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首页> 外文期刊>Physics of fluids >Inertial particle focusing in serpentine channels on a centrifugal platform
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Inertial particle focusing in serpentine channels on a centrifugal platform

机译:聚焦在离心平台上的蛇形通道的惯性粒子

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摘要

Inertial particle focusing as a powerful passive method is widely used in diagnostic test devices. It is common to use a curved channel in this approach to achieve particle focusing through balancing of the secondary flow drag force and the inertial lift force. Here, we present a focusing device on a disk based on the interaction of secondary flow drag force, inertial lift force, and centrifugal forces to focus particles. By choosing a channel whose cross section has a low aspect ratio, the mixing effect of the secondary flow becomes negligible. To calculate inertial lift force, which is exerted on the particle from the fluid, the interaction between the fluid and particle is investigated accurately through implementation of 3D Direct Numerical Solution (DNS) method. The particle focusing in three serpentine channels with different corner angles of 75 degrees, 85 degrees, and 90 degrees is investigated for three polystyrene particles with diameters of 8 mu m, 9.9 mu m, and 13 mu m. To show the simulation reliability, the results obtained from the simulations of two examples, namely, particle focusing and centrifugal platform, are verified against experimental counterparts. The effects of angular velocity of disk on the fluid velocity and on the focusing parameters are studied. Fluid velocity in a channel with corner angle of 75 degrees is greater than two other channels. Furthermore, the particle equilibrium positions at the cross section of channel are obtained at the outlet. There are two equilibrium positions located at the centers of the long walls. Finally, the effect of particle density on the focusing length is investigated. A particle with a higher density and larger diameter is focused in a shorter length of the channel compared to its counterpart with a lower density and shorter diameter. The channel with a corner angle of 90 degrees has better focusing efficiency compared to other channels. This design focuses particles without using any pump or sheath fl
机译:作为强大无源方法的惯性粒子聚焦广泛用于诊断测试装置。通常使用这种方法中的弯曲通道来实现通过平衡二次流动阻力和惯性提升力的粒子聚焦。这里,我们基于二次流动拖曳力,惯性提升力和离心力的相互作用在盘上呈现一个聚焦装置。通过选择横截面具有低纵横比的通道,二次流动的混合效果变得可忽略不计。为了计算从流体施加在颗粒上的惯性提升力,通过实施3D直接数值(DNS)方法精确地研究流体和颗粒之间的相互作用。针对具有75度,85度和90度不同的角角的三种蛇形通道聚焦的粒子用于三种聚苯乙烯颗粒,直径为8μm,9.9μm和13μm。为了展示模拟可靠性,验证了从两种实施例的模拟,即粒子聚焦和离心平台获得的结果。验证了实验对应物。研究了盘角速度对流体速度和聚焦参数的影响。具有75度的拐角角度的通道中的流体速度大于其他两个通道。此外,在出口处获得通道横截面处的颗粒平衡位置。长墙中心有两个均衡位置。最后,研究了粒子密度对聚焦长度的影响。与具有较低密度和较短直径的对应物相比,具有较高密度和较大直径的粒子的粒子聚焦在通道的较短长度中。与其他通道相比,具有90度的角角的通道具有更好的聚焦效率。这种设计将颗粒聚焦而不使用任何泵或鞘FL

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