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Computational Analysis of Enhanced Magnetic Bioseparation in Microfluidic Systems with Flow-Invasive Magnetic Elements

机译:具有流体侵入性磁性元素的微流体系统中增强的磁性生物分离的计算分析

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摘要

A microfluidic design is proposed for realizing greatly enhanced separation of magnetically-labeled bioparticles using integrated soft-magnetic elements. The elements are fixed and intersect the carrier fluid (flow-invasive) with their length transverse to the flow. They are magnetized using a bias field to produce a particle capture force. Multiple stair-step elements are used to provide efficient capture throughout the entire flow channel. This is in contrast to conventional systems wherein the elements are integrated into the walls of the channel, which restricts efficient capture to limited regions of the channel due to the short range nature of the magnetic force. This severely limits the channel size and hence throughput. Flow-invasive elements overcome this limitation and enable microfluidic bioseparation systems with superior scalability. This enhanced functionality is quantified for the first time using a computational model that accounts for the dominant mechanisms of particle transport including fully-coupled particle-fluid momentum transfer.
机译:提出了一种微流体设计,以使用集成的软磁元件实现大大增强了磁性标记生物颗粒的分离。这些元件是固定的,并且与载体流体相交(侵入流体),其长度与流动方向成横向。使用偏磁场将它们磁化以产生粒子捕获力。多个阶梯元件用于在整个流动通道中提供有效的捕获。这与常规系统相反,在常规系统中,元件被集成到通道的壁中,由于磁力的短距离性质,其将有效捕获限制在通道的有限区域中。这严重限制了通道大小,从而限制了吞吐量。侵入性流体元件克服了这一限制,并使微流体生物分离系统具有出色的可扩展性。首次使用计算模型对这种增强的功能进行了量化,该模型考虑了包括完全耦合的粒子流体动量传递在内的粒子传输的主要机理。

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