li: Infrared and Laser Engineering. Forum Vol. 40 (2011), p.1090.

Google Scholar

[3] T. Hashimoto, J. Maeya, T. Fujita and K Maenaka: Procedia Chem. Forum Vol. 1 (2009), p.564.

Google Scholar

[4] Tcherkov, I Leonidovich, Aston, S. E. Henry, August, R. John, Jaffe and Randall, U.S. Patent 7, 548, 318. (2009).

Google Scholar

[5] S. M. Wang, Y. W. Shen, Z. M. Sun: Proc. of the International Conference on Mechanical Transmissions. Chongqing (2001), p.230.

Google Scholar

[6] Y. Y. Broslavets, T. E. Zaitseva, A. A. Kazakov and A. A. Fomichev: Quantum Electron. Forum Vol. 36 (2006), p.447.

Google Scholar

[7] S. P. Wan, F. Li, X. F. Wang and Q. Zhu: Infrared and Laser Engineering. Forum Vol. 37 (2008), p.728 (in Chinese).

Google Scholar

[8] Y. Zhang, J. L. Cao, W. Q. Wu and C. H. Gao: Adv. Mater. Res. Forum Vol. 383-390 (2012), p.6313.

Google Scholar

[9] Y. H. Liu and H. F. Li: Nucl. Instr. and Methods in Phys. Res. Sec. A. Forum Vol. 598 (2009), p.605.

Google Scholar

[10] K. Walter, in: Solid State Laser Engineering, Springer Publishing, New York, 2009: 205-256.

Google Scholar

[11] J. Matthew, Bohn and C. D. Jean: Optics Communications. Forum Vol. 213 (2002), p.331.

Google Scholar

[12] Y. J. Guan, H. M. Zhang, J. Liu and S. Sun: Journal of Materials Processing Technology. Forum Vol. 212 (2011), p.662.

Google Scholar

[13] H. Y. Yu, C. X. Zhang, L. S. Feng, H. L. Liu, L. F. Hong, J. J. Wang, Z. C. Jiao and R. Y. Li: Opt. Comm. Forum Vol. 284 (2011), p.5384.

Google Scholar

[14] Z. F. Fan, H. Luo, S. M. Hu: Applied Optics. Forum Vol. 50 (2011), p.3455.

Google Scholar