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Angular velocity measurement system based on optical frequency comb

机译:基于光学频率梳的角速度测量系统

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The optical frequency comb (OFC) is an emerging laser light source, which has laid the foundation for high resolution,high sensitivity, wide bandwidth and fast measurement. Angular velocity measurement as an important direction in thefield of measurement has been paid attention. Nowadays, fibre optic gyroscope (FOG) is usually used to measure angularvelocity. The Sagnac effect is the theoretical basis of FOG. Therefore, it is especially important to verify whether the FOGhas Sagnac effect. Through theoretical derivation, when the FOG is used as a light source in combination with Sagnacinterferometer and the Sagnac interferometer rotates at different angular velocities, the trigonometric function reflects themutual transformation of the intensity of the light emitted by the interferometer and angular velocities, and the correspondsnonlinear relationship. This proves that FOG has Sagnac effect. When repetition frequency of FOG is locked ,this systemcan be used to measure angular velocity. In the experiment, we use 1km single-mode fiber as the rotating part of Sagnacinterferometer, and measure the light intensity value at 20 different angular velocities. Measuring 10 times at each angularvelocity for the mean value, which are used to fit the trigonometric function curve. The results show that the correlationcoefficient of the fitting curve is greater than 0.99, and standard deviations of the measurement points are less than 0.06V.The corresponding angle error values at different angular velocities are converted into the distance errors, which are lessthan 0.032um.
机译:光学频率梳(OFC)是一种新兴的激光光源,它为高分辨率奠定了基础,高灵敏度,带宽宽和快速测量。角速度测量作为重要方向测量领域得到了关注。如今,光纤陀螺仪(雾)通常用于测量角度速度。 SAGNAC效应是雾的理论基础。因此,验证雾是否尤为重要有震动效应。通过理论推导,当雾用作与Sagnac结合的光源时干涉仪和锯齿状干涉仪在不同的角速度下旋转,三角函数反映了干涉仪和角速度发射的光强度的互动,以及对应非线性关系。这证明了雾有震动效应。当雾的重复频率被锁定时,这个系统可用于测量角速度。在实验中,我们使用1km单模光纤作为Sagnac的旋转部分干涉仪,并测量20不同角速度的光强度值。在每个角度测量10次用于拟合三角函数曲线的平均值的速度。结果表明相关性拟合曲线的系数大于0.99,测量点的标准偏差小于0.06V。不同角速度下的相应角度误差值被转换为距离误差,这较少超过0.032um。

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