首页> 外文OA文献 >Size based separation of submicron nonmagnetic particles through magnetophoresis in structured obstacle arrays
【2h】

Size based separation of submicron nonmagnetic particles through magnetophoresis in structured obstacle arrays

机译:基于尺寸的亚微米非磁性颗粒通过结构化障碍物阵列中的磁泳分离

摘要

The focus of this work was on developing a novel scalable size based separation technology for nonmagnetic particles in the submicron size range utilizing magnetophoretic forces. When a nonmagnetic particle is immersed in a magnetic fluid and subjected to magnetic field gradients, it behaves like a magnetic hole and experiences magnetic buoyancy forces proportional to its volume. This size dependence of magnetic buoyancy forces can be exploited to selectively focus larger nonmagnetic particles from a mixture and thus we can fractionate nonmagnetic particles on the basis of size. We designed a separation system composed of a regular array of iron obstacle posts which utilized magnetic buoyancy forces to perform size based separations. A Lagrangian particle tracking model was developed which could describe the behavior of a nonmagnetic particle in regions of inhomogeneous magnetic field gradients. Particle trajectories were simulated for a number of obstacle array geometries and over a range of operating conditions in order to understand the nature of the magnetic buoyancy force and aid in separation system design. Based on the results of the trajectory simulations, an experimental set up was conceptualized and built to demonstrate capture and separation of nonmagnetic particles using magnetic buoyancy forces. Capture visualization experiments were performed utilizing fluorescence microscopy which showed visual evidence of focusing and preferential capture of larger nonmagnetic particles. Experiments also yielded results qualitatively consistent with the Lagrangian trajectory model. Pulse chromatography experiments were also performed in order to quantitatively understand the capture and separation behavior. The results obtained showed quantitative evidence of preferential capture of larger particles. Particle capture efficiencies were compared with predictions from simulations and were found to be qualitatively consistent. Finally, the potential of this separation technology was demonstrated by performing proof-of-concept separation experiments with a mixture of 840 nm and 240 nm particles.
机译:这项工作的重点是利用磁致热力为亚微米尺寸范围内的非磁性粒子开发一种基于可扩展尺寸的新型分离技术。当非磁性粒子浸入磁性流体中并经受磁场梯度作用时,其行为就像磁性孔,并且会经受与其体积成比例的磁性浮力。可以利用这种磁性浮力的尺寸依赖性来选择性地从混合物中聚焦较大的非磁性粒子,因此我们可以根据尺寸对非磁性粒子进行分级分离。我们设计了一个分离系统,该系统由规则的铁制障碍柱阵列组成,这些障碍柱利用磁性浮力执行基于尺寸的分离。建立了拉格朗日粒子跟踪模型,该模型可以描述非磁性粒子在非均匀磁场梯度区域中的行为。针对多种障碍物阵列的几何形状以及在一定范围的运行条件下模拟了粒子轨迹,以了解磁浮力的性质并有助于分离系统的设计。根据轨迹模拟的结果,概念化并建立了一个实验装置,以演示利用磁性浮力捕获和分离非磁性粒子。利用荧光显微镜进行捕获可视化实验,该实验显示了聚焦和优先捕获较大的非磁性颗粒的视觉证据。实验还得出了与拉格朗日轨迹模型定性一致的结果。为了定量地了解捕获和分离行为,还进行了脉冲色谱实验。获得的结果显示了优先捕获较大颗粒的定量证据。粒子捕获效率与模拟预测值进行了比较,发现在质量上是一致的。最后,通过对840 nm和240 nm颗粒的混合物进行概念验证分离实验,证明了这种分离技术的潜力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号