Rayleigh-OFDR Strain Distribution Measurement of a Self-Standing Fiber-Gyroscope Coil

H. Boiron, J. Pillon, E. Peter, E. Marin, M. Collignon, A. Morana, S. Girard, H. Lefèvre
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引用次数: 2

Abstract

We used Rayleigh-Optical Frequency Domain Reflectometry (Rayleigh-OFDR or R-OFDR) technique to improve our understanding of the longitudinal strain distribution along the optical fiber of a quadrupolar sensing coil of a fiber-optic gyroscope (FOG). To characterize this strain distribution remains crucial to better control the thermal impact on bias performance of the gyroscope. We analyzed this effect for a 400 m-long fiber coil, exposed to a ramp of temperature between 0°C and 80°C. R-OFDR method appears as a very promising candidate to reveal the complex thermo-mechanical behavior of the fiber sensing coil, offering a distributed view of classically integrated quantities, such as proper frequency or scale factor, and an access to the longitudinal elastic strain of the fiber, that is a source of bias defects in FOG measurement.
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自立式光纤陀螺线圈的瑞利- ofdr应变分布测量
我们使用瑞利-光频域反射(Rayleigh-OFDR或R-OFDR)技术来提高我们对光纤陀螺仪(FOG)四极传感线圈沿光纤纵向应变分布的理解。为了更好地控制热对陀螺仪偏置性能的影响,对这种应变分布进行表征至关重要。我们分析了400米长的光纤线圈的这种影响,暴露在0°C到80°C之间的温度梯度中。R-OFDR方法是揭示光纤传感线圈复杂的热机械行为的一个非常有前途的候选方法,它提供了经典积分量的分布视图,例如适当的频率或比例因子,以及光纤纵向弹性应变的访问,这是光纤测量中偏压缺陷的来源。
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