Han Jianxin, Li Lei, Jin Gang, Feng Jingjing, Li Baizhou, Jia Haili, Ma Wenkui
Tianjin Key Laboratory of High Speed Cutting and Precision Machining, School of Mechanical Engineering, Tianjin University of Technology and Education, Tianjin 300222, China.
School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo 255049, China.
Micromachines (Basel). 2018 Aug 1;9(8):381. doi: 10.3390/mi9080381.
Natural frequency and frequency response are two important indicators for the performances of resonant microelectromechanical systems (MEMS) devices. This paper analytically and numerically investigates the vibration identification of the primary resonance of one type of folded-MEMS comb drive resonator. The governing equation of motion, considering structure and electrostatic nonlinearities, is firstly introduced. To overcome the shortcoming of frequency assumption in the literature, an improved theoretical solution procedure combined with the method of multiple scales and the homotopy concept is applied for primary resonance solutions in which frequency shift due to DC voltage is thoroughly considered. Through theoretical predictions and numerical results via the finite difference method and fourth-order Runge-Kutta simulation, we find that the primary frequency response actually includes low and high-energy branches when AC excitation is small enough. As AC excitation increases to a certain value, both branches intersect with each other. Then, based on the variation properties of frequency response branches, hardening and softening bending, and the ideal estimation of dynamic pull-in instability, a zoning diagram depicting extreme vibration amplitude versus DC voltage is then obtained that separates the dynamic response into five regions. Excellent agreements between the theoretical predictions and simulation results illustrate the effectiveness of the analyses.
固有频率和频率响应是谐振微机电系统(MEMS)器件性能的两个重要指标。本文通过解析和数值方法研究了一种折叠式MEMS梳齿驱动谐振器主共振的振动识别问题。首先介绍了考虑结构和静电非线性的运动控制方程。为克服文献中频率假设的缺点,将改进的理论求解方法与多尺度法和同伦概念相结合,用于主共振解,其中充分考虑了直流电压引起的频率偏移。通过有限差分法和四阶龙格 - 库塔模拟的理论预测和数值结果,我们发现当交流激励足够小时,主频率响应实际上包括低能和高能分支。随着交流激励增加到一定值,两个分支相互交叉。然后,基于频率响应分支的变化特性、硬化和软化弯曲以及动态拉入不稳定性的理想估计,得到了一个描绘极端振动幅度与直流电压关系的分区图,该图将动态响应分为五个区域。理论预测与模拟结果之间的良好一致性说明了分析的有效性。