Jaber Nizar, Ramini Abdallah, Younis Mohammad I
Physical Science and Engineering Division, King Abdullah University of Science and Technology, Thuwal 23955-6900, Saudi Arabia.
Department of Mechanical Engineering, State University of New York at Binghamton, Binghamton, NY 13902, USA.
Microsyst Nanoeng. 2016 Mar 14;2:16002. doi: 10.1038/micronano.2016.2. eCollection 2016.
Using partial electrodes and a multifrequency electrical source, we present a large-bandwidth, large-amplitude clamped-clamped microbeam resonator excited near the higher order modes of vibration. We analytically and experimentally investigate the nonlinear dynamics of the microbeam under a two-source harmonic excitation. The first-frequency source is swept around the first three modes of vibration, whereas the second source frequency remains fixed. New additive and subtractive resonances are demonstrated. We illustrated that by properly tuning the frequency and amplitude of the excitation force, the frequency bandwidth of the resonator is controlled. The microbeam is fabricated using polyimide as a structural layer coated with nickel from the top and chromium and gold layers from the bottom. Using the Galerkin method, a reduced order model is derived to simulate the static and dynamic response of the device. A good agreement between the theoretical and experimental data are reported.
我们使用部分电极和多频电源,展示了一种在高阶振动模式附近被激发的大带宽、大幅度的两端固定微梁谐振器。我们对双源谐波激励下微梁的非线性动力学进行了分析和实验研究。第一个频率源在前三阶振动模式附近扫描,而第二个源频率保持固定。展示了新的相加和相减共振。我们证明,通过适当地调整激励力的频率和幅度,可以控制谐振器的频率带宽。微梁采用聚酰亚胺作为结构层制造,顶部涂有镍,底部涂有铬和金层。使用伽辽金方法,推导了一个降阶模型来模拟器件的静态和动态响应。报告了理论数据与实验数据之间的良好一致性。