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Continuous Microfluidic Particle Separation via Elasto-Inertial Pinched Flow Fractionation

机译:通过弹惯性夹流分离连续微流体颗粒分离

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Many of the fluids encountered in chemical and biomedical, applications exhibit non-Newtonian behavior. However, the majority of current particle separation methods have been demonstrated in Newtonian fluids only. This work presents an experimental study of continuous particle separation in viscoelastic solutions via a combined action of elastic and inertial lift forces, which we term elasto-inertial pinched flow fractionation (eiPFF). The parametric effects on eiPFF are systematically investigated in terms of dimensionless numbers. It is found that eiPFF offers much higher particle throughput and separation resolution than the traditional steric effects-based PFF. Moreover, eiPFF works most efficiently when the Reynolds number, Re, is of order 1 and hence fills perfectly into the gap of our recently proposed inertiaenhanced PFF (iPFF) technique (Anal. Chem. 2015, 87, 4560-4565) that favors Re of the order 10 or more. However, the particle separation via eiPFF does not increase monotonically with the elasticity number at higher polymer concentrations and is strongly affected by the aspect ratio of channel width to height, both of which have not been previously reported. More surprisingly, the elasto-inertial deflection of small particles can be even greater than that of large particles in a high-aspect-ratio channel for Re less than 1.
机译:化学和生物医学应用中遇到的许多流体都表现出非牛顿行为。但是,目前大多数的颗粒分离方法仅在牛顿​​流体中得到证明。这项工作提出了通过弹性力和惯性升力的联合作用在粘弹性溶液中连续分离颗粒的实验研究,我们称其为弹惯性收缩流分馏(eiPFF)。对eiPFF的参数影响是根据无因次数进行系统研究的。发现与传统的基于空间效应的PFF相比,eiPFF具有更高的颗粒通量和分离分辨率。此外,当雷诺数Re处于1阶时,eiPFF的工作效率最高,因此完全填补了我们最近提出的偏爱Re的惯性增强PFF(iPFF)技术(Anal。Chem。2015,87,4560-4565)的空白。 10或更多的数量级。然而,在较高的聚合物浓度下,通过eiPFF进行的颗粒分离不会随弹性数的增加而单调增加,并且受到通道宽度与高度的长宽比的强烈影响,而这两者以前均未见报道。更令人惊讶的是,在Re小于1的情况下,小颗粒的弹性惯性挠度甚至可以比大颗粒的弹性惯性挠度更大。

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