Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel

Combined approach of geometrical variations to increase heat transfer surface with the application of high thermal conductive nanofluids can influence heat transfer enhancement in new thermal systems. This study numerically investigates the thermophoresis and Brownian diffusion as convective heat tr...

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Main Authors: Alsabery, Ammar I., Che Sidik, Nor Azwadi, Hashim, Ishak, Muhammad, Nura Muaz
Format: Article
Published: Elsevier B.V. 2022
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Online Access:http://eprints.utm.my/103208/
http://dx.doi.org/10.1016/j.cjph.2021.10.049
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.1032082023-11-13T05:00:15Z http://eprints.utm.my/103208/ Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel Alsabery, Ammar I. Che Sidik, Nor Azwadi Hashim, Ishak Muhammad, Nura Muaz T Technology (General) Combined approach of geometrical variations to increase heat transfer surface with the application of high thermal conductive nanofluids can influence heat transfer enhancement in new thermal systems. This study numerically investigates the thermophoresis and Brownian diffusion as convective heat transfer enhancement mechanisms with two-phase Al2O3-water nanofluid in a 3D wavy horizontal channel having upper and lower wavy surfaces imposed with a uniform temperature and adiabatic conditions, respectively. Empirical correlations are used to model the thermal conductivity and viscosity as the most influential thermophysical properties of nanofluid. A commercial CFD code based on the Finite element Method (FEM) is employed to solve the governing equations in curvilinear coordinates for the computational domain. The employed dimensionless parameters include Reynolds number (Re), nanoparticle concentration (ϕ), channel’s number of oscillations (N) and amplitude (A). The current results correlate reasonably with similar experimental results in the literature. The results show that nanofluid flow in the wavy-channel augmented heat transfer, especially at increasing nanoparticle volume fraction and Reynolds number. Also, higher convective heat transfer is attained with increasing flow mixing due to increase in oscillation frequency. Local Nusselt number of nanofluid significantly rises when the Re varied from 200 to 1000 by about 75% at ϕ=0.02, N=4 and A=0.1. Elsevier B.V. 2022 Article PeerReviewed Alsabery, Ammar I. and Che Sidik, Nor Azwadi and Hashim, Ishak and Muhammad, Nura Muaz (2022) Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel. Chinese Journal of Physics, 77 (NA). pp. 350-365. ISSN 0577-9073 http://dx.doi.org/10.1016/j.cjph.2021.10.049 DOI : 10.1016/j.cjph.2021.10.049
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic T Technology (General)
spellingShingle T Technology (General)
Alsabery, Ammar I.
Che Sidik, Nor Azwadi
Hashim, Ishak
Muhammad, Nura Muaz
Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel
description Combined approach of geometrical variations to increase heat transfer surface with the application of high thermal conductive nanofluids can influence heat transfer enhancement in new thermal systems. This study numerically investigates the thermophoresis and Brownian diffusion as convective heat transfer enhancement mechanisms with two-phase Al2O3-water nanofluid in a 3D wavy horizontal channel having upper and lower wavy surfaces imposed with a uniform temperature and adiabatic conditions, respectively. Empirical correlations are used to model the thermal conductivity and viscosity as the most influential thermophysical properties of nanofluid. A commercial CFD code based on the Finite element Method (FEM) is employed to solve the governing equations in curvilinear coordinates for the computational domain. The employed dimensionless parameters include Reynolds number (Re), nanoparticle concentration (ϕ), channel’s number of oscillations (N) and amplitude (A). The current results correlate reasonably with similar experimental results in the literature. The results show that nanofluid flow in the wavy-channel augmented heat transfer, especially at increasing nanoparticle volume fraction and Reynolds number. Also, higher convective heat transfer is attained with increasing flow mixing due to increase in oscillation frequency. Local Nusselt number of nanofluid significantly rises when the Re varied from 200 to 1000 by about 75% at ϕ=0.02, N=4 and A=0.1.
format Article
author Alsabery, Ammar I.
Che Sidik, Nor Azwadi
Hashim, Ishak
Muhammad, Nura Muaz
author_facet Alsabery, Ammar I.
Che Sidik, Nor Azwadi
Hashim, Ishak
Muhammad, Nura Muaz
author_sort Alsabery, Ammar I.
title Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel
title_short Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel
title_full Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel
title_fullStr Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel
title_full_unstemmed Impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3D wavy horizontal channel
title_sort impacts of two-phase nanofluid approach toward forced convection heat transfer within a 3d wavy horizontal channel
publisher Elsevier B.V.
publishDate 2022
url http://eprints.utm.my/103208/
http://dx.doi.org/10.1016/j.cjph.2021.10.049
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