Physical and Numerical Experimentation of Water Droplet Collision on a Wall: A Comparison between PLIC and HRIC Schemes for the VOF Transport Equation with High-Speed Imaging

IF 1.8 Q3 MECHANICS Fluids Pub Date : 2024-05-16 DOI:10.3390/fluids9050117
Bruno Silva de de Lima, Martin Sommerfeld, Francisco José de Souza
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Abstract

Liquid films are often found in engineering applications with thicknesses ranging from micrometer scales to large scales with a wide range of applications. To optimize such systems, researchers have dedicated themselves to the development of new techniques. To further contribute to this development, the objective of this work is to present the results of the collision of water droplets on a wall by means of experimentation and numerical simulations. For physical experimentation, an injector is used to generate a chain of water droplets that collide with the opposite wall, forming a liquid film. Images of the droplets were obtained using two high-speed recording cameras. The results for different droplet sizes and impact angles are presented and the relationship between the momentum parameter and non-dimensional pool size was established. Modeling such processes is a common challenge in engineering, with different techniques having their advantages and limitations. The simulations in this work were run using the volume of fluid method, which consists of solving a transport equation for the volume fraction of each considered fluid. A correlation was found between the surface tension to momentum transport ratio, Scd, and the non-dimensional pool size for different droplet sizes and impact angles. Regions where partial depositions were most likely to occur were found via physical experiments.
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水滴在墙壁上碰撞的物理和数值实验:高速成像 VOF 传输方程的 PLIC 和 HRIC 方案比较
液体薄膜在工程应用中经常出现,其厚度从微米级到大尺度不等,应用范围十分广泛。为了优化此类系统,研究人员致力于开发新技术。为了进一步推动这一发展,这项工作的目的是通过实验和数值模拟,展示水滴在壁上碰撞的结果。在物理实验中,使用喷射器产生水滴链,水滴与对面的墙壁碰撞,形成液膜。使用两台高速记录相机获得了水滴的图像。结果显示了不同水滴大小和碰撞角度下的结果,并确定了动量参数与非线性水池大小之间的关系。此类过程的建模是工程学中的一项常见挑战,不同的技术各有其优势和局限性。本研究采用流体体积法进行模拟,该方法包括求解每种考虑流体体积分数的传输方程。在不同液滴大小和撞击角度下,表面张力与动量传输比 Scd 与非线性水池大小之间存在相关性。通过物理实验找到了最有可能发生部分沉积的区域。
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来源期刊
Fluids
Fluids Engineering-Mechanical Engineering
CiteScore
3.40
自引率
10.50%
发文量
326
审稿时长
12 weeks
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