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首页> 外文期刊>International Journal of Modern Physics, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Numerical simulation and experiment of droplet formation in circular cross-section micro-channels
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Numerical simulation and experiment of droplet formation in circular cross-section micro-channels

机译:圆形横截面微通道中液滴形成的数值模拟与实验

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In recent decades, microfluidics in biological applications have experienced significant growth due to their advantages of small volume, low cost, short reaction time and high throughput. Almost all cross-section shapes of micro-channels in microfluidic chips are rectangular or triangular by the existing chip fabricating technologies, including hot embossing, lithography, etching and injection molding, etc. However, compared with the above micro-channel shapes, the circular one has the advantages in aspects of fluid flow, droplet generating, heat transfer and its replication for blood vessels. This paper presents a T-junction droplet microfluidic chip with circular cross-section micro-channels. The effect of micro-channel wettability, interfacial tension, velocity and flow rate of continuous phase on droplet size are simulated and mechanism of droplets generating process is explored. Comparing with continuous phase viscosity and interfacial tension, flow rate plays a decisive role in determining the droplet size which is in the range of 100-350 mu m according to the simulation result. The Capillary number is affected by the above three parameters and an estimating numerical method for generated droplet size was proposed according to the above simulation results and calculated by Capillary number. The droplets, the sizes of which were in the range of 20-400 mu m, were produced by varying the parameters of water and oil flow rates in the designed T-junction droplet microfluidic chip with circular cross-section micro-channels.
机译:近几十年来,生物应用中的微流体因其体积小,成本短,反应时间短,吞吐量短的优点而产生显着增长。微流体芯片中的微通道的几乎所有横截面形状都是矩形或三角形的现有芯片制造技术,包括热压花,光刻,蚀刻和注塑等,但是与上述微通道形状相比,圆形一种在流体流动,液滴产生,传热及其对血管复制方面具有优势。本文介绍了具有圆形横截面微通道的T型接线液滴微流体芯片。模拟微通道润湿性,界面张力,速度和流速对液滴尺寸的效果,并探讨了液滴产生过程的机制。与连续相粘度和界面张力相比,流速在根据模拟结果确定液滴尺寸范围内的液滴尺寸在100-350μm的范围内起作用。毛细数量受上述三个参数的影响,并且根据上述模拟结果提出了估计产生的液滴尺寸的数值方法,并通过毛细数字计算。液滴,其尺寸在20-400μm的范围内,通过改变设计的T型结液体微流体芯片中的水和油流速与圆形横截面微通道来制备。

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