Three-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerant

In this study, numerical investigations were carried out for R134a based TiO2 nanorefrigerants. Forced laminar flow and heat transfer of nanorefrigerants in a horizontal smooth circular cross-sectioned duct were investigated under steady-state condition. The nanorefrigerants consist of TiO2...

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Main Author: Arslan Kamil
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/0354-9836/2017/0354-98361500002A.pdf
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spelling doaj-f4648901c6a848c38973c6dcf99e45e32021-01-02T00:26:11ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632017-01-01211 Part A17518610.2298/TSCI140425002A0354-98361500002AThree-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerantArslan Kamil0Karabük University, Mechanical Engineering Department, Karabük, TurkeyIn this study, numerical investigations were carried out for R134a based TiO2 nanorefrigerants. Forced laminar flow and heat transfer of nanorefrigerants in a horizontal smooth circular cross-sectioned duct were investigated under steady-state condition. The nanorefrigerants consist of TiO2 nanoparticles suspended in R134a as a base fluid with four particle volume fractions of 0.8, 2.0 and 4.0%. Numerical studies were performed under laminar flow conditions where Reynolds numbers range from 8×102 to 2.2×103. Flow is flowing in the duct with hydrodynamically and thermally developing (simultaneously developing flow) condition. The uniform surface heat flux with uniform peripheral wall heat flux (H2) boundary condition was applied on the duct wall. Commercial CFD software, Ansys Fluent 14.5, was used to carry out the numerical study. Effect of nanoparticle volume fraction on the average convective heat transfer coefficient and average Darcy friction factor were analyzed. It is obtained in this study that increasing nanoparticle volume fraction of nanorefrigerant increases the convective heat transfer in the duct; however, increasing nanoparticle volume fraction does not influence the pressure drop in the duct. The velocity and temperature distribution in the duct for different Reynolds numbers and nanoparticle volume fractions were presented.http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361500002A.pdfTiO2/R134a nanorefrigerantnanoparticle volume fractionforced convectionfriction factorheat transfer coefficientlaminar flow
collection DOAJ
language English
format Article
sources DOAJ
author Arslan Kamil
spellingShingle Arslan Kamil
Three-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerant
Thermal Science
TiO2/R134a nanorefrigerant
nanoparticle volume fraction
forced convection
friction factor
heat transfer coefficient
laminar flow
author_facet Arslan Kamil
author_sort Arslan Kamil
title Three-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerant
title_short Three-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerant
title_full Three-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerant
title_fullStr Three-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerant
title_full_unstemmed Three-dimensional computational fluid dynamics modeling of TiO2/R134a nanorefrigerant
title_sort three-dimensional computational fluid dynamics modeling of tio2/r134a nanorefrigerant
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2017-01-01
description In this study, numerical investigations were carried out for R134a based TiO2 nanorefrigerants. Forced laminar flow and heat transfer of nanorefrigerants in a horizontal smooth circular cross-sectioned duct were investigated under steady-state condition. The nanorefrigerants consist of TiO2 nanoparticles suspended in R134a as a base fluid with four particle volume fractions of 0.8, 2.0 and 4.0%. Numerical studies were performed under laminar flow conditions where Reynolds numbers range from 8×102 to 2.2×103. Flow is flowing in the duct with hydrodynamically and thermally developing (simultaneously developing flow) condition. The uniform surface heat flux with uniform peripheral wall heat flux (H2) boundary condition was applied on the duct wall. Commercial CFD software, Ansys Fluent 14.5, was used to carry out the numerical study. Effect of nanoparticle volume fraction on the average convective heat transfer coefficient and average Darcy friction factor were analyzed. It is obtained in this study that increasing nanoparticle volume fraction of nanorefrigerant increases the convective heat transfer in the duct; however, increasing nanoparticle volume fraction does not influence the pressure drop in the duct. The velocity and temperature distribution in the duct for different Reynolds numbers and nanoparticle volume fractions were presented.
topic TiO2/R134a nanorefrigerant
nanoparticle volume fraction
forced convection
friction factor
heat transfer coefficient
laminar flow
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361500002A.pdf
work_keys_str_mv AT arslankamil threedimensionalcomputationalfluiddynamicsmodelingoftio2r134ananorefrigerant
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