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Analysis of co-flowing immiscible liquid streams and their interfaces in a high-throughput solvent extraction chip

机译:高通量溶剂萃取芯片中共流不混溶液体流及其界面的分析

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摘要

Liquid-liquid flow profiles are central to the operation of microfluidic devices in a range of applications. We recently demonstrated a multi-stream solvent extraction (SX) chip that combines high-surface-to-volume ratios and volumetric throughput. Here, we study these flow profiles in detail using numerical simulations, with consideration of different boundary conditions. The two liquids differ in viscosity, modelled on platinum (aqueous) and extractant (organic) phases, and the position of the liquid-liquid interfaces (and therefore surface/volume and phase ratios) can be controlled by adjustment of flow rates. The prediction of the position of the interface requires the solution of the governing equations of fluid mechanics. The volume of fluid (VOF) method was used to simulate the dynamics of the organic and aqueous phases to reveal stable flow profiles. This experimentally validated computational model with the root-mean-square deviation of about 11 μm will be useful for simulation of microfluidic SX design and operation, particularly where process intensification is sought through scale-out.
机译:液-液流动曲线对于微流控设备在一系列应用中的运行至关重要。我们最近展示了一种多流溶剂萃取(SX)芯片,该芯片结合了高表面积体积比和体积通量。在这里,我们在考虑不同边界条件的情况下,使用数值模拟详细研究了这些流动剖面。两种液体的粘度不同,以铂(水)相和萃取剂(有机)相为模型,并且液-液界面的位置(以及表面/体积和相比)可以通过调整流速来控制。界面位置的预测需要求解流体力学的控制方程。流体体积(VOF)方法用于模拟有机相和水相的动力学,以揭示稳定的流量曲线。这种经过实验验证的,均方根偏差约为11μm的计算模型将对微流体SX设计和操作的仿真非常有用,特别是在通过横向扩展寻求工艺强化的情况下。

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