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Enhancing the closed-loop stability of a high-Q polysilicon micro-hemispherical resonating gyroscope

机译:提高高Q多晶硅微半球谐振陀螺仪的闭环稳定性

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This paper presents an enhanced stability strategy for the sense mode of a force-rebalanced closed-loop polysilicon micro-hemispherical resonating gyroscope (μHRG) with a high- Q quality-factor value (15.2k). The sense mode closed-loop control including the Coriolis force and quadrature error force rebalanced loop, respectively. Specific demodulation theoretical deductions with mode-split are performed to identify a precise linear model of the sense mode open loop. The frequency responses obtained by experimental tests show good agreement with the theoretical model. The experimental results demonstrate that a bandwidth of 10 Hz and a 0.51 Hz frequency-splitting closed loop gyroscope can be extended to 86 Hz and 3.3 Hz, from 6 Hz and 0.13 Hz in the open loop. The mode-matching (0.51 Hz frequency-splitting) gyroscope with closed loop control can achieve a scale factor of 2.25 mV/°/s with a nonlinearity of 0.087%, and a bias instability of 21.8°/hr with an angle random walk of 3.1°/√hr.
机译:本文介绍了具有高Q质量因子值(15.2K)的力重新平衡闭环多晶硅微半球谐振陀螺仪(μHRG)的稳定性稳定性策略。感测模式闭环控制,包括科里奥利力和正交误差力重新平衡环。执行具有模式分割的特定解调理论扣除,以识别读取模式开环的精确线性模型。通过实验测试获得的频率响应与理论模型显示出良好的一致性。实验结果表明,10Hz的带宽和0.51Hz频率分裂闭环陀螺仪可以延伸至86Hz和3.3Hz,从6Hz和0.13Hz中的开环中。具有闭环控制的模式匹配(0.51Hz频率分裂)陀螺仪可以达到2.25mV /°的比例因子,非线性为0.087%,偏置不稳定性为21.8°/ hr,角度随意步行3.1°/√hr。

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