Kim Dong Sung, Lee Se Hwan, Kwon Tai Hun, Ahn Chong H
Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), San 31 Hyoja-dong Nam-gu, Pohang, Kyungbuk 790-784, Korea.
Lab Chip. 2005 Jul;5(7):739-47. doi: 10.1039/b418314b. Epub 2005 Apr 26.
Mixing enhancement has drawn great attention from designers of micromixers, since the flow in a microchannel is usually characterized by a low Reynolds number (Re) which makes the mixing quite a difficult task to accomplish. In this paper, a novel integrated efficient micromixer named serpentine laminating micromixer (SLM) has been designed, simulated, fabricated and fully characterized. In the SLM, a high level of efficient mixing can be achieved by combining two general chaotic mixing mechanisms: splitting/recombination and chaotic advection. The splitting and recombination (in other terms, lamination) mechanism is obtained by the successive arrangement of "F"-shape mixing units in two layers. The advection is induced by the overall three-dimensional serpentine path of the microchannel. The SLM was realized by SU-8 photolithography, nickel electroplating, injection molding and thermal bonding. Mixing performance of the SLM was fully characterized numerically and experimentally. The numerical mixing simulations show that the advection acts favorably to realize the ideal vertical lamination of fluid flow. The mixing experiments based on an average mixing color intensity change of phenolphthalein show a high level of mixing performance was obtained with the SLM. Numerical and experimental results confirm that efficient mixing is successfully achieved from the SLM over the wide range of Re. Due to the simple and mass producible geometry of the efficient micromixer, SLM proposed in this study, the SLM can be easily applied to integrated microfluidic systems, such as micro-total-analysis-systems or lab-on-a-chip systems.
混合增强已引起微混合器设计者的极大关注,因为微通道中的流动通常具有低雷诺数(Re)的特征,这使得混合成为一项相当困难的任务。本文设计、模拟、制造并全面表征了一种新型的集成高效微混合器——蛇形层压微混合器(SLM)。在SLM中,通过结合两种常见的混沌混合机制:分裂/重组和混沌平流,可以实现高水平的高效混合。分裂和重组(换句话说,层压)机制是通过两层中“F”形混合单元的连续排列获得的。平流是由微通道的整体三维蛇形路径引起的。SLM通过SU-8光刻、镍电镀、注塑成型和热键合实现。对SLM的混合性能进行了数值和实验全面表征。数值混合模拟表明,平流有利于实现流体流动的理想垂直层压。基于酚酞平均混合颜色强度变化的混合实验表明,SLM具有高水平的混合性能。数值和实验结果证实,在很宽的Re范围内,SLM成功实现了高效混合。由于本研究中提出的高效微混合器SLM具有简单且可批量生产的几何形状,因此它可以很容易地应用于集成微流体系统,如微全分析系统或芯片实验室系统。