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Electrokinetic transport through rough microchannels

机译:通过粗糙的微通道的电动传输

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Surface roughness is present in most microfluidic devices as a result of the microfabrication techniques or particle adhesion. It is highly desirable to understand the roughness effect on microscale transport processes. In this study, we developed a 3-D, finite-volume-based numerical model to simulate electroosmotic transport in microchannels with rectangular prism rough elements on the surfaces. Various configurations of roughness were investigated, and the results show different degrees of an even-out effect on liquid transport due to the roughness-induced local pressure field and the variation of the electroosmotic slip boundary velocities. 3D-sample transport through rough microchannels was analyzed. The results demonstrate that the sample's transport under the electrical field is much faster in the pathway between the rough elements; the concentration field in the height and width direction is not uniform. The influence of the electrokinetic properties on liquid flow and sample transport was studied. It was found that the increase of the electroosmotic mobility or the decrease of the electrophoretic mobility can dramatically enhance the uniformity of the concentration field. [References: 33]
机译:由于微加工技术或颗粒粘附,大多数微流体装置中存在表面粗糙度。非常需要了解粗糙度对微尺度传输过程的影响。在这项研究中,我们开发了一个基于有限体积的3-D数值模型,以模拟在表面带有矩形棱柱形粗糙元素的微通道中的电渗输运。研究了各种粗糙度构造,结果表明,由于粗糙度引起的局部压力场和电渗滑移边界速度的变化,对液体输送的影响程度不同。分析了通过粗糙微通道的3D样品传输。结果表明,在电场作用下,样品在粗糙元素之间的路径中的传输要快得多。高度和宽度方向上的浓度场不均匀。研究了电动特性对液体流动和样品传输的影响。已经发现,电渗迁移率的增加或电泳迁移率的降低可以显着增强浓度场的均匀性。 [参考:33]

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