Numerical study on the characteristics of viscous fingering during the displacement process of non-Newtonian fluid

This study uses numerical methods (ANSYS-Fluent) to investigate the viscous fingering of the displaced phase as a shear-thinning fluid in the classic three-dimensional Hele-Shaw cell. Comparing the behavior of fingerings with different properties on the upper and lower surfaces of a three-dimensiona...

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Published inPloS one Vol. 19; no. 9; p. e0309176
Main Authors Wu, Yu-Ting, Qin, Zhen, Ma, Huaiyu, Lyu, Sung-Ki
Format Journal Article
LanguageEnglish
Published United States Public Library of Science 26.09.2024
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Abstract This study uses numerical methods (ANSYS-Fluent) to investigate the viscous fingering of the displaced phase as a shear-thinning fluid in the classic three-dimensional Hele-Shaw cell. Comparing the behavior of fingerings with different properties on the upper and lower surfaces of a three-dimensional model, it was found that when the upper and lower surfaces are walls, under the combined action of moving contact lines and Saffman-Taylor instability, fingering splitting occurs at the tip, resulting in the appearance of two fingers at the interface. In addition, we have found that interfacial tension has a suppressive effect on short waves. As the interfacial tension increases, the velocity at the advancing tip decreases. Therefore, when the interface tension is 0, viscous fingering displacement reaches the farthest distance. We have also conducted research on the viscous fingering at different temperatures. The results indicate that increasing the temperature leads to a decrease in the viscosity of the displaced phase, making the flow more stable. As the temperature rises, the pressure gradient inside the flow path increases, pushing the viscous fingering further.
AbstractList This study uses numerical methods (ANSYS-Fluent) to investigate the viscous fingering of the displaced phase as a shear-thinning fluid in the classic three-dimensional Hele-Shaw cell. Comparing the behavior of fingerings with different properties on the upper and lower surfaces of a three-dimensional model, it was found that when the upper and lower surfaces are walls, under the combined action of moving contact lines and Saffman-Taylor instability, fingering splitting occurs at the tip, resulting in the appearance of two fingers at the interface. In addition, we have found that interfacial tension has a suppressive effect on short waves. As the interfacial tension increases, the velocity at the advancing tip decreases. Therefore, when the interface tension is 0, viscous fingering displacement reaches the farthest distance. We have also conducted research on the viscous fingering at different temperatures. The results indicate that increasing the temperature leads to a decrease in the viscosity of the displaced phase, making the flow more stable. As the temperature rises, the pressure gradient inside the flow path increases, pushing the viscous fingering further.
This study uses numerical methods (ANSYS-Fluent) to investigate the viscous fingering of the displaced phase as a shear-thinning fluid in the classic three-dimensional Hele-Shaw cell. Comparing the behavior of fingerings with different properties on the upper and lower surfaces of a three-dimensional model, it was found that when the upper and lower surfaces are walls, under the combined action of moving contact lines and Saffman-Taylor instability, fingering splitting occurs at the tip, resulting in the appearance of two fingers at the interface. In addition, we have found that interfacial tension has a suppressive effect on short waves. As the interfacial tension increases, the velocity at the advancing tip decreases. Therefore, when the interface tension is 0, viscous fingering displacement reaches the farthest distance. We have also conducted research on the viscous fingering at different temperatures. The results indicate that increasing the temperature leads to a decrease in the viscosity of the displaced phase, making the flow more stable. As the temperature rises, the pressure gradient inside the flow path increases, pushing the viscous fingering further.This study uses numerical methods (ANSYS-Fluent) to investigate the viscous fingering of the displaced phase as a shear-thinning fluid in the classic three-dimensional Hele-Shaw cell. Comparing the behavior of fingerings with different properties on the upper and lower surfaces of a three-dimensional model, it was found that when the upper and lower surfaces are walls, under the combined action of moving contact lines and Saffman-Taylor instability, fingering splitting occurs at the tip, resulting in the appearance of two fingers at the interface. In addition, we have found that interfacial tension has a suppressive effect on short waves. As the interfacial tension increases, the velocity at the advancing tip decreases. Therefore, when the interface tension is 0, viscous fingering displacement reaches the farthest distance. We have also conducted research on the viscous fingering at different temperatures. The results indicate that increasing the temperature leads to a decrease in the viscosity of the displaced phase, making the flow more stable. As the temperature rises, the pressure gradient inside the flow path increases, pushing the viscous fingering further.
Audience Academic
Author Wu, Yu-Ting
Ma, Huaiyu
Qin, Zhen
Lyu, Sung-Ki
AuthorAffiliation 1 School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo, China
2 School of Mechanical and Aerospace Engineering, Gyeongsang National University, Jinju-si, Republic of Korea
Izmir Katip Celebi University: Izmir Katip Celebi Universitesi, TÜRKIYE
4 Shandong Dayang Mining Equipment Co. LTD, Jining, China
3 School of Mechanical Engineering, Shandong University of Technology, Zibo, China
AuthorAffiliation_xml – name: 2 School of Mechanical and Aerospace Engineering, Gyeongsang National University, Jinju-si, Republic of Korea
– name: Izmir Katip Celebi University: Izmir Katip Celebi Universitesi, TÜRKIYE
– name: 3 School of Mechanical Engineering, Shandong University of Technology, Zibo, China
– name: 1 School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo, China
– name: 4 Shandong Dayang Mining Equipment Co. LTD, Jining, China
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10.1063/5.0088487
10.1103/PhysRevE.96.053102
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10.1038/s41467-019-11939-7
10.1038/ncomms6265
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2024 Wu et al. This is an open access article distributed under the terms of the Creative Commons Attribution License: http://creativecommons.org/licenses/by/4.0/ (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.
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Snippet This study uses numerical methods (ANSYS-Fluent) to investigate the viscous fingering of the displaced phase as a shear-thinning fluid in the classic...
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StartPage e0309176
SubjectTerms Analysis
Efficiency
Hydrodynamics
Interface stability
Interfaces
Liquid chromatography
Mathematical models
Methods
Models, Theoretical
Newtonian fluids
Non Newtonian fluids
Numerical analysis
Numerical methods
Physical Sciences
Pressure gradients
Research and Analysis Methods
Rheology
Shear thinning (liquids)
Simulation
Surface stability
Surface Tension
Symmetry
Taylor instability
Temperature
Tension
Testing
Three dimensional models
Velocity
Viscosity
Viscous flow
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Title Numerical study on the characteristics of viscous fingering during the displacement process of non-Newtonian fluid
URI https://www.ncbi.nlm.nih.gov/pubmed/39325769
https://www.proquest.com/docview/3110279225
https://www.proquest.com/docview/3110400558
https://pubmed.ncbi.nlm.nih.gov/PMC11426425
http://dx.doi.org/10.1371/journal.pone.0309176
Volume 19
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