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A planar microfluidic mixer based on logarithmic spirals

机译:基于对数螺旋的平面微流混合器

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摘要

A passive, planar micromixer design based on logarithmic spirals is presented. The device was fabricated using polydimethylsiloxane soft photolithography techniques, and mixing performance was characterized via numerical simulation and fluorescent microscopy. Mixing efficiency initially declined as the Reynolds number increased, and this trend continued until a Reynolds number of 15 where a minimum was reached at 53%. Mixing efficiency then began to increase reaching a maximum mixing efficiency of 86% at Re = 67. Three-dimensional (3D) simulations of fluid mixing in this design were compared to other planar geometries such as the Archimedes spiral and Meandering-S mixers. The implementation of logarithmic curvature offers several unique advantages that enhance mixing, namely a variable cross-sectional area and a logarithmically varying radius of curvature that creates 3D Dean vortices. These flow phenomena were observed in simulations with multilayered fluid folding and validated with confocal microscopy. This design provides improved mixing performance over a broader range of Reynolds numbers than other reported planar mixers, all while avoiding external force fields, more complicated fabrication processes and the introduction of flow obstructions or cavities that may unintentionally affect sensitive or particulate-containing samples. Due to the planar design requiring only single-step lithographic features, this compact geometry could be easily implemented into existing micro-total analysis systems requiring effective rapid mixing.
机译:提出了一种基于对数螺旋的无源平面微混合器设计。使用聚二甲基硅氧烷软光刻技术制造该器件,并通过数值模拟和荧光显微镜表征混合性能。随着雷诺数的增加,混合效率最初下降,这种趋势一直持续到雷诺数为15时,最低值达到53%。然后,混合效率开始提高,在Re = 67时达到最大混合效率86%。将此设计中的流体混合的三维(3D)模拟与其他平面几何体(例如阿基米德螺旋和Meandering-S混合器)进行了比较。对数曲率的实现具有增强混合的几个独特优势,即可变的横截面面积和对数变化的曲率半径,可产生3D Dean涡旋。这些流动现象在多层流体折叠的模拟中观察到,并通过共聚焦显微镜进行了验证。与其他已报道的平面混合器相比,此设计在更大的雷诺数范围内提供了改进的混合性能,同时避免了外力场,更复杂的制造工艺以及可能会无意影响敏感或含微粒样品的流动障碍或空腔的引入。由于平面设计仅需要单步光刻特征,因此这种紧凑的几何形状可以轻松地实现到需要有效快速混合的现有微总量分析系统中。

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