Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic features
In the current study, we focus on the Magneto-Marangoni convective flow of dusty tangent hyperbolic nanofluid (TiO2 – kerosene oil) over a sheet in the presence of thermophoresis particles deposition and gyrotactic microorganisms. Along with activation energy, heat source, variable viscosity, and th...
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De Gruyter
2024-02-01
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Series: | Nanotechnology Reviews |
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Online Access: | https://doi.org/10.1515/ntrev-2023-0190 |
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author | Li Shuguang Ali Kashif Algarni Salem Alqahtani Talal Ahmad Sohail ElSeabee Fayza Abdel Aziz Ullah Hameed Jamshed Wasim Irshad Kashif |
author_facet | Li Shuguang Ali Kashif Algarni Salem Alqahtani Talal Ahmad Sohail ElSeabee Fayza Abdel Aziz Ullah Hameed Jamshed Wasim Irshad Kashif |
author_sort | Li Shuguang |
collection | DOAJ |
description | In the current study, we focus on the Magneto-Marangoni convective flow of dusty tangent hyperbolic nanofluid (TiO2 – kerosene oil) over a sheet in the presence of thermophoresis particles deposition and gyrotactic microorganisms. Along with activation energy, heat source, variable viscosity, and thermal conductivity, the Dufour-Soret effects are taken into consideration. Variable surface tension gradients are used to identify Marangoni convection. Melting of drying wafers, coating flow technology, wielding, crystals, soap film stabilization, and microfluidics all depend on Marangoni driven flow. This study’s major objective is to ascertain the thermal mobility of nanoparticles in a fluid with a kerosene oil base. To improve mass transfer phenomena, we inserted microorganisms into the base fluid. By using similarity transformations, the resulting system of nonlinear partial differential equations is converted into nonlinear ordinary differential equations. Using a shooting technique based on RKF-45th order, the numerical answers are obtained. For various values of the physical parameters, the local density of motile microorganisms, Nusselt number, skin friction, and Sherwood number are calculated. The findings demonstrated that as the Marangoni convection parameter is raised, the velocity profiles of the dust and fluid phases increase, but the microorganisms, concentration, and temperature profiles degrade in both phases. |
first_indexed | 2024-03-07T23:49:30Z |
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id | doaj.art-c74633761e514f23b0438b05b1a44e46 |
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issn | 2191-9097 |
language | English |
last_indexed | 2024-03-07T23:49:30Z |
publishDate | 2024-02-01 |
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spelling | doaj.art-c74633761e514f23b0438b05b1a44e462024-02-19T09:02:24ZengDe GruyterNanotechnology Reviews2191-90972024-02-0113115010.1515/ntrev-2023-0190Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic featuresLi Shuguang0Ali Kashif1Algarni Salem2Alqahtani Talal3Ahmad Sohail4ElSeabee Fayza Abdel Aziz5Ullah Hameed6Jamshed Wasim7Irshad Kashif8School of Computer Science and Technology, Shandong Technology and Business University, Yantai, 264005, ChinaDepartment of Basic Sciences and Humanities, Muhammad Nawaz Sharif University of Engineering and Technology, Multan, 60000, PakistanMechanical Engineering Department, College of Engineering, King Khalid University, Abha 9004, Saudi ArabiaMechanical Engineering Department, College of Engineering, King Khalid University, Abha 9004, Saudi ArabiaDepartment of Basic Sciences and Humanities, Muhammad Nawaz Sharif University of Engineering and Technology, Multan, 60000, PakistanDepartment of Mathematics, College of Science and Arts, Qassim University, Alasyah, 51971, Saudi ArabiaDepartment of Mathematics, COMSATS University Islamabad, Sahiwal Campus, Sahiwal, 57000, PakistanDepartment of Mathematics, Capital University of Science & Technology, Islamabad, 44000, PakistanInterdisciplinary Research Centre for Sustainable Energy Systems (IRC-SES), Research Institute, King Fahd University of Petroleum and Minerals (KFUPM), Dhahran, 31261, Saudi ArabiaIn the current study, we focus on the Magneto-Marangoni convective flow of dusty tangent hyperbolic nanofluid (TiO2 – kerosene oil) over a sheet in the presence of thermophoresis particles deposition and gyrotactic microorganisms. Along with activation energy, heat source, variable viscosity, and thermal conductivity, the Dufour-Soret effects are taken into consideration. Variable surface tension gradients are used to identify Marangoni convection. Melting of drying wafers, coating flow technology, wielding, crystals, soap film stabilization, and microfluidics all depend on Marangoni driven flow. This study’s major objective is to ascertain the thermal mobility of nanoparticles in a fluid with a kerosene oil base. To improve mass transfer phenomena, we inserted microorganisms into the base fluid. By using similarity transformations, the resulting system of nonlinear partial differential equations is converted into nonlinear ordinary differential equations. Using a shooting technique based on RKF-45th order, the numerical answers are obtained. For various values of the physical parameters, the local density of motile microorganisms, Nusselt number, skin friction, and Sherwood number are calculated. The findings demonstrated that as the Marangoni convection parameter is raised, the velocity profiles of the dust and fluid phases increase, but the microorganisms, concentration, and temperature profiles degrade in both phases.https://doi.org/10.1515/ntrev-2023-0190numerical methodsdufour-soret effectsmarangoni convectiongyrotactic microorganismsthermophoretic particle depositiondusty tangent hyperbolic nanofluidnonlinear equations |
spellingShingle | Li Shuguang Ali Kashif Algarni Salem Alqahtani Talal Ahmad Sohail ElSeabee Fayza Abdel Aziz Ullah Hameed Jamshed Wasim Irshad Kashif Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic features Nanotechnology Reviews numerical methods dufour-soret effects marangoni convection gyrotactic microorganisms thermophoretic particle deposition dusty tangent hyperbolic nanofluid nonlinear equations |
title | Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic features |
title_full | Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic features |
title_fullStr | Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic features |
title_full_unstemmed | Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic features |
title_short | Numerical analysis of thermophoretic particle deposition in a magneto-Marangoni convective dusty tangent hyperbolic nanofluid flow – Thermal and magnetic features |
title_sort | numerical analysis of thermophoretic particle deposition in a magneto marangoni convective dusty tangent hyperbolic nanofluid flow thermal and magnetic features |
topic | numerical methods dufour-soret effects marangoni convection gyrotactic microorganisms thermophoretic particle deposition dusty tangent hyperbolic nanofluid nonlinear equations |
url | https://doi.org/10.1515/ntrev-2023-0190 |
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