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蛇形微流控装置内两相流型的计算流体动力学模拟。

Computational fluid dynamics simulation of two-phase flow patterns in a serpentine microfluidic device.

机构信息

Nuclear Fuel Cycle Research School, Nuclear Science and Technology Research Institute, Tehran, Iran.

Department of Polymer Engineering, Faculty of Engineering, Lorestan University, Khorramabad, Iran.

出版信息

Sci Rep. 2023 Jun 10;13(1):9483. doi: 10.1038/s41598-023-36672-6.

Abstract

In the current research work, the flow behavior of a liquid-liquid extraction (LLE) process in a serpentine microchannel was analyzed. The simulation was performed using a 3D model and the results were found to be consistent with experimental data. The impact of the flow of chloroform and water on the flow model was also examined. The data indicate that once the aqua and organic phases flow rates are low and similar, a slug flow pattern is observed. However, as the overall flow rate raises, the slug flow transforms into parallel plug flow or droplet flow. An increment in the aqua flows while maintaining a constant organic phase flow rate results in a transition from slug flow to either droplet flow or plug flow. Finally, the patterns of flow rate in the serpentine micro-channel were characterized and depicted. The results of this study will provide valuable insights into the behavior of two-phase flow patterns in serpentine microfluidic devices. This information can be used to optimize the design of microfluidic devices for various applications. Furthermore, the study will demonstrate the applicability of CFD simulation in investigating the behavior of fluids in microfluidic devices, which can be a cost-effective and efficient alternative to experimental studies.

摘要

在当前的研究工作中,分析了蛇形微通道中液-液萃取(LLE)过程的流动行为。使用 3D 模型进行了模拟,结果与实验数据一致。还检查了氯仿和水的流动对流动模型的影响。数据表明,一旦水相和有机相的流速较低且相似,就会观察到弹状流模式。然而,随着总流速的增加,弹状流会转变为平行塞流或液滴流。在保持有机相流速不变的情况下增加水相流量会导致从弹状流转变为液滴流或塞流。最后,对蛇形微通道中的流速模式进行了特征描述和描绘。这项研究的结果将为蛇形微流控装置中两相流模式的行为提供有价值的见解。这些信息可用于优化各种应用的微流控装置的设计。此外,该研究将展示 CFD 模拟在研究微流控装置中流体行为的适用性,这是一种比实验研究更具成本效益和效率的替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e01/10257669/53bb1627bc33/41598_2023_36672_Fig1_HTML.jpg

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