Energy economic and environmental analysis of a flat-plate solar collector operated with SiO2nanofluid
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Date
2015
Authors
Mohd Faizal Fauzan
Rahman Saidur
Saad Mekhilef
A. Hepbasli
Islam Mohammed Mahbubul
Journal Title
Journal ISSN
Volume Title
Publisher
Springer Verlag
Open Access Color
BRONZE
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
To overcome the environmental impact and declining source of fossil fuels renewable energy sources need to meet the increasing demand of energy. Solar thermal energy is clean and infinite suitable to be a good replacement for fossil fuel. However the current solar technology is still expensive and low in efficiency. One of the effective ways of increasing the efficiency of solar collector is to utilize high thermal conductivity fluid known as nanofluid. This research analyzes the impact on the performance fluid flow heat transfer economic and environment of a flat-plate solar thermal collector by using silicon dioxide nanofluid as absorbing medium. The analysis is based on different volume flow rates and varying nanoparticles volume fractions. The study has indicated that nanofluids containing small amount of nanoparticles have higher heat transfer coefficient and also higher energy and exergy efficiency than base fluids. The measured viscosity of nanofluids is higher than water but it gives negligible effect on pressure drop and pumping power. Using SiO<inf>2</inf>nanofluid in solar collector could also save 280 MJ more embodied energy offsetting 170 kg less CO<inf>2</inf>emissions and having a faster payback period of 0.12 years compared to conventional water-based solar collectors. © 2021 Elsevier B.V. All rights reserved.
Description
Keywords
Economic, Exergy, Flat-plate Solar Collector, Heat Transfer, Sio2nanofluid, Economics, Environmental Impact, Exergy, Flow Of Fluids, Fossil Fuels, Heat Transfer, Heat Transfer Performance, Investments, Nanofluidics, Nanoparticles, Silica, Solar Energy, Solar Heating, Thermal Conductivity, Energy And Exergy Efficiency, Environmental Analysis, Flat-plate Solar Collectors, High Thermal Conductivity, Renewable Energy Source, Sio2nanofluid, Solar Thermal Collector, Solar Thermal Energy, Collector Efficiency, Economics, Environmental impact, Exergy, Flow of fluids, Fossil fuels, Heat transfer, Heat transfer performance, Investments, Nanofluidics, Nanoparticles, Silica, Solar energy, Solar heating, Thermal conductivity, Energy and exergy efficiency, Environmental analysis, Flat-plate solar collectors, High thermal conductivity, Renewable energy source, SiO2nanofluid, Solar thermal collector, Solar thermal energy, Collector efficiency, T Technology (General), 621, TK Electrical engineering. Electronics Nuclear engineering
Fields of Science
0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology
Citation
WoS Q
Scopus Q

OpenCitations Citation Count
115
Source
Clean Technologies and Environmental Policy
Volume
17
Issue
Start Page
1457
End Page
1473
Collections
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Citations
CrossRef : 27
Scopus : 122
Captures
Mendeley Readers : 142
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