Energy and exergy efficiency of a flat plate solar collector using pH treated Al2O3 nanofluid

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Date

2016

Authors

Z. Said
R. Saidur
M. A. Sabiha
A. Hepbasli
N. A. Rahim

Journal Title

Journal ISSN

Volume Title

Publisher

ELSEVIER SCI LTD

Open Access Color

Green Open Access

Yes

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Publicly Funded

No
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Top 1%
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Top 10%
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Top 1%

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Journal Issue

Abstract

Application of nanofluid to increase the thermal efficiency of a traditional solar collector is getting tremendous attention among the scientific community. Al2O3-water nanofluid as a working fluid and its effect on the energy and exergy efficiencies of a flat plate solar collector was examined experimentally. Volume fraction used for this study was 0.1% and 0.3% while the size of the nanoparticles was similar to 13 nm. Experiments were carried out using a stable nanofluid which was obtained by controlling the pH of the solution over a period of 30 days. The mass flow rates of the nanofluid varied from 0.5 to 1.5 kg/min. Energy and exergy efficiencies of a flat plate solar collector using water and nanofluids as working fluids were matched. The results revealed that nanofluids increased the energy efficiency by 83.5% for 0.3% v/v and 1.5 kg/min whereas the exergy efficiency was enhanced by up to 20.3% for 0.1% v/v and 1 kg/min. Thermal efficiency of the system was found to be more than 50% compared to the existing system available in the literature. New findings on the stability and exergy analysis of the solar collector system operated with a pH controlled nanofluid are reported. (C) 2015 Elsevier Ltd. All rights reserved.

Description

Keywords

Nanofluid Flat plate solar collector, Energy, Exergy, Efficiency improvement, Al2O3, THERMAL-CONDUCTIVITY ENHANCEMENT, ENTROPY GENERATION MINIMIZATION, IRREVERSIBLE-PROCESSES, RECIPROCAL RELATIONS, COOLING SYSTEMS, TEMPERATURE, PERFORMANCE, OPTIMIZATION, HEATER, Efficiency Improvement, Al2o3, Exergy, Nanofluid, Al<sub>2</sub>o<sub>3</sub>, Flat Plate Solar Collector, Nanofluid Flat Plate Solar Collector, Energy, Thermal-Conductivity Enhancement, Optimization, 670, Performance, Temperature, Cooling Systems, Reciprocal Relations, Entropy Generation Minimization, Heater, Irreversible-Processes

Fields of Science

02 engineering and technology, 0202 electrical engineering, electronic engineering, information engineering

Citation

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Scopus Q

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OpenCitations Citation Count
134

Source

Journal of Cleaner Production

Volume

112

Issue

Start Page

3915

End Page

3926
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Citations

CrossRef : 135

Scopus : 145

Captures

Mendeley Readers : 188

SCOPUS™ Citations

145

checked on Apr 09, 2026

Web of Science™ Citations

127

checked on Apr 09, 2026

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6.3647

Sustainable Development Goals

AFFORDABLE AND CLEAN ENERGY7
AFFORDABLE AND CLEAN ENERGY