用于流体混合和推进应用的磁驱动纤毛纳米/微结构的流体动力学分析

Cheng-Yi Lin, Chia-Yun Chen, Y. Hu, Chia-Yuan Chen
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引用次数: 6

摘要

通过磁驱动控制,制备了一系列嵌入磁性颗粒的纤毛状微结构,实现了对流体的精确控制。为了阐明纤毛结构与诱导流场之间潜在的相互作用,进行了水动力学分析。为了制造纤毛状结构,采用了微加工和铸造相结合的方法。这些纤毛结构在由内部磁线圈系统产生的均匀磁场中被驱动,在微通道内进行各种跳动循环。创建了三个具有代表性的信号波形来模拟纤毛的跳动性质,以实现不同的流体驱动功能,如微混合和微推进。为了定量研究诱导流场的流动结构,采用流固耦合模块对诱导流场进行了数值模拟。此外,还利用微粒子图像测速(μPIV)实验表征了纤毛结构的非互反运动,从而量化了水动力效率。利用所提出的分析范式,将提出一种新的流动控制策略,以有效地输送/搅拌微流体中的流动。
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Fluid dynamics analysis of magnetically actuated ciliated nano/micro structures for flow mixing and propulsion applications
A series of cilium-like micro structures with magnetic particles embedded were fabricated for precise flow manipulation through the magnetically driven control. A hydrodynamic analysis was performed to elucidate the underlying interaction between ciliated structures and the induced flow fields. To fabricate ciliated structures, the micromachining method together with a casting process was employed. These ciliated structures were actuated in a homogeneous magnetic field generated by an in-house magnetic coil system for various beating cycles inside a microchannel. Three representative signal waveforms were created to mimic the beating nature of cilia for different flow actuating functions, such as micromixing and micropropulsion. To investigate the flow structures of induced flow fields quantitatively, a numerical modeling method using Fluid-Structure-Interaction module was performed. In addition, a micro-particle image velocimetry (μPIV) experiment was conducted to characterize the nonreciprocal movement of ciliated structures for the quantification of hydrodynamic efficiency. By means of the presented analysis paradigms, a new flow manipulation strategy will be suggested to transport/agitate flows efficiently in microfluidics.
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