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Reduced Order Component & System Level Modelling for Fluid-Solid Interactions in Complex MEMS Devices

机译:减少订单成分复杂MEMS器件中流体-固相相互作用的系统级建模

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The time-efficient and accurate implementation of physics-based fluidic damping effects is still one of the biggest challenges in the simulation of complex MEMS devices. Two modelling approaches utilizing the CRAIG/BAMPTON component mode synthesis method are discussed and compared in context of a highly automated model generation procedure. The first approach uses a modal projection technique with pressure profiles obtained from REYNOLDS flow simulations using the thermal-fluidic analogy. The second approach is based on the representation of the fluidic domain in form of a generalized KIRCHHOFFian lumped flow resistance network model. Both methods are generally suited for the simulation of structures like gyroscopes or accelerometers, but show different behaviors in terms of scaling and complexity during the model generation step and in the final ROM. The methods are demonstrated on examples and are compared to optical measurements of an out-of-plane teeter-totter type accelerometer.
机译:在复杂的MEMS器件仿真中,基于物理的流体阻尼效应的高效且准确的实现仍然是最大的挑战之一。在高度自动化的模型生成过程的背景下,讨论并比较了两种使用CRAIG / BAMPTON组件模式合成方法的建模方法。第一种方法使用模态投影技术,该模态投影技术具有使用热流体类比从REYNOLDS流动模拟中获得的压力分布。第二种方法基于以广义KIRCHHOFFian集总流阻网络模型形式表示的流体域。两种方法通常都适合于模拟陀螺仪或加速度计之类的结构,但是在模型生成步骤和最终ROM中,在缩放和复杂性方面表现出不同的行为。该方法在示例中进行了演示,并与平面跷跷板式加速度计的光学测量结果进行了比较。

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