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Micromachined Vibrating Ring Gyroscope Architecture with High-Linearity, Low Quadrature Error and Improved Mode Ordering

机译:微机械振动环陀螺仪架构,具有高线性,低正交误差和改进的模式排序

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摘要

A new micromachined vibrating ring gyroscope (VRG) architecture with low quadrature error and high-linearity is proposed, which successfully optimizes the working modes to first order resonance mode of the structure. The improved mode ordering can significantly reduce the vibration sensitivity of the device by adopting the hinge-frame mechanism. The frequency difference ratio is introduced to represent the optimization effect of modal characteristic. Furthermore, the influence of the structural parameters of hinge-frame mechanism on frequency difference ratio is clarified through analysis of related factors, which contributes to a more effective design of hinge-frame structure. The designed VRG architecture accomplishes the goal of high-linearity by using combination hinge and variable-area capacitance strategy, in contrast to the conventional approach via variable-separation drive/sense strategy. Finally, finite element method (FEM) simulations are carried out to investigate the stiffness, modal analysis, linearity, and decoupling characteristics of the design. The simulation results are sufficiently in agreement with theoretical calculations. Meanwhile, the hinge-frame mechanism can be widely applied in other existing ring gyroscopes, and the new design provides a path towards ultra-high performance for VRG.
机译:提出了一种具有低正交误差和高线性度的新的微机械振动环陀螺仪(VRG)架构,其成功优化了结构的第一阶谐振模式的工作模式。通过采用铰链框机构,改进的模式排序可以显着降低装置的振动灵敏度。介绍频率差比以表示模态特性的优化效果。此外,通过分析相关因素,阐明了铰链框架机制对频率差比的影响,这有助于更有效地设计铰链框架结构。设计的VRG架构通过使用组合铰链和可变区域电容策略来实现高线性度的目标,与通过可变分离驱动/感测策略相比传统方法。最后,进行了有限元方法(FEM)模拟,以研究设计的刚度,模态分析,线性度和去耦特性。仿真结果与理论计算一致地充分。同时,铰链框架机构可以广泛应用于其他现有的环形陀螺仪,并且新设计为VRG提供了朝向超高性能的路径。

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