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Investigation of the Effect of Geometric Parameters on EWOD Actuation in Rectangular Microchannels

机译:几何参数对矩形微通航中eWOD致动的影响研究

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摘要

Efficient actuation of liquid slugs in microfluidic circuits is a matter of interest in droplet-based microfluidic (DMF) applications. In this paper, the electrowetting on dielectric (EWOD) actuation of a liquid slug fully confined in a microchannel is studied. A set of experiments are conducted in which the mean transport velocity of a liquid slug enclosed in a microchannel of rectangular cross section and actuated by EWOD method is measured. A printed circuit board-based (PCB-based) microfluidic chip is used as the platform, and the transport velocity of the slug is measured by processing the images recorded by a high-speed camera while the slug moves in the channel. To investigate the effect of microchannel geometry on the mean transport velocity of the slugs, different channel heights and widths (ranging between 250 - 440 mu m and 1-2 mm, respectively) as well as different liquid volumes (ranging between 2: 94 and 5: 15 mu L) are tested and slug velocities up to 14.9 mm/s are achieved. A theoretical model is also developed to analyze the effect of involved parameters on the transport velocity. The results show that, within the range of design parameters considered in this study, for a constant slug volume and channel width, increasing the channel height enhances the velocity. Moreover, keeping the slug volume and channel height fixed, the transport velocity is increased by enlarging the channel width. An inverse proportionality between the slug length and velocity is also observed. These results are also shown to agree with the theoretical model developed.
机译:微流体电路中的液体槽的高效致动是液滴基微流体(DMF)应用的感兴趣的问题。在本文中,研究了在微通道中完全限制的介电(EWOD)致动的电润湿。进行了一组实验,其中测量封闭在矩形横截面微通道中并由EWOD方法致动的液体块的平均传输速度。使用印刷电路基板(基于PCB)的微流体芯片用作平台,并且通过处理由高速相机记录的图像在速度在通道中移动时测量块的传输速度。为了研究微通道几何形状对块的平均传输速度,不同的通道高度和宽度(分别在250-440μm和1-2mm之间)以及不同的液体体积(2:94之间的范围和5:15μl)经测试,达到高达14.9mm / s的块速度。还开发了理论模型来分析涉及参数对运输速度的影响。结果表明,在本研究中考虑的设计参数范围内,对于恒定的块体积和通道宽度,增加通道高度增强了速度。此外,通过扩大沟道宽度,保持悬臂容量和沟道高度固定,输送速度增加。还观察到槽长度和速度之间的逆比例。这些结果也显示出与发展的理论模型同意。

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