Sajja V S K, Kennedy David J, Todd Paul W, Hanley Thomas R
Department of Chemical Engineering, Auburn University, AL 36849.
Can J Chem Eng. 2011 Oct;89(5):1068-1075. doi: 10.1002/cjce.20541.
In the Quadrupole Magnetic Sorter (QMS) magnetic particles enter a vertical flow annulus and are separated from non-magnetic particles by radial deflection into an outer annulus where the purified magnetic particles are collected via a flow splitter. The purity of magnetically isolated particles in QMS is affected by the migration of nonmagnetic particles across transport lamina in the annular flow channel. Computational Fluid Dynamics (CFD) simulations were used to predict the flow patterns, pressure drop and nonspecific crossover in QMS flow channel for the isolation of pancreatic islets of Langerhans. Simulation results were compared with the experimental results to validate the CFD model. Results of the simulations were used to show that one design gives up to 10% less nonspecific crossover than another and this model can be used to optimise the flow channel design to achieve maximum purity of magnetic particles.
在四极磁选器(QMS)中,磁性颗粒进入垂直的流动环空,并通过径向偏转而与非磁性颗粒分离,进入外部环空,在那里纯化的磁性颗粒通过分流器收集。QMS中磁分离颗粒的纯度受非磁性颗粒在环形流动通道中穿过传输薄片的迁移影响。采用计算流体动力学(CFD)模拟来预测用于分离胰岛的QMS流动通道中的流动模式、压降和非特异性交叉。将模拟结果与实验结果进行比较以验证CFD模型。模拟结果表明,一种设计的非特异性交叉比另一种设计少达10%,并且该模型可用于优化流动通道设计以实现磁性颗粒的最大纯度。