Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impact

This study examined the flow of nanoliquid over an extendible surface in a micro-rotational manner. Nanotechnology recently prioritized nanoparticle dispersion in liquids. Nanoparticles increase the thermal conductivity of conventional liquids, which helps generate and transmit energy. The movement...

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Main Authors: Mohamed R. Eid, Wasim Jamshed, B. Shankar Goud, Usman, Rabha W. Ibrahim, Sayed M. El Din, Assmaa Abd-Elmonem, Nesreen Sirelkhtam Elmki Abdalla
Format: Article
Language:English
Published: Elsevier 2023-09-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X23006020
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author Mohamed R. Eid
Wasim Jamshed
B. Shankar Goud
Usman
Rabha W. Ibrahim
Sayed M. El Din
Assmaa Abd-Elmonem
Nesreen Sirelkhtam Elmki Abdalla
author_facet Mohamed R. Eid
Wasim Jamshed
B. Shankar Goud
Usman
Rabha W. Ibrahim
Sayed M. El Din
Assmaa Abd-Elmonem
Nesreen Sirelkhtam Elmki Abdalla
author_sort Mohamed R. Eid
collection DOAJ
description This study examined the flow of nanoliquid over an extendible surface in a micro-rotational manner. Nanotechnology recently prioritized nanoparticle dispersion in liquids. Nanoparticles increase the thermal conductivity of conventional liquids, which helps generate and transmit energy. The movement of energy has been chosen as a primary area of study in this examination via permeable oblique surface. Dufour impacts and thermal radiation have both been used in this investigation. Moreover, the viscous dissipative and magnetism force influences are considered on the porous medium. This work makes use of the popular bvp4c computational technique. A proper similarity conversion is managed to convert the flow expressions into nonlinearly differential equations. In the appearance of charts and tables, the physical values are depicted along with various consequences of material limitations. Based on the findings, we were able to determine that the Dufour and Eckert effects are responsible for the increase in the temperature profile contrary to the permeability of the inclined surface also Because of the angle of the surface, the velocity curve is found to be lower. This fundamental finding will help engineers and scientists manage the fluid flow and enhance sophisticated systems that employ it.
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spelling doaj.art-85d5bf4cd518496cb18ac38578117a692023-09-01T05:01:45ZengElsevierCase Studies in Thermal Engineering2214-157X2023-09-0149103296Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impactMohamed R. Eid0Wasim Jamshed1B. Shankar Goud2 Usman3Rabha W. Ibrahim4Sayed M. El Din5Assmaa Abd-Elmonem6Nesreen Sirelkhtam Elmki Abdalla7Department of Mathematics, Faculty of Science, New Valley University, Al-Kharga, Al-Wadi Al-Gadid, 72511, Egypt; Department of Mathematics, Faculty of Science, Northern Border University, Arar, 1321, Saudi Arabia; Corresponding author. Department of Mathematics, Faculty of Science, New Valley University, Al-Kharga, Al-Wadi Al-Gadid, 72511, Egypt.Department of Mathematics, Capital University of Science and Technology (CUST), Islamabad, 44000, PakistanDepartment of Mathematics, JNTUH College of Engineering Science & Technology, Hyderabad, Telangana State, 500085, IndiaDepartment of Computer Science, National University of Sciences and Technology, Balochistan Campus (NBC), Quetta, 87300, PakistanNear East University, Mathematics Research Center, Department of Mathematics, Near East Boulevard, PC: 99138, Nicosia, Mersin 10, Turkey; Department of Computer Science and Mathematics, Lebanese American University, Beirut, Lebanon; Information and Communication Technology Research Group, Scientific Research Center, Al-Ayen University, Thi-Qar, IraqCenter of Research, Faculty of Engineering, Future University in Egypt, New Cairo, 11835, EgyptDepartment of Mathematics, College of Science, King Khalid University, Abha, Saudi ArabiaDepartment of Mathematics, College of Science, King Khalid University, Abha, Saudi ArabiaThis study examined the flow of nanoliquid over an extendible surface in a micro-rotational manner. Nanotechnology recently prioritized nanoparticle dispersion in liquids. Nanoparticles increase the thermal conductivity of conventional liquids, which helps generate and transmit energy. The movement of energy has been chosen as a primary area of study in this examination via permeable oblique surface. Dufour impacts and thermal radiation have both been used in this investigation. Moreover, the viscous dissipative and magnetism force influences are considered on the porous medium. This work makes use of the popular bvp4c computational technique. A proper similarity conversion is managed to convert the flow expressions into nonlinearly differential equations. In the appearance of charts and tables, the physical values are depicted along with various consequences of material limitations. Based on the findings, we were able to determine that the Dufour and Eckert effects are responsible for the increase in the temperature profile contrary to the permeability of the inclined surface also Because of the angle of the surface, the velocity curve is found to be lower. This fundamental finding will help engineers and scientists manage the fluid flow and enhance sophisticated systems that employ it.http://www.sciencedirect.com/science/article/pii/S2214157X23006020Dufour effectsMicropolar nanofluidPermeable inclined surfaceMHDThermal radiationsPorous medium
spellingShingle Mohamed R. Eid
Wasim Jamshed
B. Shankar Goud
Usman
Rabha W. Ibrahim
Sayed M. El Din
Assmaa Abd-Elmonem
Nesreen Sirelkhtam Elmki Abdalla
Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impact
Case Studies in Thermal Engineering
Dufour effects
Micropolar nanofluid
Permeable inclined surface
MHD
Thermal radiations
Porous medium
title Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impact
title_full Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impact
title_fullStr Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impact
title_full_unstemmed Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impact
title_short Mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and Dufour impact
title_sort mathematical analysis for energy transfer of micropolar magnetic viscous nanofluid flow on permeable inclined surface and dufour impact
topic Dufour effects
Micropolar nanofluid
Permeable inclined surface
MHD
Thermal radiations
Porous medium
url http://www.sciencedirect.com/science/article/pii/S2214157X23006020
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