Theoretical and Numerical Investigation of Liquid-Gas Interface Location of Capillary Driven Flow During the Time Throughout Circular Microchannels

Arshya Bamshad, A. Nikfarjam, M. Sabour, H. Raji
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引用次数: 8

Abstract

The main aim of this study is to find the best, most rapid, and the most accurate numerical method to find the liquid-gas interface of capillary driven flow during the time in circular Microchannels by using COMSOL Multiphysics software. Capillary driven flow by eliminating micropumps or any physical pressure gradient generators can make the microfluidic devices cheaper and more usable. Hence, by using this two-phase flow, the final costs of lots of microfluidic devices and lab-on-a-chip can significantly be decreased and help them to be commercialized. The first step to employing the capillary flow in these devices is the simulation of this flow inside the microchannels. One of the most common and valid software for this work is COMSOL Multiphysics; this fact reveals the importance of this study. In this research study, simulation results obtained by using two possible numerical methods in this software, for capillary flows of water and ethanol in two different circular micro channels, verified and compared with four other methods, which verified experimentally before. Finally, the most accurate and time-saving numerical method of this software will be specified. This appropriate technique can contribute to simulate microfluidic and lab-on-a-chip devices, which are made of different mechanical and electrical parts, in COMSOL Multiphysics software by choosing the best method.
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毛细管驱动流动在圆形微通道内液气界面位置的理论与数值研究
本研究的主要目的是利用COMSOL Multiphysics软件,寻找最佳、最快速、最准确的计算圆形微通道内毛细管驱动流动时间内液气界面的数值方法。通过消除微泵或任何物理压力梯度发生器,毛细管驱动流可以使微流体装置更便宜,更实用。因此,通过使用这种两相流,可以大大降低许多微流控设备和芯片实验室的最终成本,并有助于它们的商业化。在这些设备中使用毛细管流动的第一步是模拟微通道内的毛细管流动。最常用和有效的软件之一是COMSOL Multiphysics;这一事实揭示了这项研究的重要性。在本研究中,本软件采用两种可能的数值方法对水和乙醇在两种不同的圆形微通道中的毛细管流动进行了模拟,并与之前实验验证的其他四种方法进行了验证和比较。最后给出了该软件最精确、最省时的数值计算方法。在COMSOL Multiphysics软件中,通过选择合适的方法,可以模拟由不同机械和电气部件组成的微流体和片上实验室设备。
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