Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)

A numerical investigation is performed using finite volume method to study the laminar heat transfer in a three-dimensional flat-plate solar collector using different nanofluids as working fluids. Three nanofluids with different types of nanoparticles (Ag, MWCNT and Al2O3 dispersed in water) with 1–...

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Main Authors: Nejad Marjan B., Mohammed H.A., Sadeghi O., Zubeer Swar A.
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:E3S Web of Conferences
Online Access:https://doi.org/10.1051/e3sconf/20172200123
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spelling doaj-4f02a346bb54458daee5aee836b486dd2021-08-11T14:28:56ZengEDP SciencesE3S Web of Conferences2267-12422017-01-01220012310.1051/e3sconf/20172200123e3sconf_asee2017_00123Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)Nejad Marjan B.Mohammed H.A.Sadeghi O.Zubeer Swar A.A numerical investigation is performed using finite volume method to study the laminar heat transfer in a three-dimensional flat-plate solar collector using different nanofluids as working fluids. Three nanofluids with different types of nanoparticles (Ag, MWCNT and Al2O3 dispersed in water) with 1–2 wt% volume fractions are analyzed. A constant heat flux, equivalent to solar radiation absorbed by the collector, is applied at the top surface of the absorber plate. In this study, several parameters including boundary conditions (different volume flow rates, different fluid inlet temperatures and different solar irradiance at Skudai, Malaysia), different types of nanoparticles, and different solar collector tilt angles are investigated to identify their effects on the heat transfer performance of FPSC. The numerical results reveal that the three types of nanofluid enhance the thermal performance of solar collector compared to pure water and FPSC with Ag nanofluid has the best thermal performance enhancement. For all the cases, the collector efficiency increased with the increase of volume flow rate while fluid outlet temperature decreased. It is found that FPSC with tilt angle of 10° and fluid inlet temperature of 301.15 K has the best thermal performance.https://doi.org/10.1051/e3sconf/20172200123
collection DOAJ
language English
format Article
sources DOAJ
author Nejad Marjan B.
Mohammed H.A.
Sadeghi O.
Zubeer Swar A.
spellingShingle Nejad Marjan B.
Mohammed H.A.
Sadeghi O.
Zubeer Swar A.
Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)
E3S Web of Conferences
author_facet Nejad Marjan B.
Mohammed H.A.
Sadeghi O.
Zubeer Swar A.
author_sort Nejad Marjan B.
title Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)
title_short Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)
title_full Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)
title_fullStr Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)
title_full_unstemmed Influence of nanofluids on the efficiency of Flat-Plate Solar Collectors (FPSC)
title_sort influence of nanofluids on the efficiency of flat-plate solar collectors (fpsc)
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2017-01-01
description A numerical investigation is performed using finite volume method to study the laminar heat transfer in a three-dimensional flat-plate solar collector using different nanofluids as working fluids. Three nanofluids with different types of nanoparticles (Ag, MWCNT and Al2O3 dispersed in water) with 1–2 wt% volume fractions are analyzed. A constant heat flux, equivalent to solar radiation absorbed by the collector, is applied at the top surface of the absorber plate. In this study, several parameters including boundary conditions (different volume flow rates, different fluid inlet temperatures and different solar irradiance at Skudai, Malaysia), different types of nanoparticles, and different solar collector tilt angles are investigated to identify their effects on the heat transfer performance of FPSC. The numerical results reveal that the three types of nanofluid enhance the thermal performance of solar collector compared to pure water and FPSC with Ag nanofluid has the best thermal performance enhancement. For all the cases, the collector efficiency increased with the increase of volume flow rate while fluid outlet temperature decreased. It is found that FPSC with tilt angle of 10° and fluid inlet temperature of 301.15 K has the best thermal performance.
url https://doi.org/10.1051/e3sconf/20172200123
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