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Fractionation of Magnetic Microspheres in a Microfluidic Spiral: Interplay between Magnetic and Hydrodynamic Forces

机译:微流体螺旋中的磁性微球的分离:磁力和流体动力之间的相互作用。

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摘要

Magnetic forces and curvature-induced hydrodynamic drag have both been studied and employed in continuous microfluidic particle separation and enrichment schemes. Here we combine the two. We investigate consequences of applying an outwardly directed magnetic force to a dilute suspension of magnetic microspheres circulating in a spiral microfluidic channel. This force is realized with an array of permanent magnets arranged to produce a magnetic field with octupolar symmetry about the spiral axis. At low flow rates particles cluster around an apparent streamline of the flow near the outer wall of the turn. At high flow rates this equilibrium is disrupted by the induced secondary (Dean) flow and a new equilibrium is established near the inner wall of the turn. A model incorporating key forces involved in establishing these equilibria is described, and is used to extract quantitative information about the magnitude of local Dean drag forces from experimental data. Steady-state fractionation of suspensions by particle size under the combined influence of magnetic and hydrodynamic forces is demonstrated. Extensions of this work could lead to new continuous microscale particle sorting and enrichment processes with improved fidelity and specificity.
机译:已经研究了磁力和曲率引起的流体动力阻力,并将其用于连续的微流体颗粒分离和富集方案。在这里,我们将两者结合起来。我们研究将向外施加的磁力施加到在螺旋微流控通道中循环的磁性微球的稀悬浮液的后果。该力通过布置成产生围绕螺旋轴具有八极对称性的磁场的永磁体阵列来实现。在低流速下,颗粒围绕转弯外壁附近的表观流线聚集。在高流量下,该平衡被诱导的次级(Dean)流破坏,并且在转弯内壁附近建立了新的平衡。描述了一个模型,其中包含了建立这些平衡所涉及的关键力,该模型用于从实验数据中提取有关局部Dean阻力的大小的定量信息。证明了在磁动力和流体动力共同作用下,按粒径分级的悬浮液稳态分离。这项工作的扩展可能会导致新的连续的微米级颗粒分选和富集过程,从而提高保真度和特异性。

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  • 期刊名称 other
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  • 年(卷),期 -1(12),1
  • 年度 -1
  • 页码 e0169919
  • 总页数 24
  • 原文格式 PDF
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