Wang Ze, Ren Jianting
School of Mechanics, Civil Engineering and Architecture, Northwestern Polytechnical University, Xi'an 710129, China.
Sensors (Basel). 2019 Apr 20;19(8):1888. doi: 10.3390/s19081888.
We present an investigation of the nonlinear dynamics of a microelectromechanical system (MEMS) arch subjected to a combination of AC and DC loadings in the presence of three-to-one internal resonance. The axial force resulting from the residual stress or temperature variation is considered in the governing equation of motion. The method of multiple scales is used to solve the governing equation. A four first-order ordinary differential equation describing the modulation of the amplitudes and phase angles is obtained. The equilibrium solution and its stability of the modulation equations are determined. Moreover, we also obtain the reduced-order model (ROM) of the MEMS arch employing the Galerkin scheme. The dynamic response is presented in the form of time traces, Fourier spectrum, phase-plane portrait, and Poincare sections. The results show that when there is an internal resonance, the energy transfer occurs between the first and third modes. In addition, the response of the MEMS arch presents abundant dynamic behaviors, such as Hopf bifurcation and quasiperiodic motions.
我们对一个微机电系统(MEMS)拱在三对一内共振情况下,受到交流和直流载荷联合作用时的非线性动力学进行了研究。在运动控制方程中考虑了由残余应力或温度变化产生的轴向力。采用多尺度法求解控制方程。得到了一个描述振幅和相位角调制的四阶一阶常微分方程。确定了调制方程的平衡解及其稳定性。此外,我们还采用伽辽金格式得到了MEMS拱的降阶模型(ROM)。动态响应以时间历程、傅里叶频谱、相平面轨迹和庞加莱截面的形式呈现。结果表明,当存在内共振时,能量在第一和第三模态之间发生转移。此外,MEMS拱的响应呈现出丰富的动力学行为,如霍普夫分岔和准周期运动。