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Separation of particles using acoustic streaming and radiation forces in an open microfluidic channel

机译:在开放的微流体通道中利用声流和辐射力分离颗粒

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摘要

In this study, a method to separate particles, within a small sample, based on size is demonstrated using ultrasonic actuation. This is achieved in a fluid, which has been deposited on a flat surface and is contained by a channel, such that it has a rectangular wetted area. The system utilises acoustic radiation forces (ARFs) and acoustic streaming. The force field generates two types of stable collection locations, a lower one within the liquid suspension medium and an upper one at the liquid-air interface. Acoustic streaming selectively delivers smaller particles from the lower locations to the upper ones. Experimental data demonstrate the ability to separate two sets of polystyrene microparticles, with diameters of 3 and 10 μm, into different stable locations. Methods to reduce migration of larger particles to the free surface are also investigated, thereby maximising the efficiency of the separation. Extraction of one set of 99 % pure particles at the liquid-air interface from the initial particle mixture using a manual pipette is demonstrated here. In addition, computational modelling performed suggests the critical separation size can be tuned by scaling the size of the system to alter which of ARFs and acoustic streaming-induced drag forces is dominant for given particle sizes, therefore presenting an approach to tunable particle separation system based on size.
机译:在这项研究中,演示了使用超声驱动根据大小分离小样本中颗粒的方法。这是在一种流体中实现的,该流体已沉积在一个平面上并被一个通道所包含,因此它具有一个矩形的润湿区域。该系统利用声辐射力(ARF)和声流。力场产生两种类型的稳定收集位置,液体悬浮介质内的下部位置和液-气界面处的上部位置。声流选择性地将较小的颗粒从下部位置传递到上部位置。实验数据证明了将两组直径为3和10μm的聚苯乙烯微粒分离到不同的稳定位置的能力。还研究了减少大颗粒迁移到自由表面的方法,从而最大程度地提高了分离效率。此处演示了使用手动移液器从初始颗粒混合物中在液气界面提取一组99%的纯颗粒。此外,进行的计算建模表明,可以通过缩放系统大小以改变ARF来调整临界分离大小,从而改变给定粒径的ARF和声流引起的阻力,因此提出了一种基于可调谐颗粒分离系统的方法在大小上。

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