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A Hybrid Experimental/Numerical Investigation of the Response of Multilayered MEMS Devices to Dynamic Loading

机译:多层MEMS器件对动态载荷响应的混合实验/数值研究

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摘要

In order to probe the mechanical response of microelectromechanical systems (MEMS) subjected to dynamic loading, a modified split Hopkinson pressure bar was used to load MEMS devices at accelerations ranging from 10(3)-10(5) g. Multilayer beams consisting of a PZT film sandwiched between two metal electrodes atop an elastic layer of silicon dioxide were studied because of their relevance to active MEMS devices. Experiments were conducted using the modified split Hopkinson pressure bar to quantify the effects of dynamic loading amplitude, duration, and temporal profile on the failure of the multilayered cantilever beams. Companion finite element simulations of these beams, informed by experimental measurements, were conducted to shed light into the deformation of the multilayered beams. Results of the numerical simulations were then coupled with independent experimental measurements of failure stress in order to predict the material layer at which failure initiation occurred, and the associated time to failure. High-speed imaging was also used to capture the first real-time images of MEMS structures responding to dynamic loading and successfully compare the recorded failure event with those predicted numerically.
机译:为了探究承受动态载荷的微机电系统(MEMS)的机械响应,使用改进的分叉式霍普金森压力棒以10(3)-10(5)g的加速度加载MEMS设备。研究了由PZT膜夹在二氧化硅弹性层顶部的两个金属电极之间的多层电子束,因为它们与有源MEMS器件相关。使用改进的霍普金森分裂压力棒进行实验,以量化动态载荷振幅,持续时间和时间剖面对多层悬臂梁破坏的影响。通过实验测量,对这些梁进行了伴生气有限元模拟,以阐明多层梁的变形情况。然后,将数值模拟的结果与故障应力的独立实验测量值相结合,以便预测发生故障起始的材料层以及相关的故障时间。高速成像还用于捕获动态结构响应的MEMS结构的第一张实时图像,并成功地将记录的故障事件与数字预测的故障事件进行比较。

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