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Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition

The present research focuses on the significance of thermophoretic particle deposition on a ZnO–SAE50 nanolubricant flow in a stretchable/shrinkable convergent/divergent channel in the presence of an applied magnetic field and nonlinear heat radiation. A parameter in the governing differential equat...

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Autores principales: B., Shilpa, Srilatha, Pudhari, Khan, Umair, R., Naveen Kumar, Ben Ahmed, Samia, Kumar, Raman
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10662241/
https://www.ncbi.nlm.nih.gov/pubmed/38024299
http://dx.doi.org/10.1039/d3na00816a
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author B., Shilpa
Srilatha, Pudhari
Khan, Umair
R., Naveen Kumar
Ben Ahmed, Samia
Kumar, Raman
author_facet B., Shilpa
Srilatha, Pudhari
Khan, Umair
R., Naveen Kumar
Ben Ahmed, Samia
Kumar, Raman
author_sort B., Shilpa
collection PubMed
description The present research focuses on the significance of thermophoretic particle deposition on a ZnO–SAE50 nanolubricant flow in a stretchable/shrinkable convergent/divergent channel in the presence of an applied magnetic field and nonlinear heat radiation. A parameter in the governing differential equations and wall boundary conditions defines the physical mechanism of the model. The Galerkin finite element method, combined with similarity transformation, is adopted to solve the governing equations. The Levenberg–Marquardt backpropagating algorithm of an artificial neural network model forecasts heat and mass transfer properties. The results reveal that by stretching/shrinking the walls enough, the classical flow and heat properties are significantly affected. The stretching of the convergent or divergent channel is observed to increase the velocity profiles, whilst shrinking results in backflow regions. In terms of the temperature field, stretching causes more heat to be produced in the flow; nevertheless, the thermal layer is decreased and cooling is attained by channel shrinkage, which may have important technical implications.
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spelling pubmed-106622412023-11-07 Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition B., Shilpa Srilatha, Pudhari Khan, Umair R., Naveen Kumar Ben Ahmed, Samia Kumar, Raman Nanoscale Adv Chemistry The present research focuses on the significance of thermophoretic particle deposition on a ZnO–SAE50 nanolubricant flow in a stretchable/shrinkable convergent/divergent channel in the presence of an applied magnetic field and nonlinear heat radiation. A parameter in the governing differential equations and wall boundary conditions defines the physical mechanism of the model. The Galerkin finite element method, combined with similarity transformation, is adopted to solve the governing equations. The Levenberg–Marquardt backpropagating algorithm of an artificial neural network model forecasts heat and mass transfer properties. The results reveal that by stretching/shrinking the walls enough, the classical flow and heat properties are significantly affected. The stretching of the convergent or divergent channel is observed to increase the velocity profiles, whilst shrinking results in backflow regions. In terms of the temperature field, stretching causes more heat to be produced in the flow; nevertheless, the thermal layer is decreased and cooling is attained by channel shrinkage, which may have important technical implications. RSC 2023-11-07 /pmc/articles/PMC10662241/ /pubmed/38024299 http://dx.doi.org/10.1039/d3na00816a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
B., Shilpa
Srilatha, Pudhari
Khan, Umair
R., Naveen Kumar
Ben Ahmed, Samia
Kumar, Raman
Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition
title Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition
title_full Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition
title_fullStr Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition
title_full_unstemmed Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition
title_short Numerical study of thermal and solutal advancements in ZnO–SAE50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition
title_sort numerical study of thermal and solutal advancements in zno–sae50 nanolubricant flow past a convergent/divergent channel with the effects of thermophoretic particle deposition
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10662241/
https://www.ncbi.nlm.nih.gov/pubmed/38024299
http://dx.doi.org/10.1039/d3na00816a
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