首页> 外文会议>International Mechanical Engineering Congress and Exposition 2007 >THEORETICAL INVESTIGATION OF ON-CHIP MULTI-SPECIES TRANSPORT IN MICRO-CHANNELS FOR ANALYSIS APPLICATIONS
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THEORETICAL INVESTIGATION OF ON-CHIP MULTI-SPECIES TRANSPORT IN MICRO-CHANNELS FOR ANALYSIS APPLICATIONS

机译:微通道中片上多物种运输的理论研究,用于分析应用

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A complete mathematical model is developed for application to simulate the unsteady two-step on-chip sample injection and separation processes in microfluidic devices. The origin and applicability of the slip-wall velocity boundary condition is discussed. Due to electrophoresis effect, migration influence of every species is considered in the model and then solved for separation analysis. The model is non-dimensionalized in a unique manner to reveal effects of some key fundamental parameters: the Reynolds-Schmidt number, electrophoretic mobility of sample species, applied potentials, etc. In particular, the influence of Re Sc_i is examined over the commonly encountered range and the effect of electrophoretic mobilities on separation is investigated for three different types of samples. Results include center-line concentration profiles as well as concentration contour plots over a range of non-dimensional time(less than 400). Resolution is defined and employed to evaluate the separation results. The magnitude of calculated separation resolution (around 2.0) is comparable to experimental results. Through parametric studies, the characteristics of both injection and separation are revealed numerically and well understood for future effective control and innovative chip design.
机译:开发了一个完整的数学模型,用于模拟微流控设备中不稳定的两步芯片上样品进样和分离过程。讨论了滑移速度边界条件的起源和适用性。由于电泳效应,模型中考虑了每种物质的迁移影响,然后求解以进行分离分析。该模型以独特的方式进行了无量纲化,以揭示一些关键基本参数的影响:雷诺-施密特数,样品物种的电泳迁移率,施加电势等。特别是,研究了Re Sc_i对常见情况的影响对于三种不同类型的样品,研究了电泳范围和电泳迁移率对分离的影响。结果包括在无量纲时间范围内(小于400)的中心线浓度分布图以及浓度等高线图。定义分辨率并用于评估分离结果。计算出的分离分辨率的大小(约2.0)可与实验结果相媲美。通过参数研究,数字化显示了进样和分离的特性,并为将来的有效控制和创新的芯片设计提供了很好的理解。

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