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Investigation on Inertial Sorter Coupled with Magnetophoretic Effect for Nonmagnetic Microparticles

机译:惯性分选器与磁致变效应耦合的非磁性微粒研究

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摘要

The sizes of most prokaryotic cells are several microns. It is very difficult to separate cells with similar sizes. A sorter with a contraction–expansion microchannel and applied magnetic field is designed to sort microparticles with diameters of 3, 4 and 5 microns. To evaluate the sorting efficiency of the designed sorter, numerical simulations for calculating the distributions of microparticles with similar sizes were carried out for various magnetic fields, inlet velocities, sheath flow ratios and structural parameters. The numerical results indicate that micro-particles with diameters of 3, 4 and 5 microns can be sorted efficiently in such a sorter within appropriate parameters. Furthermore, it is shown that a bigger particle size and more powerful magnetic field can result in a greater lateral migration of microparticles. The sorting efficiency of microparticles promotes a lower inlet velocity and greater sheath flow ratios. A smaller contraction–expansion ratio can induce a greater space between particle-bands. Finally, the micro particle image velocity (micro-PIV) experiments were conducted to obtain the bandwidths and spaces between particle-bands. The comparisons between the numerical and experimental results show a good agreement and make the validity of the numerical results certain.
机译:大多数原核细胞的大小为几微米。分离大小相似的单元非常困难。具有收缩-扩展微通道和外加磁场的分选机设计用于分选直径为3、4和5微米的微粒。为了评估设计的分选机的分选效率,针对各种磁场,入口速度,鞘流比和结构参数进行了数值模拟,以计算具有相似尺寸的微粒的分布。数值结果表明,可以在合适的参数范围内在这种分选机中有效地分选直径为3、4和5微米的微粒。此外,显示出更大的粒度和更强的磁场可以导致更大的微粒横向迁移。微粒的分选效率促进了较低的入口速度和较大的鞘流比。较小的收缩/膨胀比可以在粒子带之间产生更大的空间。最后,进行了微粒子图像速度(micro-PIV)实验,以获取粒子带之间的带宽和空间。数值结果与实验结果的比较表明,该方法吻合良好,具有一定的有效性。

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