Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency Improvement
In this article, an experimental study was performed to assess the potential thermal application of a new nanofluid comprising carbon nanoparticles dispersed in acetone inside an evacuated tube solar thermal collector. The effect of various parameters including the circulating volumetric flow of the...
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doaj-b8a49db1dedb4439b8f40fb1d52da8322020-11-24T21:44:53ZengMDPI AGApplied Sciences2076-34172019-05-0199187710.3390/app9091877app9091877Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency ImprovementM. M. Sarafraz0Iskander Tlili1Mohammad Abdul Baseer2Mohammad Reza Safaei3School of Mechanical Engineering, the University of Adelaide, Adelaide, South Australia, AustraliaDepartment of Mechanical and Industrial Engineering, College of Engineering, Majmaah University, Al-Majmaah 11952, Saudi ArabiaDepartment of Electrical Engineering, College of Engineering, Majmaah University, Al-Majmaah 11952, Saudi ArabiaDivision of Computational Physics, Institute for Computational Science, Ton Duc Tang University, Ho Chi Minh City, VietnamIn this article, an experimental study was performed to assess the potential thermal application of a new nanofluid comprising carbon nanoparticles dispersed in acetone inside an evacuated tube solar thermal collector. The effect of various parameters including the circulating volumetric flow of the collector, mass fraction of the nanoparticles, the solar irradiance, the tilt angle and the filling ratio values of the heat pipes on the thermal performance of the solar collector was investigated. It was found that with an increase in the flow rate of the working fluid within the system, the thermal efficiency of the system was improved. Additionally, the highest thermal performance and the highest temperature difference between the inlet and the outlet ports of the collector were achieved for the nanofluid at wt. % = 0.1. The best tilt angle and the filling ratio values of the collector were 30° and 60% and the maximum thermal efficiency of the collector was 91% for a nanofluid at wt. % = 0.1 and flow rate of 3 L/min.https://www.mdpi.com/2076-3417/9/9/1877solar collectorevacuated tubecarbon-acetone nanofluidthermal performance |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M. M. Sarafraz Iskander Tlili Mohammad Abdul Baseer Mohammad Reza Safaei |
spellingShingle |
M. M. Sarafraz Iskander Tlili Mohammad Abdul Baseer Mohammad Reza Safaei Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency Improvement Applied Sciences solar collector evacuated tube carbon-acetone nanofluid thermal performance |
author_facet |
M. M. Sarafraz Iskander Tlili Mohammad Abdul Baseer Mohammad Reza Safaei |
author_sort |
M. M. Sarafraz |
title |
Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency Improvement |
title_short |
Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency Improvement |
title_full |
Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency Improvement |
title_fullStr |
Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency Improvement |
title_full_unstemmed |
Potential of Solar Collectors for Clean Thermal Energy Production in Smart Cities using Nanofluids: Experimental Assessment and Efficiency Improvement |
title_sort |
potential of solar collectors for clean thermal energy production in smart cities using nanofluids: experimental assessment and efficiency improvement |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2019-05-01 |
description |
In this article, an experimental study was performed to assess the potential thermal application of a new nanofluid comprising carbon nanoparticles dispersed in acetone inside an evacuated tube solar thermal collector. The effect of various parameters including the circulating volumetric flow of the collector, mass fraction of the nanoparticles, the solar irradiance, the tilt angle and the filling ratio values of the heat pipes on the thermal performance of the solar collector was investigated. It was found that with an increase in the flow rate of the working fluid within the system, the thermal efficiency of the system was improved. Additionally, the highest thermal performance and the highest temperature difference between the inlet and the outlet ports of the collector were achieved for the nanofluid at wt. % = 0.1. The best tilt angle and the filling ratio values of the collector were 30° and 60% and the maximum thermal efficiency of the collector was 91% for a nanofluid at wt. % = 0.1 and flow rate of 3 L/min. |
topic |
solar collector evacuated tube carbon-acetone nanofluid thermal performance |
url |
https://www.mdpi.com/2076-3417/9/9/1877 |
work_keys_str_mv |
AT mmsarafraz potentialofsolarcollectorsforcleanthermalenergyproductioninsmartcitiesusingnanofluidsexperimentalassessmentandefficiencyimprovement AT iskandertlili potentialofsolarcollectorsforcleanthermalenergyproductioninsmartcitiesusingnanofluidsexperimentalassessmentandefficiencyimprovement AT mohammadabdulbaseer potentialofsolarcollectorsforcleanthermalenergyproductioninsmartcitiesusingnanofluidsexperimentalassessmentandefficiencyimprovement AT mohammadrezasafaei potentialofsolarcollectorsforcleanthermalenergyproductioninsmartcitiesusingnanofluidsexperimentalassessmentandefficiencyimprovement |
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