Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann method

In this study, a free energy model of the Lattice Boltzmann Method (LBM) is performed to simulate the motion, deformation, and decomposition of a droplet in the presence of electrohydrodynamic flow in porous media. To simulate the multi-phase flow in the presence of dielectric current by using the L...

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Main Authors: Yu-Liang Sun, Amin Rahmani, Tareq Saeed, Majid Zarringhalam, Muhammad Ibrahim, Davood Toghraie
Format: Article
Language:English
Published: Elsevier 2022-01-01
Series:Alexandria Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016821004038
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spelling doaj-e2f2102d1ce543d2a006e31dfe5e4ba72021-08-02T04:39:10ZengElsevierAlexandria Engineering Journal1110-01682022-01-01611631646Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann methodYu-Liang Sun0Amin Rahmani1Tareq Saeed2Majid Zarringhalam3Muhammad Ibrahim4Davood Toghraie5School of Science, Huzhou University, Huzhou 313000, PR ChinaDepartment Mechanical Engineering, Isfahan University of Technology, Isfahan 84156, IranNonlinear Analysis and Applied Mathematics (NAAM)-Research Group, Department of Mathematics, Faculty of Science, King Abdulaziz University, P.O. Box 80203, Jeddah 21589, Saudi ArabiaDepartment of Mechanical Engineering, South Tehran Branch, Islamic Azad University, Tehran, IranSchool of Mathematics and Physics, University of Science and Technology Beijing, Beijing 100083, ChinaDepartment of Mechanical Engineering, Khomeinishahr Branch, Islamic Azad University, Khomeinishahr, Iran; Corresponding author.In this study, a free energy model of the Lattice Boltzmann Method (LBM) is performed to simulate the motion, deformation, and decomposition of a droplet in the presence of electrohydrodynamic flow in porous media. To simulate the multi-phase flow in the presence of dielectric current by using the LBM, three distribution functions are used. To implement the free energy mode of HCZ, two equilibrium distribution functions are considered, one for solving the Navier-Stokes equation and the other for solving the Cahn-Hillard equation. Initially, the ability of the code to apply surface tension is tested by using the Laplace law and the droplet release test. Results show that there is a linear relation is between surface tension and κ which is a parameter in the HCZ model. The results show that the present numerical program is capable of modeling the regulated surface tension force as well. Then, the Rayleigh–Taylor instability simulation is used to evaluate the code's ability to apply volume forces. Also, the obtained results of the written numerical program are in good agreement with the numerical results of other valid references. Obtained results show that the difference between droplet deformation measured by numerical method and Taylor function is less than 2%. After modeling the droplet motions to investigate the droplet deformation, two electric fields are inserted into the droplet with reverse directions of each other. Then, by various tests, it is shown that at a given potential difference the droplet breaks down after much deformation and is divided into smaller droplets. The decomposition of droplets in a pre-mixed emulsion is a common technique to produce the monodisperse droplets. The presence of monodisperse droplets in an emulsion improves the physical properties of polymer from the science expert's perspective. The results of this study are used to improve the quality of polymer components.http://www.sciencedirect.com/science/article/pii/S1110016821004038Lattice Boltzmann methodMulti-phase flowElectrohydrodynamic flowDroplet deformation and decompositionPorous media
collection DOAJ
language English
format Article
sources DOAJ
author Yu-Liang Sun
Amin Rahmani
Tareq Saeed
Majid Zarringhalam
Muhammad Ibrahim
Davood Toghraie
spellingShingle Yu-Liang Sun
Amin Rahmani
Tareq Saeed
Majid Zarringhalam
Muhammad Ibrahim
Davood Toghraie
Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann method
Alexandria Engineering Journal
Lattice Boltzmann method
Multi-phase flow
Electrohydrodynamic flow
Droplet deformation and decomposition
Porous media
author_facet Yu-Liang Sun
Amin Rahmani
Tareq Saeed
Majid Zarringhalam
Muhammad Ibrahim
Davood Toghraie
author_sort Yu-Liang Sun
title Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann method
title_short Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann method
title_full Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann method
title_fullStr Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann method
title_full_unstemmed Simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice Boltzmann method
title_sort simulation of deformation and decomposition of droplets exposed to electro-hydrodynamic flow in a porous media by lattice boltzmann method
publisher Elsevier
series Alexandria Engineering Journal
issn 1110-0168
publishDate 2022-01-01
description In this study, a free energy model of the Lattice Boltzmann Method (LBM) is performed to simulate the motion, deformation, and decomposition of a droplet in the presence of electrohydrodynamic flow in porous media. To simulate the multi-phase flow in the presence of dielectric current by using the LBM, three distribution functions are used. To implement the free energy mode of HCZ, two equilibrium distribution functions are considered, one for solving the Navier-Stokes equation and the other for solving the Cahn-Hillard equation. Initially, the ability of the code to apply surface tension is tested by using the Laplace law and the droplet release test. Results show that there is a linear relation is between surface tension and κ which is a parameter in the HCZ model. The results show that the present numerical program is capable of modeling the regulated surface tension force as well. Then, the Rayleigh–Taylor instability simulation is used to evaluate the code's ability to apply volume forces. Also, the obtained results of the written numerical program are in good agreement with the numerical results of other valid references. Obtained results show that the difference between droplet deformation measured by numerical method and Taylor function is less than 2%. After modeling the droplet motions to investigate the droplet deformation, two electric fields are inserted into the droplet with reverse directions of each other. Then, by various tests, it is shown that at a given potential difference the droplet breaks down after much deformation and is divided into smaller droplets. The decomposition of droplets in a pre-mixed emulsion is a common technique to produce the monodisperse droplets. The presence of monodisperse droplets in an emulsion improves the physical properties of polymer from the science expert's perspective. The results of this study are used to improve the quality of polymer components.
topic Lattice Boltzmann method
Multi-phase flow
Electrohydrodynamic flow
Droplet deformation and decomposition
Porous media
url http://www.sciencedirect.com/science/article/pii/S1110016821004038
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