Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector

Titanium dioxide (TiO2) nanofluid is produced by dispersing a small amount of TiO2 nanoparticles in distilled water. The high thermal conductivity of the TiO2 nanofluid can improve the performance of evacuated tube solar thermal collector (ETSC). The main objectives of this study are to evaluate the...

Full description

Bibliographic Details
Main Authors: Gan, Yong Yang, Ong, Hwai Chyuan, Ling, Tau Chuan, Zulkifli, Nurin Wahidah Mohd, Wang, Chin Tsan, Yang, Yung Chin
Format: Article
Published: Elsevier 2018
Subjects:
_version_ 1796961557310078976
author Gan, Yong Yang
Ong, Hwai Chyuan
Ling, Tau Chuan
Zulkifli, Nurin Wahidah Mohd
Wang, Chin Tsan
Yang, Yung Chin
author_facet Gan, Yong Yang
Ong, Hwai Chyuan
Ling, Tau Chuan
Zulkifli, Nurin Wahidah Mohd
Wang, Chin Tsan
Yang, Yung Chin
author_sort Gan, Yong Yang
collection UM
description Titanium dioxide (TiO2) nanofluid is produced by dispersing a small amount of TiO2 nanoparticles in distilled water. The high thermal conductivity of the TiO2 nanofluid can improve the performance of evacuated tube solar thermal collector (ETSC). The main objectives of this study are to evaluate the thermal efficiency and perform entropy analysis of an ETSC in which TiO2 nanofluid is used as the working fluid. Response surface methodology is used to determine the optimum thermal conductivity of the TiO2 nanofluid. The following factors are varied for the optimization process: (1) volumetric concentration of nanoparticles, (2) amount of surfactant, and (3) sonication time. The optimum factors are as follows: (1) volumetric concentration of TiO2 nanoparticles: 0.50 vol%, (2) surfactant-to-nanoparticle ratio: 1:1, and (3) sonication time: 10.0 min. Excessive amounts of polyvinylpyrrolidone (PVP) surfactant significantly reduce the thermal conductivity of the TiO2 nanofluid. The thermal conductivity of the TiO2 nanofluid increases by 7.28% when it is prepared under optimum conditions. The TiO2 nanofluid with the optimum thermal conductivity is used as the working fluid in the ETSC. It is found that thermal efficiency of the ETSC increases with an increase in the mass flow rate of water and TiO2 nanofluid. The results show that the entropy generation decreases by 1.23% whereas the thermal efficiency increases by 16.5% when the optimum TiO2 nanofluid is used in the ETSC compared with those for distilled water at a mass flow rate of 0.033 kg/s. The heat transfer capability increases by using TiO2 nanofluid with high thermal conductivity as well as high mass flow rate. In conclusion, the performance of the ETSC can be enhanced by using stable nanofluid as the heat transfer fluid because of its high thermal conductivity.
first_indexed 2024-03-06T05:55:53Z
format Article
id um.eprints-22050
institution Universiti Malaya
last_indexed 2024-03-06T05:55:53Z
publishDate 2018
publisher Elsevier
record_format dspace
spelling um.eprints-220502019-10-24T03:12:20Z http://eprints.um.edu.my/22050/ Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector Gan, Yong Yang Ong, Hwai Chyuan Ling, Tau Chuan Zulkifli, Nurin Wahidah Mohd Wang, Chin Tsan Yang, Yung Chin Q Science (General) QH Natural history TJ Mechanical engineering and machinery Titanium dioxide (TiO2) nanofluid is produced by dispersing a small amount of TiO2 nanoparticles in distilled water. The high thermal conductivity of the TiO2 nanofluid can improve the performance of evacuated tube solar thermal collector (ETSC). The main objectives of this study are to evaluate the thermal efficiency and perform entropy analysis of an ETSC in which TiO2 nanofluid is used as the working fluid. Response surface methodology is used to determine the optimum thermal conductivity of the TiO2 nanofluid. The following factors are varied for the optimization process: (1) volumetric concentration of nanoparticles, (2) amount of surfactant, and (3) sonication time. The optimum factors are as follows: (1) volumetric concentration of TiO2 nanoparticles: 0.50 vol%, (2) surfactant-to-nanoparticle ratio: 1:1, and (3) sonication time: 10.0 min. Excessive amounts of polyvinylpyrrolidone (PVP) surfactant significantly reduce the thermal conductivity of the TiO2 nanofluid. The thermal conductivity of the TiO2 nanofluid increases by 7.28% when it is prepared under optimum conditions. The TiO2 nanofluid with the optimum thermal conductivity is used as the working fluid in the ETSC. It is found that thermal efficiency of the ETSC increases with an increase in the mass flow rate of water and TiO2 nanofluid. The results show that the entropy generation decreases by 1.23% whereas the thermal efficiency increases by 16.5% when the optimum TiO2 nanofluid is used in the ETSC compared with those for distilled water at a mass flow rate of 0.033 kg/s. The heat transfer capability increases by using TiO2 nanofluid with high thermal conductivity as well as high mass flow rate. In conclusion, the performance of the ETSC can be enhanced by using stable nanofluid as the heat transfer fluid because of its high thermal conductivity. Elsevier 2018 Article PeerReviewed Gan, Yong Yang and Ong, Hwai Chyuan and Ling, Tau Chuan and Zulkifli, Nurin Wahidah Mohd and Wang, Chin Tsan and Yang, Yung Chin (2018) Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector. Applied Thermal Engineering, 145. pp. 155-164. ISSN 1359-4311, DOI https://doi.org/10.1016/j.applthermaleng.2018.09.012 <https://doi.org/10.1016/j.applthermaleng.2018.09.012>. https://doi.org/10.1016/j.applthermaleng.2018.09.012 doi:10.1016/j.applthermaleng.2018.09.012
spellingShingle Q Science (General)
QH Natural history
TJ Mechanical engineering and machinery
Gan, Yong Yang
Ong, Hwai Chyuan
Ling, Tau Chuan
Zulkifli, Nurin Wahidah Mohd
Wang, Chin Tsan
Yang, Yung Chin
Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector
title Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector
title_full Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector
title_fullStr Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector
title_full_unstemmed Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector
title_short Thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector
title_sort thermal conductivity optimization and entropy generation analysis of titanium dioxide nanofluid in evacuated tube solar collector
topic Q Science (General)
QH Natural history
TJ Mechanical engineering and machinery
work_keys_str_mv AT ganyongyang thermalconductivityoptimizationandentropygenerationanalysisoftitaniumdioxidenanofluidinevacuatedtubesolarcollector
AT onghwaichyuan thermalconductivityoptimizationandentropygenerationanalysisoftitaniumdioxidenanofluidinevacuatedtubesolarcollector
AT lingtauchuan thermalconductivityoptimizationandentropygenerationanalysisoftitaniumdioxidenanofluidinevacuatedtubesolarcollector
AT zulkiflinurinwahidahmohd thermalconductivityoptimizationandentropygenerationanalysisoftitaniumdioxidenanofluidinevacuatedtubesolarcollector
AT wangchintsan thermalconductivityoptimizationandentropygenerationanalysisoftitaniumdioxidenanofluidinevacuatedtubesolarcollector
AT yangyungchin thermalconductivityoptimizationandentropygenerationanalysisoftitaniumdioxidenanofluidinevacuatedtubesolarcollector