Raoufi Mohammad Amin, Mashhadian Ali, Niazmand Hamid, Asadnia Mohsen, Razmjou Amir, Warkiani Majid Ebrahimi
Department of Mechanical Engineering, Sharif University, Tehran, Iran.
Department of Mechanical Engineering, Ferdowsi University of Mashhad, Mashhad, Iran.
Biomicrofluidics. 2019 May 9;13(3):034103. doi: 10.1063/1.5093345. eCollection 2019 May.
Elasto-inertial microfluidics has drawn significant attention in recent years due to its enhanced capabilities compared to pure inertial systems in control of small microparticles. Previous investigations have focused mainly on the applications of elasto-inertial sorting, rather than studying its fundamentals. This is because of the complexity of simulation and analysis, due to the presence of viscoelastic force. There have been some investigative efforts on the mechanisms of elasto-inertial focusing in straight channels; however, these studies were limited to simple rectangular channels and neglected the effects of geometry and flow rates on focusing positions. Herein, for the first time, we experimentally and numerically explore the effects of elasticity accompanying channel cross-sectional geometry and sample flow rates on the focusing phenomenon in elasto-inertial systems. The results reveal that increasing the aspect ratio weakens the elastic force more than inertial force, causing a transition from one focusing position to two. In addition, they show that increasing the angle of a channel corner causes the elastic force to push the particles more efficiently toward the center over a larger area of the channel cross section. Following on from this, we proposed a new complex straight channel which demonstrates a tighter focusing band compared to other channel geometries. Finally, we focused cells (3-5 m) in the complex channel to showcase its capability in focusing small-size particles. We believe that this research work improves the understanding of focusing mechanisms in viscoelastic solutions and provides useful insights into the design of elasto-inertial microfluidic devices.
近年来,弹性惯性微流体因其在控制小微粒方面比纯惯性系统具有更强的能力而备受关注。以往的研究主要集中在弹性惯性分选的应用上,而不是研究其基本原理。这是由于存在粘弹性力,模拟和分析较为复杂。对于直通道中弹性惯性聚焦的机制已经有一些研究工作;然而,这些研究仅限于简单的矩形通道,忽略了几何形状和流速对聚焦位置的影响。在此,我们首次通过实验和数值模拟探究了通道横截面几何形状和样品流速所伴随的弹性对弹性惯性系统中聚焦现象的影响。结果表明,增大纵横比削弱弹性力的程度大于惯性力,导致聚焦位置从一个转变为两个。此外,结果还表明,增大通道拐角的角度会使弹性力在更大的通道横截面区域内更有效地将粒子推向中心。在此基础上,我们提出了一种新的复杂直通道,与其他通道几何形状相比,它展示出更窄的聚焦带。最后,我们在复杂通道中聚焦了细胞(3 - 5微米),以展示其聚焦小尺寸粒子的能力。我们相信这项研究工作增进了对粘弹性溶液中聚焦机制的理解,并为弹性惯性微流体装置的设计提供了有用的见解。