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Failure of MEMS Microphones During Impact Tests: the Role of Anchor Imposed Motion

机译:MEMS麦克风在冲击试验期间失败:锚固运动的作用

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The causes of possible failures of MEMS microphones during guided free fall tests are investigated through top-down, multiscale finite element numerical simulations. Focusing at the micro-scale, the role of the travelling stress waves in the solid, transferred as relative displacement imposed motion histories at the microphone anchors, is clarified. The system including the thin silicon membrane (i.e. the microphone), a holed backplate and the substrate is modelled and studied by including the (different) motions at every support combined with the air over-pressure on the membrane, as captured by fluid dynamics analyses at the higher scale. We show that several failure mechanisms can alternatively occur, involving the membrane or (more likely) the backplate, depending on the phase balance between the two loading history signals. The numerical results help to get insight into the experimental behaviour during guided free fall tests, which instead would appear random and evidence only a rupture/not rupture output.
机译:通过自上而下的多尺度有限元数值模拟来研究在引导自由落体测试期间MEMS麦克风可能失败的原因。阐明了微尺寸的微尺度,阐明了作为相对位移的相对位移施加的运动历史在麦克风锚固件中的行进应力波的作用。包括薄硅膜(即麦克风),孔背板和基板的系统通过包括在所述膜上的空气过压结合的每个支撑件中的(不同)的运动来建模和研究,如流体动力学分析所捕获的以较高的规模。我们表明,取决于两个加载历史信号之间的相位平衡,替代地发生几种故障机制,涉及膜或(更可能)的背板。数值结果有助于在引导自由落体试验期间获得对实验行为的洞察,而是显得随机和证据只有破裂/不破裂输出。

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