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非均匀磁场对基于微滴的微流控中混合效率的影响:数值研究。

The Effect of Non-Uniform Magnetic Field on the Efficiency of Mixing in Droplet-Based Microfluidics: A Numerical Investigation.

作者信息

Rezaeian Masoud, Nouri Moein, Hassani-Gangaraj Mojtaba, Shamloo Amir, Nasiri Rohollah

机构信息

Department of Mechanical Engineering, Sharif University of Technology, Tehran 11365-8639, Iran.

Department of Protein Science, Division of Nanobiotechnology, KTH Royal Institute of Technology, 171 65 Solna, Sweden.

出版信息

Micromachines (Basel). 2022 Oct 2;13(10):1661. doi: 10.3390/mi13101661.

Abstract

Achieving high efficiency and throughput in droplet-based mixing over a small characteristic length, such as microfluidic channels, is one of the crucial parameters in Lab-on-a-Chip (LOC) applications. One solution to achieve efficient mixing is to use active mixers in which an external power source is utilized to mix two fluids. One of these active methods is magnetic micromixers using ferrofluid. In this technique, magnetic nanoparticles are used to make one phase responsive to magnetic force, and then by applying a magnetic field, two fluid phases, one of which is magneto-responsive, will sufficiently mix. In this study, we investigated the effect of the magnetic field's characteristics on the efficiency of the mixing process inside droplets. When different concentrations of ferrofluids are affected by a constant magnetic field, there is no significant change in mixing efficiency. As the magnetic field intensifies, the magnetic force makes the circulation flow inside the droplet asymmetric, leading to chaotic advection, which creates a flow that increases the mixing efficiency. The results show that the use of magnetic fields is an effective method to enhance the mixing efficiency within droplets, and the efficiency of mixing increases from 65.4 to 86.1% by increasing the magnetic field intensity from 0 to 90 mT. Besides that, the effect of ferrofluid's concentration on the mixing efficiency is studied. It is shown that when the concentration of the ferrofluid changes from 0 to 0.6 mol/m, the mixing efficiency increases considerably. It is also shown that by changing the intensity of the magnetic field, the mixing efficiency increases by about 11%.

摘要

在诸如微流控通道等具有小特征长度的基于液滴的混合过程中实现高效率和高吞吐量,是芯片实验室(LOC)应用中的关键参数之一。实现高效混合的一种解决方案是使用有源混合器,其中利用外部电源来混合两种流体。这些有源方法之一是使用铁磁流体的磁性微混合器。在这项技术中,磁性纳米颗粒用于使一相响应磁力,然后通过施加磁场,两种流体相(其中一相是磁响应性的)将充分混合。在本研究中,我们研究了磁场特性对液滴内部混合过程效率的影响。当不同浓度的铁磁流体受到恒定磁场作用时,混合效率没有显著变化。随着磁场增强,磁力使液滴内部的循环流不对称,导致混沌平流,从而产生增加混合效率的流动。结果表明,使用磁场是提高液滴内混合效率的有效方法,通过将磁场强度从0增加到90 mT,混合效率从65.4%提高到86.1%。除此之外,还研究了铁磁流体浓度对混合效率的影响。结果表明,当铁磁流体的浓度从0变化到0.6 mol/m时,混合效率显著提高。还表明,通过改变磁场强度,混合效率提高约11%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/52c0/9608787/af9493e810a0/micromachines-13-01661-g001.jpg

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