Li Yan, Jin Biao, Zhao Mengyu, Yang Fuling
School of Mechanical Electronic & Information Engineering, China University of Mining and Technology-Beijing, Beijing 100083, China.
Micromachines (Basel). 2021 May 7;12(5):530. doi: 10.3390/mi12050530.
This study aims to develop methods to design and optimize the resonator in a resonant accelerometer based on mode and frequency analysis. First, according to the working principle of a resonant accelerometer, the resonator is divided into three parts: beam I, beam II, and beam III. Using Hamilton's principle, the undamped dynamic control equation and the ordinary differential dynamic equation of the resonant beam are obtained. Moreover, the structural parameters of the accelerometer are designed and optimized by using resonator mode and frequency analysis, then using finite element simulation to verify it. Finally, 1 g acceleration tumbling experiments are built to verify the feasibility of the proposed design and optimization method. The experimental results demonstrate that the proposed accelerometer has a sensitivity of 98 Hz/g, a resolution of 0.917 mg, and a bias stability of 1.323 mg/h. The research findings suggest that according to the resonator mode and frequency analysis, the values of the resonator structural parameters are determined so that the working mode of the resonator is far away from the interference mode and avoids resonance points effectively. The research results are expected to be beneficial for a practical resonant sensor design.
本研究旨在基于模态和频率分析开发用于设计和优化谐振式加速度计中谐振器的方法。首先,根据谐振式加速度计的工作原理,将谐振器分为三个部分:梁I、梁II和梁III。利用哈密顿原理,得到了谐振梁的无阻尼动态控制方程和常微分动态方程。此外,通过谐振器模态和频率分析对加速度计的结构参数进行设计和优化,然后利用有限元模拟进行验证。最后,进行了1g加速度翻滚实验,以验证所提出的设计和优化方法的可行性。实验结果表明,所提出的加速度计灵敏度为98Hz/g,分辨率为0.917mg,偏置稳定性为1.323mg/h。研究结果表明,根据谐振器模态和频率分析确定谐振器结构参数的值,使谐振器的工作模式远离干扰模式,有效避免共振点。研究结果有望对实际谐振传感器设计有益。