Hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation

The effects of Hall current and Joule heating on flow and heat transfer of a nanofluid along a vertical cone in the presence of thermal radiation is considered. The flow is subjected to a uniform strong transverse magnetic field normal to the cone surface. Similarity transformations are used to conv...

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Main Authors: Abbas Wael, Sayed Emad A.
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2017-01-01
Series:Thermal Science
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361700083A.pdf
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spelling doaj-7a612f4e7f434909a9bbf35c8a4e69a02021-01-02T12:19:49ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632017-01-01216 Part A2609262010.2298/TSCI160413083A0354-98361700083AHall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiationAbbas Wael0Sayed Emad A.1Arab Academy for Science, Technology and Maritime Transport, College of Engineering and Technology, Basic and Applied Science Department, Cairo, EgyptHelwan University, Faculty of Engineering-Mattaria, Physics and Engineering Mathematics Department, Cairo, EgyptThe effects of Hall current and Joule heating on flow and heat transfer of a nanofluid along a vertical cone in the presence of thermal radiation is considered. The flow is subjected to a uniform strong transverse magnetic field normal to the cone surface. Similarity transformations are used to convert the non-linear boundary- layer equations for momentum and energy equations to a system of non-linear ordinary differential equations which are then solved numerically with appropriate boundary conditions. The solutions are presented in terms of local skin friction, local Nusselt number, velocity, and temperature profiles for values of magnetic parameter, Hall parameter, Eckert number, radiation parameter, and nanoparticle volume fraction. Comparison of the numerical results made with previously published results under the special cases, the results are found to be in an excellent agreement. It is also found that, nanoparticle volume fraction parameter and types of nanofluid play an important role to significantly determine the flow behavior.http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361700083A.pdfheat transfervertical coneHall currentthermal radiationnanofluid
collection DOAJ
language English
format Article
sources DOAJ
author Abbas Wael
Sayed Emad A.
spellingShingle Abbas Wael
Sayed Emad A.
Hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation
Thermal Science
heat transfer
vertical cone
Hall current
thermal radiation
nanofluid
author_facet Abbas Wael
Sayed Emad A.
author_sort Abbas Wael
title Hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation
title_short Hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation
title_full Hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation
title_fullStr Hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation
title_full_unstemmed Hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation
title_sort hall current and joule heating effects on free convection flow of a nanofluid over a vertical cone in presence of thermal radiation
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2017-01-01
description The effects of Hall current and Joule heating on flow and heat transfer of a nanofluid along a vertical cone in the presence of thermal radiation is considered. The flow is subjected to a uniform strong transverse magnetic field normal to the cone surface. Similarity transformations are used to convert the non-linear boundary- layer equations for momentum and energy equations to a system of non-linear ordinary differential equations which are then solved numerically with appropriate boundary conditions. The solutions are presented in terms of local skin friction, local Nusselt number, velocity, and temperature profiles for values of magnetic parameter, Hall parameter, Eckert number, radiation parameter, and nanoparticle volume fraction. Comparison of the numerical results made with previously published results under the special cases, the results are found to be in an excellent agreement. It is also found that, nanoparticle volume fraction parameter and types of nanofluid play an important role to significantly determine the flow behavior.
topic heat transfer
vertical cone
Hall current
thermal radiation
nanofluid
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361700083A.pdf
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