Experimental investigation of dynamics of primary and satellite droplet formation

被引:0
作者
Shengchang Tang
Fulei Wang
Zhipeng Qin
Mengchuang Yin
Caijie Li
Yongchao Cai
Xiangfu Wei
Hui You
机构
[1] Guangxi University,School of Mechanical Engineering
来源
Journal of the Brazilian Society of Mechanical Sciences and Engineering | 2023年 / 45卷
关键词
Low Weber number; Drop formation; Contact angle; Liquid filament; Satellite droplet;
D O I
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中图分类号
学科分类号
摘要
In this paper, the dynamics of drop formation at low Weber numbers (We = ρV2D/σ\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\rho V^{2} D/\sigma$$\end{document}) were investigated experimentally. Deionized (DI) water drops dripping from nozzles were photographed using a high-speed camera. The studied drop parameters mainly include the limit length of the filament, the thickness of the neck, the position of the neck, the size of the drop and the satellite droplet, and the movement trend of the satellite droplet. We found that the wettability of the needle nozzle mainly influences the dynamic dripping process of drops by changing the diameter of the contact circle of the three phases of gas, liquid, and solid. The transition of the satellite droplet behavior with the flow velocity and the diameter of the contact circle was further explored, and it was found that there are multiple critical transition states in the experimental parameter space. The change in the movement trend of satellite droplets is the result of the competition between surface tension and gravity. It is also affected by the flow rate, droplet oscillation, and interaction time.
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[1]  
Sohrabi S(2020)Droplet microfluidics: fundamentals and its advanced applications RSC Adv 10 27560-27574
[2]  
Moraveji MK(2019)Pickering emulsions: preparation processes, key parameters governing their properties and potential for pharmaceutical applications J Control Release 309 302-332
[3]  
Albert C(2012)Digital microfluidics Annu Rev Anal Chem 5 413-440
[4]  
Beladjine M(2008)Droplet microfluidics Lab Chip 8 198-557
[5]  
Tsapis N(2020)Gasoline direct injection engines—a review of latest technologies and trends. Part 1: spray breakup process Fuel 265 116948-695
[6]  
Fattal E(2020)Review of digital printing technologies for electronic materials Flex Print Electron 5 043003-930
[7]  
Agnely F(2020)Development of 3D bioprinting: from printing methods to biomedical applications Asian J Pharm Sci 15 529-834
[8]  
Huang N(2020)Tiny water droplet with huge power Sci Bull (Beijing) 65 693-410
[9]  
Choi K(2018)Printing with satellite droplets Small 14 1802583-653
[10]  
Ng AHC(2022)Suppression and utilization of satellite droplets for inkjet printing: a review Processes 10 932-3598