Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno model

The three-dimensional steady flow of an incompressible 25 nm water-based copper nanoliquid over a bi-directional elongated surface with convective thermal boundary condition is studied. This work may meet various thermal engineering applications for instance thermal energy exchangers, solar energy c...

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Main Authors: Puneet Rana, N. Srikantha, Taseer Muhammad, Gaurav Gupta
Format: Article
Language:English
Published: Elsevier 2021-10-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X21005037
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spelling doaj-2a2ce57f3ef546bbb2b01f5c26d932912021-09-03T04:45:46ZengElsevierCase Studies in Thermal Engineering2214-157X2021-10-0127101340Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno modelPuneet Rana0N. Srikantha1Taseer Muhammad2Gaurav Gupta3School of Mathematical Sciences, College of Science and Technology, Wenzhou-Kean University, Wenzhou 325060, ChinaDepartment of Mathematics, MS Ramaiah Institute of Technology, Bengaluru, 560054, IndiaDepartment of Mathematics, College of Sciences, King Khalid University, Abha, 61413, Saudi ArabiaSchool of Mathematical Sciences, College of Science and Technology, Wenzhou-Kean University, Wenzhou 325060, China; Corresponding author.The three-dimensional steady flow of an incompressible 25 nm water-based copper nanoliquid over a bi-directional elongated surface with convective thermal boundary condition is studied. This work may meet various thermal engineering applications for instance thermal energy exchangers, solar energy collectors, geophysical transports, radiators, electronic cooling devices, and nuclear reactors. Corcione's model for effective thermal conductivity and dynamic viscosity is used in conjunction with correlations based on effective medium theory for density, specific heat, and electrical conductivity. The effects of radiative heat and convective thermal energy conditions are also taken into account. Modified Buongiorno inhomogeneous model-based governing equations transmuted to nonlinear ordinary boundary value problem. The subsequent system has been deciphered using computer algebraic system software. The method used is validated against the available data and found an exceptional agreement. Two dimensional charts are designed to analyze the impact of the key parameters involved in the model. Three dimensional surface plots are plotted for the study of the Nusselt number, friction coefficients, and Sherwood number values are tabulated for several key parameters. A regression analysis is also performed for the local Nusselt number.http://www.sciencedirect.com/science/article/pii/S2214157X21005037NanofluidNanoparticlesConvective boundary conditionThermal radiationModified Buongiorno modelMagnetohydrodynamics (MHD)
collection DOAJ
language English
format Article
sources DOAJ
author Puneet Rana
N. Srikantha
Taseer Muhammad
Gaurav Gupta
spellingShingle Puneet Rana
N. Srikantha
Taseer Muhammad
Gaurav Gupta
Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno model
Case Studies in Thermal Engineering
Nanofluid
Nanoparticles
Convective boundary condition
Thermal radiation
Modified Buongiorno model
Magnetohydrodynamics (MHD)
author_facet Puneet Rana
N. Srikantha
Taseer Muhammad
Gaurav Gupta
author_sort Puneet Rana
title Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno model
title_short Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno model
title_full Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno model
title_fullStr Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno model
title_full_unstemmed Computational study of three-dimensional flow and heat transfer of 25 nm Cu–H2O nanoliquid with convective thermal condition and radiative heat flux using modified Buongiorno model
title_sort computational study of three-dimensional flow and heat transfer of 25 nm cu–h2o nanoliquid with convective thermal condition and radiative heat flux using modified buongiorno model
publisher Elsevier
series Case Studies in Thermal Engineering
issn 2214-157X
publishDate 2021-10-01
description The three-dimensional steady flow of an incompressible 25 nm water-based copper nanoliquid over a bi-directional elongated surface with convective thermal boundary condition is studied. This work may meet various thermal engineering applications for instance thermal energy exchangers, solar energy collectors, geophysical transports, radiators, electronic cooling devices, and nuclear reactors. Corcione's model for effective thermal conductivity and dynamic viscosity is used in conjunction with correlations based on effective medium theory for density, specific heat, and electrical conductivity. The effects of radiative heat and convective thermal energy conditions are also taken into account. Modified Buongiorno inhomogeneous model-based governing equations transmuted to nonlinear ordinary boundary value problem. The subsequent system has been deciphered using computer algebraic system software. The method used is validated against the available data and found an exceptional agreement. Two dimensional charts are designed to analyze the impact of the key parameters involved in the model. Three dimensional surface plots are plotted for the study of the Nusselt number, friction coefficients, and Sherwood number values are tabulated for several key parameters. A regression analysis is also performed for the local Nusselt number.
topic Nanofluid
Nanoparticles
Convective boundary condition
Thermal radiation
Modified Buongiorno model
Magnetohydrodynamics (MHD)
url http://www.sciencedirect.com/science/article/pii/S2214157X21005037
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