Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat source

Magnetohydrodynamic flow of nanomaterial by a stretched boundary is addressed. Entropy generation is examined. Variable fluid characteristics are considered. Buongiorno thermal enhancement model in presence of Darcy-Forchheimer expression is addressed. Nonlinear thermal radiation, non-uniform heat s...

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Main Authors: Sohail A. Khan, T. Hayat, A. Alsaedi
Format: Article
Language:English
Published: Elsevier 2024-02-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X24001059
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author Sohail A. Khan
T. Hayat
A. Alsaedi
author_facet Sohail A. Khan
T. Hayat
A. Alsaedi
author_sort Sohail A. Khan
collection DOAJ
description Magnetohydrodynamic flow of nanomaterial by a stretched boundary is addressed. Entropy generation is examined. Variable fluid characteristics are considered. Buongiorno thermal enhancement model in presence of Darcy-Forchheimer expression is addressed. Nonlinear thermal radiation, non-uniform heat source and dissipation are considered in thermal expression. Slip conditions in chemically reactive flow are addressed. Here Maxwell slip velocity and Smoluchowski slip temperature are under consideration. Impact of Arrhenius activation energy is deliberated. Optimal homotopy analysis approach (OHAM) is utilized for construction of convergent solutions. Graphical description for liquid motion, entropy rate, concentration and temperature are examined. Higher magnetic variable has reverse effect on entropy rate and velocity. Higher temperature and entropy rate are seen for radiation parameter. Higher temperature dependent conductivity parameter has opposite effect on liquid motion and entropy rate. Liquid flow has same impact for both porosity and velocity slip parameters. Larger thermal slip variable lead to decrease thermal distribution while reverse impact holds for heat source. Concentration has opposite trend through both random and thermophoresis parameters. An enhancement in thermal distribution and entropy rate are seen through variable thermal conductivity. An intensification in entropy rate has been noticed through concentration dependent conductivity variable. The considered configuration has relevance for detecting cooling towers, polymer extrusion, spinning of filaments, cable coating and metallurgical processes.
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spelling doaj.art-d13de29672b8430fb4aaead176708d192024-02-14T05:17:16ZengElsevierCase Studies in Thermal Engineering2214-157X2024-02-0154104074Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat sourceSohail A. Khan0T. Hayat1A. Alsaedi2Department of Mathematics, Quaid-I-Azam University 45320, Islamabad 44000, Pakistan; Corresponding author.Department of Mathematics, Quaid-I-Azam University 45320, Islamabad 44000, PakistanNonlinear Analysis and Applied Mathematics (NAAM) Research Group, Faculty of Science, King Abdulaziz University, P. O. Box 80207, Jeddah 21589, Saudi ArabiaMagnetohydrodynamic flow of nanomaterial by a stretched boundary is addressed. Entropy generation is examined. Variable fluid characteristics are considered. Buongiorno thermal enhancement model in presence of Darcy-Forchheimer expression is addressed. Nonlinear thermal radiation, non-uniform heat source and dissipation are considered in thermal expression. Slip conditions in chemically reactive flow are addressed. Here Maxwell slip velocity and Smoluchowski slip temperature are under consideration. Impact of Arrhenius activation energy is deliberated. Optimal homotopy analysis approach (OHAM) is utilized for construction of convergent solutions. Graphical description for liquid motion, entropy rate, concentration and temperature are examined. Higher magnetic variable has reverse effect on entropy rate and velocity. Higher temperature and entropy rate are seen for radiation parameter. Higher temperature dependent conductivity parameter has opposite effect on liquid motion and entropy rate. Liquid flow has same impact for both porosity and velocity slip parameters. Larger thermal slip variable lead to decrease thermal distribution while reverse impact holds for heat source. Concentration has opposite trend through both random and thermophoresis parameters. An enhancement in thermal distribution and entropy rate are seen through variable thermal conductivity. An intensification in entropy rate has been noticed through concentration dependent conductivity variable. The considered configuration has relevance for detecting cooling towers, polymer extrusion, spinning of filaments, cable coating and metallurgical processes.http://www.sciencedirect.com/science/article/pii/S2214157X24001059Variable fluid propertiesNon-uniform heat sourceMaxwell slip velocityEntropy generation and Smoluchowski slip temperature
spellingShingle Sohail A. Khan
T. Hayat
A. Alsaedi
Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat source
Case Studies in Thermal Engineering
Variable fluid properties
Non-uniform heat source
Maxwell slip velocity
Entropy generation and Smoluchowski slip temperature
title Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat source
title_full Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat source
title_fullStr Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat source
title_full_unstemmed Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat source
title_short Effectiveness of Maxwell velocity and smoluchowski thermal slip constraints in presence of non-uniform heat source
title_sort effectiveness of maxwell velocity and smoluchowski thermal slip constraints in presence of non uniform heat source
topic Variable fluid properties
Non-uniform heat source
Maxwell slip velocity
Entropy generation and Smoluchowski slip temperature
url http://www.sciencedirect.com/science/article/pii/S2214157X24001059
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