Simulation of Single Droplet Deformation and Breakup in Shear Flow by the Phase-Field Lattice Boltzmann Method

IF 3.8 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Baolong Li, Huahai Zhang, Shaotong Fu, Weite Su, Yufei Wang and Limin Wang*, 
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引用次数: 0

Abstract

The deformation and breakup of droplets, which affect droplet size and their size distributions, are of great significance in liquid–liquid two-phase systems. However, the understanding of deformation and breakup for droplets is still limited. In this work, the dynamic behavior of a single droplet under laminar shear flow was investigated by the phase-field lattice Boltzmann method. The effects of the capillary number, Reynolds number, wall confinement, droplet diameter, and viscosity ratio on droplet deformation and breakup were systematically studied. Numerical results found that the same capillary number led to different droplet breakups; thus, another important criterion, the dynamic pressure exerted on droplets, should be considered and quantitatively calculated. The compromise-in-competition between dynamic pressure and cohesive stresses in droplet breakup was thoroughly considered. It was found that droplets tend to break up more rapidly when dynamic pressure significantly exceeds cohesive stresses, which agreed well with the simulated results by the phase-field lattice Boltzmann model.

Abstract Image

液滴的变形和破裂会影响液滴的大小及其大小分布,在液液两相系统中具有重要意义。然而,人们对液滴变形和破裂的了解仍然有限。本研究采用相场晶格玻尔兹曼法研究了单个液滴在层流剪切流下的动态行为。系统研究了毛细管数、雷诺数、壁面约束、液滴直径和粘度比对液滴变形和破裂的影响。数值结果发现,相同的毛细管数会导致不同的液滴破裂;因此,应考虑并定量计算另一个重要标准,即施加在液滴上的动态压力。对液滴破裂过程中动压和内聚应力之间的折衷竞争进行了深入研究。研究发现,当动压明显超过内聚应力时,液滴会更快地破裂,这与相场晶格玻尔兹曼模型的模拟结果非常吻合。
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来源期刊
Industrial & Engineering Chemistry Research
Industrial & Engineering Chemistry Research 工程技术-工程:化工
CiteScore
7.40
自引率
7.10%
发文量
1467
审稿时长
2.8 months
期刊介绍: ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.
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