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谐振式光纤陀螺仪性能提升面临的挑战与机遇

The Challenges and Opportunities for Performance Enhancement in Resonant Fiber Optic Gyroscopes.

作者信息

Mahudapathi Sumathi, R Sumukh Nandan, R Gowrishankar, Srinivasan Balaji

机构信息

Avionics Division, Department of AFCS, Hindustan Aeronautics Ltd., Hyderabad 500042, India.

Department of Electrical Engineering, Indian Institute of Technology Madras, Chennai 600036, India.

出版信息

Sensors (Basel). 2025 Jan 3;25(1):223. doi: 10.3390/s25010223.

Abstract

In the last decade, substantial progress has been made to improve the performance of optical gyroscopes for inertial navigation applications in terms of critical parameters such as bias stability, scale factor stability, and angular random walk (ARW). Specifically, resonant fiber optic gyroscopes (RFOGs) have emerged as a viable alternative to widely popular interferometric fiber optic gyroscopes (IFOGs). In a conventional RFOG, a single-wavelength laser source is used to generate counter-propagating waves in a ring resonator, for which the phase difference is measured in terms of the resonant frequency shift to obtain the rotation rate. However, the primary limitation of RFOG performance is the bias drift, which can be attributed to nonreciprocal effects such as Rayleigh backscattering, back-reflections, polarization instabilities, Kerr nonlinearity, and environmental fluctuations. In this paper, we review the challenges and opportunities of achieving performance enhancement in RFOGs.

摘要

在过去十年中,在诸如偏置稳定性、比例因子稳定性和角随机游走(ARW)等关键参数方面,提高用于惯性导航应用的光学陀螺仪性能已取得了重大进展。具体而言,谐振光纤陀螺仪(RFOG)已成为广受欢迎的干涉式光纤陀螺仪(IFOG)的可行替代方案。在传统的RFOG中,使用单波长激光源在环形谐振器中产生反向传播的波,其相位差通过谐振频率偏移来测量以获得旋转速率。然而,RFOG性能的主要限制是偏置漂移,这可归因于诸如瑞利背散射、背反射、偏振不稳定性、克尔非线性和环境波动等非互易效应。在本文中,我们回顾了在RFOG中实现性能提升的挑战和机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b25/11723146/a7282e209de4/sensors-25-00223-g001.jpg

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