Yuan Shuai, Jiang Bingyan, Peng Tao, Li Qiang, Zhou Mingyong
College of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China.
State Key Laboratory of High Performance Complex Manufacturing, Central South University, Changsha 410083, China.
Micromachines (Basel). 2021 Apr 20;12(4):462. doi: 10.3390/mi12040462.
A fast mixing is critical for subsequent practical development of microfluidic devices, which are often used for assays in the detection of reagents and samples. The present work sets up computational fluid dynamics simulations to explore the flow characteristic and mixing mechanism of fluids in cross-shaped mixers within the laminar regime. First, the effects of increasing an operating parameter on local mixing quality along the microchannels are investigated. It is found that sufficient diffusion cannot occur even though the concentration gradient is large at a high Reynolds number. Meanwhile, a method for calculating local mixing efficiency is also characterized. The mixing efficiency varies exponentially with the flow distance. Second, in order to optimize the cross-shaped mixer, the effects of design parameters, namely aspect ratio, mixing angle and blockage, on mixing quality are captured and the visualization of velocity and concentration distribution are demonstrated. The results show that the aspect ratio and the blockage play an important role in accelerating the mixing process. They can improve the mixing efficiency by increasing the mass transfer area and enhancing the chaotic advection, respectively. In contrast, the inflow angle that affects dispersion length is not an effective parameter. Besides, the surface roughness, which makes the disturbance of fluid flow by roughness more obvious, is considered. Three types of rough elements bring benefits for enhancing mixing quality due to the convection induced by the lateral velocity.
快速混合对于微流控设备随后的实际应用发展至关重要,微流控设备常用于试剂和样品检测的分析中。本工作建立了计算流体动力学模拟,以探究层流状态下十字形混合器内流体的流动特性和混合机制。首先,研究了增加一个操作参数对沿微通道局部混合质量的影响。结果发现,即使在高雷诺数下浓度梯度很大,也不会发生充分的扩散。同时,还表征了一种计算局部混合效率的方法。混合效率随流动距离呈指数变化。其次,为了优化十字形混合器,研究了设计参数(即长宽比、混合角和阻塞率)对混合质量的影响,并展示了速度和浓度分布的可视化。结果表明,长宽比和阻塞率在加速混合过程中起重要作用。它们分别通过增加传质面积和增强混沌平流来提高混合效率。相比之下,影响扩散长度的流入角不是一个有效的参数。此外,还考虑了使粗糙度对流体流动的干扰更明显的表面粗糙度。由于横向速度引起的对流,三种类型的粗糙元件对提高混合质量有帮助。