Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPM

In this essay, the impact of magnetism amplitude on two-dimensional squeezing nanoparticle stream betwixt two equidistant sheets is inspected. The novelty of this research the dimensionless values of various fluids, such as Prandtel number and friction coefficient, influence the investigation of the...

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Main Authors: Reza Fathollahi, As’ad Alizadeh, Parmida Kamaribidkorpeh, Azher M. Abed, Pooya Pasha
Format: Article
Language:English
Published: Elsevier 2023-04-01
Series:Alexandria Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016822007682
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author Reza Fathollahi
As’ad Alizadeh
Parmida Kamaribidkorpeh
Azher M. Abed
Pooya Pasha
author_facet Reza Fathollahi
As’ad Alizadeh
Parmida Kamaribidkorpeh
Azher M. Abed
Pooya Pasha
author_sort Reza Fathollahi
collection DOAJ
description In this essay, the impact of magnetism amplitude on two-dimensional squeezing nanoparticle stream betwixt two equidistant sheets is inspected. The novelty of this research the dimensionless values of various fluids, such as Prandtel number and friction coefficient, influence the investigation of the velocity and heat transfer parameters of aluminum oxide nanofluid. Three mathematical techniques—AGM, HPM, and NUM—have been used in these experiments, and the outcomes and graphs have been computed and compared using these techniques. The non-dimensioned differential equations have been solved using three methods: Akbari-Ganji Method, Homotopy Perturbation Method, and Numeric technique. A comparison is then made between the resolutions of the presented strategies with the numeric approach in a separate chart. We arrived at the generalization that as the Prandtl number increases, the temperature and thermal of the nanofluid flow increase and its concentration drops, and as the Nusselt number declines. This was done by examining the results of the numerical model that was used to solve the equations. As S is increased, it is seen that the temperature drops while the concentration rises. The Nusselt number has increased in value following the growth in permeability value. Displacement increases along with the heat transfer coefficient.
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spelling doaj.art-bc829538379848568359664aedeb4da12023-04-13T04:26:10ZengElsevierAlexandria Engineering Journal1110-01682023-04-0169207219Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPMReza Fathollahi0As’ad Alizadeh1Parmida Kamaribidkorpeh2Azher M. Abed3Pooya Pasha4Department of Engineering, Faculty of Khoy, Urmia University of Technology, IranDepartment of Civil Engineering, College of Engineering, Cihan University-Erbil, Erbil, IraqSchool of Mechanical Engineering, Faculty of Engineering, University of Tehran, Tehran, IranAir Conditioning and Refrigeration Techniques Engineering Department, Al-Mustaqbal University College, Babylon, IraqDepartment of Mechanical Engineering, Mazandaran University of Science and Technology, Babol, Iran; Corresponding author.In this essay, the impact of magnetism amplitude on two-dimensional squeezing nanoparticle stream betwixt two equidistant sheets is inspected. The novelty of this research the dimensionless values of various fluids, such as Prandtel number and friction coefficient, influence the investigation of the velocity and heat transfer parameters of aluminum oxide nanofluid. Three mathematical techniques—AGM, HPM, and NUM—have been used in these experiments, and the outcomes and graphs have been computed and compared using these techniques. The non-dimensioned differential equations have been solved using three methods: Akbari-Ganji Method, Homotopy Perturbation Method, and Numeric technique. A comparison is then made between the resolutions of the presented strategies with the numeric approach in a separate chart. We arrived at the generalization that as the Prandtl number increases, the temperature and thermal of the nanofluid flow increase and its concentration drops, and as the Nusselt number declines. This was done by examining the results of the numerical model that was used to solve the equations. As S is increased, it is seen that the temperature drops while the concentration rises. The Nusselt number has increased in value following the growth in permeability value. Displacement increases along with the heat transfer coefficient.http://www.sciencedirect.com/science/article/pii/S1110016822007682Radiation effectsNusselt numberMagnetohydrodynamic Al2O3-water flowHomotopy perturbation Method (HPM)Akbari-Ganji Method (AGM)Squeezing sheets
spellingShingle Reza Fathollahi
As’ad Alizadeh
Parmida Kamaribidkorpeh
Azher M. Abed
Pooya Pasha
Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPM
Alexandria Engineering Journal
Radiation effects
Nusselt number
Magnetohydrodynamic Al2O3-water flow
Homotopy perturbation Method (HPM)
Akbari-Ganji Method (AGM)
Squeezing sheets
title Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPM
title_full Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPM
title_fullStr Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPM
title_full_unstemmed Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPM
title_short Analyzing the effect of radiation on the unsteady 2D MHD Al2O3-water flow through parallel squeezing sheets by AGM and HPM
title_sort analyzing the effect of radiation on the unsteady 2d mhd al2o3 water flow through parallel squeezing sheets by agm and hpm
topic Radiation effects
Nusselt number
Magnetohydrodynamic Al2O3-water flow
Homotopy perturbation Method (HPM)
Akbari-Ganji Method (AGM)
Squeezing sheets
url http://www.sciencedirect.com/science/article/pii/S1110016822007682
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