Quadrature-Induced Noise in Coriolis Vibratory Gyroscopes

D. Vatanparvar, A. Shkel
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引用次数: 4

Abstract

In this paper, we present a model for noise performance estimation of Coriolis Vibratory Gyroscopes (CVG) in the presence of quadrature coupling. Analytical equations based on a low-order averaged model of a CVG were derived and used for numerical simulation of the Zero-Rate Output (ZRO) in the open-loop angular rate mode of operation. We demonstrated that as a result of the quadrature coupling and noise in the drive oscillation frequency, Quadrature Noise (QN) is introduced to the gyroscope output. For example, in the case of a Dual Foucault Pendulum (DFP) gyroscope with a frequency split on the order of 0.48 Hz, the QN was shown to have an experimentally measured Angle Random Walk (ARW) on the order of 0.39 $\left( {deg/\sqrt {hr} } \right)$, which was orders of magnitude higher than a theoretical ARW of 0.0024 $\left( {deg/\sqrt {hr} } \right)$ predicted by the Mechanical-Thermal Noise (MTN) model. This observed discrepancy was a motivation for the development of the model. A good agreement between the noise characteristics of the experimentally measured ZRO and a numerically simulated ZRO was observed, when accounting for the quadrature coupling. We concluded that the quadrature- induced noise is a major factor limiting the performance of high quality factor gyroscopes in nearly mode-matched conditions. This paper presents an analytical model for the noise estimation, which was supported experimentally.
科氏振动陀螺仪的正交噪声
在本文中,我们提出了在正交耦合存在下的科里奥利振动陀螺仪(CVG)的噪声性能估计模型。基于CVG的低阶平均模型推导了解析方程,并应用于开环角速率工作模式下的零速率输出(ZRO)的数值模拟。我们证明了由于驱动振荡频率中的正交耦合和噪声,在陀螺仪输出中引入了正交噪声(QN)。例如,在频率分裂为0.48 Hz的双福柯摆(DFP)陀螺仪的情况下,QN显示出实验测量的角度随机漫步(ARW)为0.39 $\left( {deg/\sqrt {hr} } \right)$,这比机械-热噪声(MTN)模型预测的理论ARW为0.0024 $\left( {deg/\sqrt {hr} } \right)$高出几个数量级。这种观察到的差异是模型发展的动力。在考虑正交耦合的情况下,实验测量的ZRO噪声特性与数值模拟的ZRO噪声特性非常吻合。我们得出结论,正交噪声是限制高质量因子陀螺仪在接近模式匹配条件下性能的主要因素。本文提出了一种噪声估计的解析模型,并得到了实验结果的支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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