基于CFD建模的生物分析系统中可集成的微流控随机混合器的设计、实现和验证

E. Tóth, K. Iván, P. Fürjes, Z. Fekete, E. Holczer
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引用次数: 1

摘要

在这项工作中,我们提出了特殊的微流控结构的设计方面,适用于稀释和运输分析溶液(如全血)到生物传感器的传感领域。我们的目标是设计和实现一种可靠的微流体系统,该系统适用于有效的样品输送,并可以完成简单的样品制备功能,如混合,以确保物种沿流体通道的浓度分布均匀。通过数值模拟和实验分析了不同混沌混合器的性能,以确定其效率。首先,我们使用浓度分布方法,但由于数值扩散,这需要更高的网格分辨率。实验结果表明,采用粒子跟踪法计算效率更高,计算量更少。通过在聚二甲基硅氧烷(PDMS)中进行微加工实现了微结构,并将其集成到一个真正的微流控传输系统中。用生物分析物验证了其功能性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design, realisation and validation of microfluidic stochastic mixers integrable in bioanalytical systems using CFD modeling
In this work we present the design aspects of special microfluidic structures applicable to dilute and transport analyte solutions (such as whole blood) to the sensing area of biosensors. Our goal is to design and realise a reliable microfluidic system which is applicable for effective sample transport and can accomplish simple sample preparation functions such as mixing to ensure homogeneous concentration distribution of the species along the fluidic channel. The behaviour of different chaotic mixers were analysed by numerical modeling and experimentally to determine their efficiency. At first we used the concentration distribution method, however because of numerical diffusion this required higher mesh resolutions. Using the particle tracing method is more efficient according to the experimental results and requires lower computational effort. The microstructures were realised by micro-fabrication in polydimethylsiloxane (PDMS) and integrated into a real microfluidic transport system. The functional performance was verified by biological analyte.
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