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Three-dimensional diamagnetic particle deflection in ferrofluid microchannel flows

机译:铁磁微通道流中的三维反磁性粒子偏转

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摘要

Magnetic field-induced particle manipulation is a promising technique for biomicrofluidics applications. It is simple, cheap, and also free of fluid heating issues that accompany other common electric, acoustic, and optical methods. This work presents a fundamental study of diamagnetic particle motion in ferrofluid flows through a rectangular microchannel with a nearby permanent magnet. Due to their negligible magnetization relative to the ferrofluid, diamagnetic particles experience negative magnetophoresis and are repelled away from the magnet. The result is a three-dimensionally focused particle stream flowing near the bottom outer corner of the microchannel that is the farthest to the center of the magnet and hence has the smallest magnetic field. The effects of the particle’s relative position to the magnet, particle size, ferrofluid flow rate, and concentration on this three-dimensional diamagnetic particle deflection are systematically studied. The obtained experimental results agree quantitatively with the predictions of a three-dimensional analytical model.
机译:磁场诱导的颗粒操纵是一种用于生物微流体应用的有前途的技术。它简单,便宜,并且没有伴随其他常见的电,声和光学方法的流体加热问题。这项工作提出了对铁磁流体流过带有附近永磁体的矩形微通道中的反磁性粒子运动的基础研究。由于其相对于铁磁流体的磁化强度可忽略不计,因此抗磁性粒子会经历负磁致变热作用,并被驱离磁体。结果是三维聚焦粒子流在微通道的底部外角附近流动,该底部角距磁体的中心最远,因此具有最小的磁场。系统地研究了粒子相对于磁体的相对位置,粒径,铁磁流体流速和浓度对这种三维反磁性粒子偏转的影响。获得的实验结果在定量上与三维分析模型的预测吻合。

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