Shen Xiang, Zhao Liye, Xia Dunzhu
Key Laboratory of Micro-Inertial Instrument and Advanced Navigation Technology, Ministry of Education, School of Instrument Science and Engineering, Southeast University, Nanjing 210096, China.
Micromachines (Basel). 2019 Apr 19;10(4):264. doi: 10.3390/mi10040264.
A micro optoelectromechanical system (MOEMS) resonator gyroscope based on a waveguide micro-ring resonator was proposed. This sensor was operated by measuring the shift of the transmission spectrum. Modal analysis was carried out for the disc sensitive structure of the MOEMS resonator gyroscope (MOEMS-RG). We deduced the equations between the equivalent stiffness and voltage of each tuning electrode and the modal parameters. A comprehensive investigation of the influences of the structure parameters on the sensitivity noise of the MOEMS-RG is presented in this paper. The mechanical sensitivity and transducer sensitivities of the MOEMS-RG, with varying structural parameters, are calculated based on the finite-element method. Frequency response test and the fiber optic spectrometer displacement test were implemented to verify the reliability of the model. Research results indicate that the resonant frequencies of the operating modes are tested to be 5768.407 Hz and 5771.116 Hz and the resonant wavelength change ΔX was 0.08 nm for 45° rotation angle. The resonant wavelength, which has a good linear response in working range, changes from -0.071 nm to 0.080 μm. The MOEMS-RG, with an optimized disc sensitive structure, can detect the deformation of the sensitive membrane effectively, and has a high sensitivity. This resonator shows very large meff, low f 0 , and very high Q. Therefore, this resonator can provide a small A R W B ( 0.09 ° / h ), which makes it a promising candidate for a low-cost, batch-fabricated, small size inertial-grade MOEMS gyroscope. The multi-objective optimization method could be expanded to include other objectives, constraints, or variables relevant to all kinds of gyroscopes or other microelectromechanical systems devices.
提出了一种基于波导微环谐振器的微光机电系统(MOEMS)谐振器陀螺仪。该传感器通过测量透射光谱的偏移来工作。对MOEMS谐振器陀螺仪(MOEMS-RG)的圆盘敏感结构进行了模态分析。我们推导了每个调谐电极的等效刚度与电压以及模态参数之间的方程。本文全面研究了结构参数对MOEMS-RG灵敏度噪声的影响。基于有限元方法计算了不同结构参数下MOEMS-RG的机械灵敏度和换能器灵敏度。进行了频率响应测试和光纤光谱仪位移测试以验证模型的可靠性。研究结果表明,工作模式的谐振频率经测试为5768.407 Hz和5771.116 Hz,对于45°旋转角度,谐振波长变化ΔX为0.08 nm。谐振波长在工作范围内具有良好的线性响应,从-0.071 nm变化到0.080μm。具有优化圆盘敏感结构的MOEMS-RG能够有效地检测敏感膜的变形,并且具有高灵敏度。该谐振器显示出非常大的有效质量、低的固有频率和非常高的品质因数。因此,该谐振器可以提供小的角速率随机游走(0.09°/h),这使其成为低成本、批量制造、小尺寸惯性级MOEMS陀螺仪的有前途的候选者。多目标优化方法可以扩展到包括与各种陀螺仪或其他微机电系统器件相关的其他目标、约束或变量。