School of Food Equipment Engineering and Science, Xi'an Jiaotong University, Xi'an, Shaanxi, P. R. China.
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, P. R. China.
Electrophoresis. 2019 Mar;40(6):1000-1009. doi: 10.1002/elps.201800454. Epub 2018 Dec 6.
A passive microfluidic device is reported for continuous microparticle enrichment. The microparticle is enriched based on the inertial effect in a microchannel with contracting-expanding structures on one side where microparticles/cells are subjected to the inertial lift force and the momentum-change-induced inertial force induced by highly curved streamlines. Under the combined effect of the two forces, yeast cells and microparticles of different sizes were continuously focused in the present device over a range of Reynolds numbers from 16.7 to 125. ∼68% of the particle-free liquid was separated from the sample at Re = 66.7, and ∼18 μL particle-free liquid was fast obtained within 10 s. Results also showed that the geometry of the contracting-expanding structure significantly influenced the lateral migration of the particle. Structures with a large angle induced strong inertial effect and weak disturbance effect of vortex on the particle, both of which enhanced the microparticle enrichment in microchannel. With simple structure, small footprint (18 × 0.35 mm), easy operation and cell-friendly property, the present device has great potential in biomedical applications, such as the enrichment of cells and the fast extraction of plasma from blood for disease diagnose and therapy.
一种用于连续微粒子富集的被动微流控装置。微粒子基于惯性效应在一侧具有收缩-扩张结构的微通道中富集,其中微粒子/细胞受到惯性升力和由高度弯曲流线引起的动量变化引起的惯性力的影响。在这两种力的共同作用下,酵母细胞和不同大小的微粒子在从 16.7 到 125 的雷诺数范围内连续聚焦。在 Re=66.7 时,将无颗粒的液体的约 68%从样品中分离出来,并且在 10 s 内快速获得了约 18 μL 的无颗粒的液体。结果还表明,收缩-扩张结构的几何形状显著影响了颗粒的横向迁移。大角度的结构诱导了强烈的惯性效应和对颗粒的弱涡旋干扰效应,这两者都增强了微通道中的微粒子富集。该装置具有结构简单、占地面积小(18×0.35mm)、操作简单、对细胞友好等特点,在生物医学应用中具有很大的潜力,如细胞的富集和从血液中快速提取血浆用于疾病诊断和治疗。