Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects

It is still not quite apparent how suspended nanoparticles improve heat transmission. Multiple investigations have demonstrated that the aggregation of nanoparticles is a critical step in improving the thermal conductivity of nanofluids. However, the thermal conductivity of the nanofluid would be gr...

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Main Authors: Hakeem A. Otman, Zafar Mahmood, Umar Khan, Sayed M. Eldin, Bandar M. Fadhl, Basim M. Makhdoum
Format: Article
Language:English
Published: Elsevier 2023-06-01
Series:Heliyon
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2405844023047461
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author Hakeem A. Otman
Zafar Mahmood
Umar Khan
Sayed M. Eldin
Bandar M. Fadhl
Basim M. Makhdoum
author_facet Hakeem A. Otman
Zafar Mahmood
Umar Khan
Sayed M. Eldin
Bandar M. Fadhl
Basim M. Makhdoum
author_sort Hakeem A. Otman
collection DOAJ
description It is still not quite apparent how suspended nanoparticles improve heat transmission. Multiple investigations have demonstrated that the aggregation of nanoparticles is a critical step in improving the thermal conductivity of nanofluids. However, the thermal conductivity of the nanofluid would be greatly affected by the fractal dimension of the nanoparticle aggregation. The purpose of this research is to learn how nanoparticle aggregation, joule heating, and a heat source affect the behavior of an ethylene glycol-based nanofluid as it flows over a permeable, heated, stretched vertical Riga plate and through a porous medium. Numerical solutions to the present mathematical model were obtained using Mathematica's Runge-Kutta (RK-IV) with shooting technique. In the stagnation point flow next to a permeable, heated, extending Riga plate, heat transfer processes and interrupted flow phenomena are defined and illustrated by diagrams in the proposed mixed convection, joule heating, and suction variables along a boundary surface. Data visualizations showed how different variables affected temperature and velocity distributions, skin friction coefficient, and the local Nusselt number. The rates of heat transmission and skin friction increased when the values of the suction parameters were raised. The temperature profile and the Nusselt number both rose because of the heat source setting. The increase in skin friction caused by changing the nanoparticle volume fraction from φ=0.0 to φ=0.01 for the without aggregation model was about 7.2% for the case of opposing flow area (λ=−1.0) and 7.5% for the case of aiding flow region (λ=1.0). With the aggregation model, the heat transfer rate decreases by approximately 3.6% for cases with opposing flow regions (λ=−1.0) and 3.7% for cases with assisting flow regions (λ=1.0), depending on the nanoparticle volume fraction and ranging from φ=0.0 to φ=0.01, respectively. Recent findings were validated by comparing them to previously published findings for the same setting. There was substantial agreement between the two sets finding.
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spelling doaj.art-1dbd83969f124b17b5db45a3790cf6b92023-06-26T04:14:11ZengElsevierHeliyon2405-84402023-06-0196e17538Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effectsHakeem A. Otman0Zafar Mahmood1Umar Khan2Sayed M. Eldin3Bandar M. Fadhl4Basim M. Makhdoum5Department of Mathematics, AL-Qunfudhah University College, Umm Al-Qura University, Saudi ArabiaDepartment of Mathematics and Statistics, Hazara University, Mansehra, Pakistan; Corresponding author.Department of Mathematics and Statistics, Hazara University, Mansehra, PakistanCenter of Research, Faculty of Engineering, Future University in Egypt New Cairo 11835, EgyptMechanical Engineering Department, College of Engineering and Islamic Architecture, Umm Al-Qura University, P. O. Box 5555, Makkah 21955, Saudi ArabiaMechanical Engineering Department, College of Engineering and Islamic Architecture, Umm Al-Qura University, P. O. Box 5555, Makkah 21955, Saudi ArabiaIt is still not quite apparent how suspended nanoparticles improve heat transmission. Multiple investigations have demonstrated that the aggregation of nanoparticles is a critical step in improving the thermal conductivity of nanofluids. However, the thermal conductivity of the nanofluid would be greatly affected by the fractal dimension of the nanoparticle aggregation. The purpose of this research is to learn how nanoparticle aggregation, joule heating, and a heat source affect the behavior of an ethylene glycol-based nanofluid as it flows over a permeable, heated, stretched vertical Riga plate and through a porous medium. Numerical solutions to the present mathematical model were obtained using Mathematica's Runge-Kutta (RK-IV) with shooting technique. In the stagnation point flow next to a permeable, heated, extending Riga plate, heat transfer processes and interrupted flow phenomena are defined and illustrated by diagrams in the proposed mixed convection, joule heating, and suction variables along a boundary surface. Data visualizations showed how different variables affected temperature and velocity distributions, skin friction coefficient, and the local Nusselt number. The rates of heat transmission and skin friction increased when the values of the suction parameters were raised. The temperature profile and the Nusselt number both rose because of the heat source setting. The increase in skin friction caused by changing the nanoparticle volume fraction from φ=0.0 to φ=0.01 for the without aggregation model was about 7.2% for the case of opposing flow area (λ=−1.0) and 7.5% for the case of aiding flow region (λ=1.0). With the aggregation model, the heat transfer rate decreases by approximately 3.6% for cases with opposing flow regions (λ=−1.0) and 3.7% for cases with assisting flow regions (λ=1.0), depending on the nanoparticle volume fraction and ranging from φ=0.0 to φ=0.01, respectively. Recent findings were validated by comparing them to previously published findings for the same setting. There was substantial agreement between the two sets finding.http://www.sciencedirect.com/science/article/pii/S2405844023047461Mixed convectionNanoparticles aggregationRiga plateStagnation point flowPorous mediaJoule heating
spellingShingle Hakeem A. Otman
Zafar Mahmood
Umar Khan
Sayed M. Eldin
Bandar M. Fadhl
Basim M. Makhdoum
Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects
Heliyon
Mixed convection
Nanoparticles aggregation
Riga plate
Stagnation point flow
Porous media
Joule heating
title Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects
title_full Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects
title_fullStr Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects
title_full_unstemmed Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects
title_short Mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects
title_sort mathematical analysis of mixed convective stagnation point flow over extendable porous riga plate with aggregation and joule heating effects
topic Mixed convection
Nanoparticles aggregation
Riga plate
Stagnation point flow
Porous media
Joule heating
url http://www.sciencedirect.com/science/article/pii/S2405844023047461
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