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Equilibrium and dynamic behavior of micro flows under electrically induced surface tension actuation forces

机译:电感应表面张力驱动力下微流的平衡和动力学行为

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It is possible to move, split, merge, and mix liquids in micro fluidic devices by applying spatially varying electric fields that effectively change the surface tension at specific spatial locations. The phenomena is brought about by a competition between surface tension effects (that cause the droplet to bead up because it has been placed on a hydrophobic surface) and electrical forces in the underlying solid dielectric (which attempt to enlarge the liquid/solid contact area so as to relieve electro static forces). In this paper we primarily present an energy minimization model for the equilibrium shape of electrically actuated droplets. By including a realistic amount of liquid resistance, this model captures the effect of contact angle saturation and predicts the experiment data we observe in the UCLA devices. At the close of the paper we also outline our results in modeling the dynamics of the moving, splitting, and merging droplets. This part includes modeling of the 2-phase low-Reynolds fluid dynamics with electrically actuated boundary conditions.
机译:通过施加空间变化的电场可以有效地改变特定空间位置的表面张力,从而可以在微流体设备中移动,分裂,合并和混合液体。这种现象是由表面张力效应(由于液滴已被放置在疏水性表面上而导致液滴成珠状)与下面的固体电介质中的力(试图扩大液/固接触面积)之间的竞争引起的以减轻静电力)。在本文中,我们主要介绍电驱动液滴的平衡形状的能量最小化模型。通过包含实际的液体电阻量,该模型可以捕获接触角饱和的影响,并预测我们在UCLA设备中观察到的实验数据。在本文结尾处,我们还概述了对移动,分裂和合并液滴的动力学进行建模的结果。此部分包括带有电动边界条件的两相低雷诺流体动力学模型。

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