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Dynamics of a clamped-clamped microbeam resonator considering fabrication imperfections

机译:考虑制造缺陷的夹钳式微束谐振器的动力学

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We present an investigation into the static and dynamic behavior of an electrostatically actuated clamped-clamped polysilicon microbeam resonator accounting for its fabrication imperfections, which are commonly encountered in similar microstructures. These are mainly because of the initial deformation of the beam due to stress gradient and its flexible anchors. First, we show experimental data of the microbeam when driven electrically by varying the amplitude and frequency of the voltage loads. The results reveal several interesting nonlinear phenomena of jumps, hysteresis, and softening behaviors. Theoretical investigation is then conducted to model the microbeam, and hence, interpret the experimental data. We solve the Eigen value problem governing the natural frequencies analytically. We then utilize a Galerkin-based procedure to derive a reduced order model, which is then used to simulate both the static and dynamic responses. To achieve good matching between theory and experiment, we show that the exact profile of the deformed beam needs to be utilized in the reduced order model, as measured from the optical profiler, combined with a shooting technique simulation, which is capable of tracing the resonant frequency branches under very-low damping conditions.
机译:我们目前对静电致动的钳位夹持式多晶硅微束谐振器的静态和动态行为进行了研究,这说明了其制造缺陷,而这种缺陷在类似的微结构中通常会遇到。这些主要是由于梁由于应力梯度及其柔性锚杆而引起的初始变形。首先,我们通过改变电压负载的幅度和频率显示了电驱动微束的实验数据。结果揭示了一些有趣的非线性现象,即跳跃,滞后和软化行为。然后进行理论研究以对微束进行建模,从而解释实验数据。我们通过分析来解决控制固有频率的特征值问题。然后,我们利用基于Galerkin的过程来导出降阶模型,然后将其用于模拟静态和动态响应。为了在理论和实验之间达到良好的匹配,我们表明变形光束的精确轮廓需要在降阶模型中使用,该模型是从光学轮廓仪测量的,并结合了能够追踪共振的射击技术模拟频率在非常低的阻尼条件下分支。

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