DocumentCode
19635
Title
Noise and Bias Error Due to Polarization Coupling in a Fiber Optic Gyroscope
Author
Chamoun, Jacob Nemr ; Digonnet, Michel J. F.
Author_Institution
Dept. of Appl. Phys., Stanford Univ., Stanford, CA, USA
Volume
33
Issue
13
fYear
2015
fDate
July1, 1 2015
Firstpage
2839
Lastpage
2847
Abstract
This paper reports a comprehensive model of the noise and drift induced by polarization coupling in a fiber optic gyroscope (FOG) interrogated with a laser of arbitrary linewidth. It includes the effects of dynamic phase biasing, a realistic description of the laser phase noise and polarization-dependent loss. This model yields concise analytical expressions for the noise and drift dependencies on the laser linewidth, the fiber length and holding parameter h, and the fractional power launched into the unwanted polarization at the input to the sensing coil. For all realistic FOG parameter sets, the polarization-coupling noise is found to be insignificant. For a 1-km coil, a typical holding parameter (h = 10-5) and push-pull modulation, the drift is only ~1 μ rad up to a linewidth of~100 MHz, which is far lower than previously believed. The drift decreases to even lower values for larger linewidths. Experimental measurements of the noise and drift in a 150-m FOG and their dependence on laser linewidth support these predictions. Birefringence modulation can be brought to bear to reduce this residual drift enough to meet the requirement for aircraft inertial navigation. Ultimately, this analysis shows that low-polarization coupling error can be obtained without the use of a broadband source.
Keywords
birefringence; fibre optic gyroscopes; laser noise; measurement by laser beam; optical fibre couplers; optical fibre losses; optical fibre polarisation; optical modulation; phase noise; FOG; aircraft inertial navigation; bias error; birefringence modulation; broadband source; dynamic phase biasing; fiber length; fiber optic gyroscope; holding parameter; laser linewidth; laser phase noise; polarization coupling; polarization coupling error; polarization-dependent loss; push-pull modulation; residual drift; sensing coil; size 150 m; Coils; Couplings; Fiber lasers; Laser noise; Modulation; Optical fiber polarization; Fiber optic gyroscope; Sagnac interferometer; laser phase noise; optical polarization; polarization nonreciprocity error;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2015.2416155
Filename
7081747
Link To Document