首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Biofluid pumping and mixing by an AC electrothermal micropump embedded with a spiral microelectrode pair in a cylindrical microchannel
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Biofluid pumping and mixing by an AC electrothermal micropump embedded with a spiral microelectrode pair in a cylindrical microchannel

机译:通过圆柱形微型通道中嵌入螺旋微电极对的AC电热微泵的生物流体泵送和混合

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In this paper, we numerically investigated a multifunctional AC electrothermal (ACET) micropump embedded with an asymmetric spiral microelectrode pair in a cylindrical microchannel for simultaneous pumping and mixing in high-conductivity fluids, which makes the pump useful for biofluid applications. When an AC signal was applied to the asymmetric spiral electrode pair, the vortices induced on the electrode surfaces with centerlines along the corresponding spiral electrode length exhibit a spiral distribution, and the net flow in the cylindrical microchannel is generated by the ACET effect. The vorticity field distribution can explain the mechanism of simultaneous pumping and mixing. Because the vorticity field is inclined against the microchannel direction, vortices on top of the spiral electrodes can affect the ACET flow in the following two aspects at the same time: one is pumping the flow in the microchannel direction, and the other is mixing the samples by stirring the flow. We also determined that the geometric ratios of the electrode width to the gap or slant angle of the spiral electrodes can feasibly be used to control the relative strength of the pumping and mixing capabilities, and we achieved an optimal design that gives both desirable pumping and mixing efficiencies. This study shows that the spiral ACET micropump design can rapidly drive the high-conductivity fluids and efficiently mix samples simultaneously. The numerical simulation of the spiral ACET micropump is of significant importance for practical, chemical and biological applications, and feasible fabrication techiniques should be experimentally investigated in future studies.
机译:在本文中,我们数值研究嵌入有用于同时泵送的圆柱形微通道的非对称螺旋微电极对和混合在高导电性的流体,这使得泵生物流体应用中是有用的多官能AC电热(ACET)微型泵。当AC信号施用到所述非对称螺旋电极对,感应电极上的旋涡表面沿着相应的螺旋电极长度表现出中心线的螺旋形分布,并且由ACET效应产生在圆柱形微通道的净流量。涡度场分布可以解释同时泵送和混合的机构。由于涡场倾斜抵靠微通道的方向,在涡卷状电极体顶部涡流可以在同一时间影响在以下两个方面ACET流:一种是泵送在微通道方向上的流动,而另一个混合样品通过搅拌流动。我们还确定,电极宽度的间隙或螺旋电极的倾斜角的几何比可以可行地用于控制的泵送和混合能力的相对强度,并且我们实现了最佳的设计,让可取泵送和混合效率。这项研究表明,在螺旋ACET微型泵的设计可以迅速地驱动所述高导电性的流体和有效地同时混合样品。螺旋ACET微型泵的数值模拟是显著重要性实用,化学和生物应用,以及可行的制造techiniques应在未来的研究实验研究。

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