首页> 外文会议>2012 20th Iranian conference on electrical engineering >A new miniaturized traveling-wave electro-osmotic micro-pump by low velocity of fluid for lab-on-a-chip application
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A new miniaturized traveling-wave electro-osmotic micro-pump by low velocity of fluid for lab-on-a-chip application

机译:低速流体的新型微型行波电渗微泵用于芯片实验室

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Low Reynolds number of fluids is one of the main challenges by lab-on-a-chip and “micro total analyzers”. Any miniaturization of fluid channels and used microfluidics components in such systems intensified the phenomena. This paper presents a modified fabrication process to produce an “electrokinetic micropumps” with minimized channel geometry. Application of this type of micropumps is suitable by very low Reynolds number. The proposed device is a 4-phase travelling wave AC-electroosmotic micropump, which is fabricated by surface micromachining technique. Due to fabrication process, a thin silicon nitride layer covers the electrodes. The pumping performance is investigated by presence of this thin insulator layer. The result of this study reveals that the pump operates, if the electric conductivity of fluid buffer is low. Additional advantage of the insulator layer over electrodes is the preventing of high electric field on electrode edges and consequently undesired electrolyses of fluid. The fabrication process flow and results of finite element analysis is presented. The maximum flow rate of 2.39 mm/s is achieved at the frequency of 10KHz.
机译:雷诺数低是芯片实验室和“微型总分析仪”面临的主要挑战之一。在这样的系统中,流体通道和使用过的微流体组件的任何小型化都会加剧这种现象。本文提出了一种改进的制造工艺,以生产具有最小化通道几何形状的“电动微泵”。这种类型的微型泵适用于雷诺数非常低的情况。所提出的装置是一种四相行波交流电渗微泵,它是通过表面微加工技术制造的。由于制造工艺,薄的氮化硅层覆盖电极。通过存在该薄绝缘体层来研究泵送性能。这项研究的结果表明,如果流体缓冲液的电导率较低,则泵将运行。电极上的绝缘层的另一个优点是可以防止电极边缘上的高电场,从而防止不希望的流体电解。介绍了制造工艺流程和有限元分析结果。在10KHz的频率下,最大流量为2.39 mm / s。

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