Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface

The Tiwari-Das nanofluid model has a serious anomaly, while estimating the mass and energy transport rates. Due to the absence of clear correlations and the fact that desirable parameters fluctuate with the characteristics of nanofluids, make it unable for precise predictions. To overcome on this di...

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Main Authors: Mohamed Boujelbene, Sohail Rehman, Sultan Alqahtani, Hashim, Sultan Alshehery
Format: Article
Language:English
Published: Elsevier 2024-03-01
Series:Ain Shams Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2090447923004690
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author Mohamed Boujelbene
Sohail Rehman
Sultan Alqahtani
Hashim
Sultan Alshehery
author_facet Mohamed Boujelbene
Sohail Rehman
Sultan Alqahtani
Hashim
Sultan Alshehery
author_sort Mohamed Boujelbene
collection DOAJ
description The Tiwari-Das nanofluid model has a serious anomaly, while estimating the mass and energy transport rates. Due to the absence of clear correlations and the fact that desirable parameters fluctuate with the characteristics of nanofluids, make it unable for precise predictions. To overcome on this dispute the Tiwari-Das model is coupled with Buongiorno's theory in the current model. The Eyring-Powell fluid with suspended Zinc oxide (ZnO) and iron (Fe2O3) keeping different volume percentage of nanoparticles are used to create a fluid mixture. The flow originates due to stretching sheet. The flow is subjected to upright Lorentz forces, while binary chemical species are consider on the sheet surface and far field. Furthermore, the ratio, reaction diffusion and frictional dissipation are also considered. The dimensionless governing equations are reduced to first order employing shooting mechanism and solved computationally using RK-4 approach. The outcomes for frictional coefficient, energy and mass transfer rate of hybrid nanoparticles and chemical species are reviewed using various statistical charts. From the computational outcomes for drag coefficient, we can adjudged that the frictional coefficient diminished on escalating fluid primary parameter and magnetic number. Increased percentage of nanoparticles, also detract the frictional coefficient. The mechanism of slip for nanoparticles are encouraging for energy transfer. The enhancement of energy and mass is significant with diffusion ratio parameter Nbt. The influence of Lewis number is diminishing function of mass transport rate. The effect of homogenous reaction is encouraging for mass transport, while the heterogeneous and Schmidt number are diminishing.
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spelling doaj.art-7e2e1f27b9c9407ea8d3f19e9baf7e342024-03-21T05:36:30ZengElsevierAin Shams Engineering Journal2090-44792024-03-01153102580Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surfaceMohamed Boujelbene0Sohail Rehman1Sultan Alqahtani2 Hashim3Sultan Alshehery4Industrial Engineering Department, College of Engineering, Ha'il University, Saudi ArabiaDepartment of Mathematics, Islamia College Peshawar, 25000 Peshawar, Pakistan; Corresponding author.College of Engineering, Mechanical Engineering Department, King Khalid University, Abha, Saudi ArabiaDepartment of Mathematics & Statistics, The University of Haripur, 22620 Haripur, PakistanCollege of Engineering, Mechanical Engineering Department, King Khalid University, Abha, Saudi ArabiaThe Tiwari-Das nanofluid model has a serious anomaly, while estimating the mass and energy transport rates. Due to the absence of clear correlations and the fact that desirable parameters fluctuate with the characteristics of nanofluids, make it unable for precise predictions. To overcome on this dispute the Tiwari-Das model is coupled with Buongiorno's theory in the current model. The Eyring-Powell fluid with suspended Zinc oxide (ZnO) and iron (Fe2O3) keeping different volume percentage of nanoparticles are used to create a fluid mixture. The flow originates due to stretching sheet. The flow is subjected to upright Lorentz forces, while binary chemical species are consider on the sheet surface and far field. Furthermore, the ratio, reaction diffusion and frictional dissipation are also considered. The dimensionless governing equations are reduced to first order employing shooting mechanism and solved computationally using RK-4 approach. The outcomes for frictional coefficient, energy and mass transfer rate of hybrid nanoparticles and chemical species are reviewed using various statistical charts. From the computational outcomes for drag coefficient, we can adjudged that the frictional coefficient diminished on escalating fluid primary parameter and magnetic number. Increased percentage of nanoparticles, also detract the frictional coefficient. The mechanism of slip for nanoparticles are encouraging for energy transfer. The enhancement of energy and mass is significant with diffusion ratio parameter Nbt. The influence of Lewis number is diminishing function of mass transport rate. The effect of homogenous reaction is encouraging for mass transport, while the heterogeneous and Schmidt number are diminishing.http://www.sciencedirect.com/science/article/pii/S2090447923004690Tiwari-Das and Buongiorno's modelNon-Newtonian fluidHeat and mass transferStretching sheet problemChemical species
spellingShingle Mohamed Boujelbene
Sohail Rehman
Sultan Alqahtani
Hashim
Sultan Alshehery
Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface
Ain Shams Engineering Journal
Tiwari-Das and Buongiorno's model
Non-Newtonian fluid
Heat and mass transfer
Stretching sheet problem
Chemical species
title Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface
title_full Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface
title_fullStr Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface
title_full_unstemmed Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface
title_short Anomalous enhancement of energy transfer using two-phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface
title_sort anomalous enhancement of energy transfer using two phase hybrid nanofluid across an elongational sheet with binary chemical species on the sheet surface
topic Tiwari-Das and Buongiorno's model
Non-Newtonian fluid
Heat and mass transfer
Stretching sheet problem
Chemical species
url http://www.sciencedirect.com/science/article/pii/S2090447923004690
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