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Design of IPMC actuator-driven valve-less micropump and its flow rate estimation at low Reynolds numbers

机译:低雷诺数下IPMC执行器驱动的无阀微型泵的设计及其流量估算

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This paper presents the design and flow rate predictions of an IPMC (ionic polymer-metal composite) actuator-driven valve-less micropump. It should be noted that IPMC is a promising material candidate for micropump applications since it can be operated with low input voltages and can produce large stroke volumes, while having controllable flow rates. The micropump manufacturing process with IPMC is also convenient; it is anticipated that the manufacturing cost of the IPMC micropump is competitive with other technologies. In order to design an effective IPMC diaphragm that functions as an actuating motor for a micropump, a finite element analysis (FEA) was utilized to optimize the electrode shape of the IPMC diaphragm and estimate its stroke volumes. In addition, the effect of the pump chamber pressure on the stroke volume was numerically investigated. Appropriate inlet and outlet nozzle/diffuser elements were also studied for the valve-less micropump. Based on the selected geometry of nozzle/diffuser elements and the estimated stroke volume of the IPMC diaphragm, the flow rate of the micropump was estimated at a low Reynolds number of about 50.
机译:本文介绍了IPMC(离子聚合物-金属复合材料)执行器驱动的无阀微型泵的设计和流量预测。应当指出的是,IPMC是微型泵应用的有希望的材料候选者,因为它可以在低输入电压下工作,并可以产生大的冲程体积,同时具有可控制的流速。 IPMC的微型泵制造过程也很方便;可以预料,IP​​MC微型泵的制造成本可与其他技术相比。为了设计有效的IPMC膜片,该膜片用作微型泵的致动马达,利用有限元分析(FEA)来优化IPMC膜片的电极形状并估算其行程量。另外,还对泵室压力对冲程量的影响进行了数值研究。对于无阀微型泵,还研究了合适的入口和出口喷嘴/扩散器元件。基于选定的喷嘴/扩散器元件的几何形状以及IPMC膜片的估计冲程体积,可以在约50的低雷诺数下估算微型泵的流速。

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