在一种新型微通道中使用双电泳分离血液颗粒:数值研究

Omid Zahedi Siani, M. Sojoodi, Mohammad Zabetian Targhi, M. Movahedin
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引用次数: 5

摘要

目的提出了一种考虑颗粒固有性质(包括粒径、电导率和介电系数)的四分支介电电泳(DEP)方法模型。通过使用该模型,生物颗粒可以连续分离,只需应用一个阶段的分离过程。在本次数值研究中,我们基于颗粒大小的差异来进行分离过程。我们利用电极对颗粒产生的各种负DEP力来高效分离它们。由于血细胞大小不同,颗粒分离器可以将其分离。结果将大于12 μm的血细胞引导到一个特殊的分支上,防止了颗粒在其他分支上的沉积,提高了分离效率。所设计的装置能够分离直径为2.0 μm、6.2 μm、10.0 μm和大于12.0 μm的血细胞。施加到电极上的电压为50 V,频率为100 kHz。结论该装置是一种简单、高效的基于depa的连续细胞分离器。这种能力使其非常适合用于各种生物医学应用,包括细胞治疗和细胞分离,并导致微流体设备的吞吐量增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Blood Particle Separation Using Dielectrophoresis in A Novel Microchannel: A Numerical Study
Objective We present a four-branch model of the dielectrophoresis (DEP) method that takes into consideration the inherent properties of particles, including size, electrical conductivity, and permittivity coefficient. By using this model, bioparticles can be continuously separated by the application of only a one-stage separation process. Materials and Methods In this numerical study, we based the separation process on the differences in the particle sizes. We used the various negative DEP forces on the particles caused by the electrodes to separate them with a high efficiency. The particle separator could separate blood cells because of their different sizes. Results Blood cells greater than 12 μm were guided to a special branch, which improved separation efficiency because it prevented the deposition of particles in other branches. The designed device had the capability to separate blood cells with diameters of 2.0 μm, 6.2 μm, 10.0 μm, and greater than 12.0 μm. The applied voltage to the electrodes was 50 V with a frequency of 100 kHz. Conclusion The proposed device is a simple, efficient DEP-based continuous cell separator. This capability makes it ideal for use in various biomedical applications, including cell therapy and cell separation, and results in a throughput increment of microfluidics devices.
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