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Mixing control by frequency variable magnetic micropillar

机译:频率可变磁性微量磁微米混合控制

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Mixing of fluids in microchannels is a crucial yet challenging task in lab-on-a-chip devices. Here we demonstrate a mixing enhancement method of two streams of fluids based on actuation of a single micropillar embedded with paramagnetic nanoparticles. The actuation is controlled by an external rotating magnetic field and has variable frequency up to ≈160 Hz. We systematically study the effects of actuation frequency and flow rate on the mixing efficiency, which can almost reach the highest value corresponding to the completely mixed state. We find that the resulting concentration profile of the mixed fluids downstream of the actuated pillar can be described by the convection–diffusion equation with an effective coefficient that depends only on one control parameter: the number of actuation cycles of the micropillar during the fluid's transit time. Our results indicate that the proposed approach may be adapted and scaled up to enhance the mixing efficiency with high degree of control in other lab-on-chip devices.
机译:微通道中的液体混合是在实验室设备中的一个至关重要的且挑战性的任务。在这里,我们证明了一种基于嵌入具有顺磁纳米颗粒的单个微储物的致动的两种流体流的混合增强方法。致动由外部旋转磁场控制,并且具有高达≈160Hz的可变频率。我们系统地研究了致动频率和流速对混合效率的影响,这几乎可以达到与完全混合状态相对应的最高值。我们发现,致动柱下游的混合流体的所得浓度曲线可以由对流扩散方程描述,其具有仅取决于一个控制参数的有效系数:在流体的运输时间内微米的致动周期数。我们的结果表明,所提出的方法可以调整和缩放,以提高在其他实验室设备中具有高控制度的混合效率。

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