Symmetric piezoelectric CVG with digital control electronics

A. Challoner, Jeremy, D. Popp, J. Beitia
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引用次数: 4

Abstract

This paper presents the digital control of a symmetric, piezoelectrically-transduced Coriolis Vibratory Gyro (CVG) with improved performance and design for compact ASIC implementation in terrestrial and space environments. Previously a metallic PZT transduced cylindrical resonator with simple analog control electronics resulted in a successful low noise rate gyro produced by Innalabs [1, 2] for stabilization and targeting applications and satellite pointing. This work details key benefits of applying a very low noise digital control and demodulation approach that extends InertialWave's previous work on generalized feedback control of capacitive CVG's [3]. This has been demonstrated at breadboard level to further reduce rate noise toward the very low, 60 μdeg/rt-h mechanical thermal noise (MTN) inherent in its massive 23 mm, high quality resonator and points to a clear path for achieving navigation grade performance in a mass producible CVG and compact three-axis IRU or IMU assembly.
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对称压电CVG与数字控制电子
本文介绍了一种对称的、压电转导的科里奥利振动陀螺仪(CVG)的数字控制,该陀螺仪具有改进的性能和设计,可以在地面和空间环境中实现紧凑的ASIC。以前,金属PZT转导圆柱形谐振器与简单的模拟控制电子设备导致inalabs生产的一个成功的低噪声率陀螺仪[1,2],用于稳定和瞄准应用和卫星指向。这项工作详细介绍了应用极低噪声数字控制和解调方法的主要好处,该方法扩展了InertialWave之前在电容CVG的广义反馈控制方面的工作[3]。这已经在面包板水平上得到了证明,可以进一步降低率噪声,达到非常低的60 μ g/rt-h机械热噪声(MTN),这是其巨大的23毫米高质量谐振器固有的,并指出了在批量生产的CVG和紧凑型三轴IRU或IMU组件中实现导航级性能的明确途径。
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