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SIMULATION OF MEMS PIEZOELECTRIC MICROPUMP FOR BIOMEDICAL APPLICATIONS

机译:用于生物医学的MEMS压电微型泵的仿真

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摘要

In this study, we demonstrate the usefulness of Finite Element Analysis (FEA) and simulation techniques in the design of MEMS micropumps. Such pumps provide for the handling of milliliter-scaled fluid volumes desired in many lab-on-a-chip chemical and biomedical applications. This work is focused on a micropump driven by the piezoelectric effect, which in turn invokes the dominant resonance behavior. Because the design of the device is the emphasis of this study, the model was originated in CAD and includes the fine-scale geometric details commonly encountered in a wide variety of micropumps. The model considered in this study is a rectangular micropump with a piezoelectrically actuated diaphragm on its top and two valves on its bottom. The mechanical efficiency of the pump hinges on using resonance to generate sufficient motion of the diaphragm. Mechanical Event Simulation (MES) commercial software from ALGOR was utilized to simulate this motion, and thus provide a method for optimizing the design. The results show that consideration needs to be given to the voltage-driving frequency because of its effect on the pump performance and the stress levels within it.
机译:在这项研究中,我们证明了有限元分析(FEA)和仿真技术在MEMS微泵设计中的有用性。这样的泵提供了许多芯片实验室化学和生物医学应用中所需的毫升级流体体积的处理。这项工作集中在由压电效应驱动的微型泵上,该微型泵又调用了主要的共振行为。由于设备的设计是这项研究的重点,因此该模型起源于CAD,并且包含了各种微型泵中常见的精细几何细节。本研究中考虑的模型是一个矩形微型泵,其顶部有一个压电致动膜片,底部有两个阀。泵的机械效率取决于利用共振来产生隔膜的足够运动。利用ALGOR的Mechanical Event Simulation(MES)商业软件来模拟此运动,从而提供了一种优化设计的方法。结果表明,由于电压驱动频率会影响泵的性能和其中的应力水平,因此需要考虑电压驱动的频率。

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