晶圆级真空封装MEMS四重质量陀螺仪的模式分裂和开环检测

IF 2.2 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Shaolei Ge;Bo Jiang;Shenhu Huang;Yan Su
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引用次数: 0

摘要

本文提出了一种基于经典真空封装微机电系统(MEMS)四倍质量陀螺仪(QMG)结构的晶圆级真空封装四倍质量陀螺仪(QMG)。该设计结合了几项创新,以提高开环和模式分离操作模式的性能。本文提出的QMG采用变面积梳状电极来改善驱动静电非线性和传感非线性。在证明质量上使用正交电极,通过静电负刚度减小正交误差。晶圆级真空封装实现了106万的高驱动模式q因子,实现了4.7 mV的低交流驱动电压,从而有效地抑制了馈通干扰。使用多个传感梳和频率和阻尼调节器将传感模式q因子降低到11万,增强了对环境干扰的抵抗力。此外,大量的传感梳进一步提高了开环尺度因子。利用这些创新的设计,QMG在70 Hz的频率分裂下实现了0.54°/h的偏置不稳定性,0.55°/√h的角度随机行走,±300°/s的动态范围和37.8 Hz的理论带宽。这些特性表明,所提出的QMG在分频和开环模式下都具有令人满意的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Wafer-Level Vacuum-Packaged MEMS Quadruple Mass Gyroscope Operated in Mode-Split and Open-Loop Detection
This letter proposes a wafer-level vacuum-packaged micro - electro - mechanical systems (MEMS) quadruple mass gyroscope (QMG) based on the classical QMG architecture. The design incorporates several innovations to enhance performance in open-loop and mode-split operation modes. The proposed QMG employs variable-area comb electrodes to improve driving electrostatic nonlinearities and sensing nonlinearities. Quadrature errors are reduced through electrostatic negative stiffness using quadrature electrodes on proof masses. Wafer-level vacuum packaging achieves a high drive mode Q-factor of 1.06 million, enabling a low ac driving voltage of 4.7 mV, thereby effectively suppressing the feedthrough interference. The use of numerous sensing combs and a frequency and damping regulator reduces the sense mode Q-factor to 0.11 million, enhancing environmental interference resistance. In addition, the numerous sensing combs further enhance the open-loop scale factor. Leveraging these innovative designs, the QMG achieves a bias instability of 0.54°/h at a frequency split of 70 Hz, an angle random walkof 0.55°/√h, a dynamic range of ±300°/s, and a theoretical bandwidth of 37.8 Hz. These characteristics demonstrate that the proposed QMG achieves satisfactory performance in frequency-split and open-loop modes.
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来源期刊
IEEE Sensors Letters
IEEE Sensors Letters Engineering-Electrical and Electronic Engineering
CiteScore
3.50
自引率
7.10%
发文量
194
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