Bazaz Sajad Razavi, Mehrizi Ali Abouei, Ghorbani Sadegh, Vasilescu Steven, Asadnia Mohsen, Warkiani Majid Ebrahimi
School of Biomedical Engineering, University of Technology Sydney New South Wales 2007 Australia
Biomedical Engineering Division, Department of Life Science Engineering, Faculty of New Sciences and Technologies, University of Tehran Tehran Iran
RSC Adv. 2018 Sep 25;8(58):33103-33120. doi: 10.1039/c8ra05763j. eCollection 2018 Sep 24.
The application of microfluidic systems in chemical and biological assays has progressed dramatically in recent years. One of the fundamental operations that microfluidic devices must achieve is a high mixing index. Of particular importance is the role of planar mixing units with repetitive obstacles (MURO) in the formation of micromixers. To date, a myriad of planar passive micromixers has been proposed. However, a strategy for the combination of these units to find an efficient planar mixer has not been investigated. As such, five different MURO have been selected to form a "hybrid micromixer," and their combination was evaluated numerical and experimental methods. These mixing units include ellipse-like, Tesla, nozzle and pillar, teardrop, and obstruction in a curved mixing unit. Since these units have distinctive dimensions, dynamic and geometric similarities were used to scale and connect them. Afterwards, six slots were designated to house each mixing unit. Since the evaluation of all possible unit configurations is not feasible, the design of experiment method is applied to reduce the total number of experiments from 15 625 to 25. Following this procedure, the "hybrid" micromixer proposed here, comprising Tesla, nozzle and pillar, and obstruction units, shows improved performance for a wide range of Re (, mixing index of >90% for Re 0.001-0.1, 22-45) over existing designs. The use of velocity profiles, concentration diagrams, vorticity and circulation plots assist in the analysis of each unit. Comparison of the proposed "hybrid" micromixer with other obstacle-based planar micromixers demonstrates improved performance, indicating the combination of planar mixing units is a useful strategy for building high-performance micromixers.
近年来,微流控系统在化学和生物分析中的应用取得了显著进展。微流控设备必须实现的一项基本操作是高混合指数。具有重复障碍物的平面混合单元(MURO)在微混合器的形成中所起的作用尤为重要。迄今为止,已经提出了无数种平面无源微混合器。然而,尚未研究将这些单元组合以找到高效平面混合器的策略。因此,选择了五种不同的MURO来形成一个“混合微混合器”,并通过数值和实验方法对它们的组合进行了评估。这些混合单元包括椭圆形、特斯拉型、喷嘴和柱状、泪滴形以及弯曲混合单元中的障碍物。由于这些单元具有不同的尺寸,因此利用动态和几何相似性对它们进行缩放和连接。之后,指定了六个狭槽来容纳每个混合单元。由于评估所有可能的单元配置是不可行的,因此应用实验设计方法将实验总数从15625减少到25。按照这个程序,这里提出的“混合”微混合器,包括特斯拉型、喷嘴和柱状以及障碍物单元,在很宽的雷诺数范围内(雷诺数为0.001 - 0.1时混合指数>90%,雷诺数为22 - 45)比现有设计表现出更好的性能。利用速度剖面、浓度图、涡度和环流图有助于对每个单元进行分析。将所提出的“混合”微混合器与其他基于障碍物的平面微混合器进行比较,结果表明其性能有所提高,这表明平面混合单元的组合是构建高性能微混合器的一种有用策略。