Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate

Solar energy is one of the promising resources to fulfil the energy demands to some level in place of fossil fuels to avoid environmental pollution. The efficiency of solar technology, e.g. photovoltaic panels, thermal systems or a combination of both technologies as photovoltaic thermal is a concer...

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Main Authors: Fayaz, Hussain, Nasrin, Rehena, Rahim, Nasrudin Abd, Hasanuzzaman, Md.
Format: Article
Published: Elsevier 2018
Subjects:
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author Fayaz, Hussain
Nasrin, Rehena
Rahim, Nasrudin Abd
Hasanuzzaman, Md.
author_facet Fayaz, Hussain
Nasrin, Rehena
Rahim, Nasrudin Abd
Hasanuzzaman, Md.
author_sort Fayaz, Hussain
collection UM
description Solar energy is one of the promising resources to fulfil the energy demands to some level in place of fossil fuels to avoid environmental pollution. The efficiency of solar technology, e.g. photovoltaic panels, thermal systems or a combination of both technologies as photovoltaic thermal is a concern to increase at an optimum level. A three-dimensional numerical analysis of PVT systems using water and MWCNT-water nanofluid has been completed with FEM based software COMSOL Multiphysics®. A numerical investigation has been validated by the indoor experimental research at different mass flow rates of 30 to 120 L/h while keeping solar irradiation fixed at 1000 W/m2, inlet fluid and ambient temperature at 32 and 25 °C, respectively. Percent improvement of electrical efficiency of PV with nanofluid cooling at flow rate 120 L/h is obtained about 10.72 and 12.25% of numerical and experimental cases respectively. Optimization of the nanofluid for weight concentration is achieved at 0.75% MWCNT-water. Solar cell temperature reduces about 0.72 °C experimentally and 0.77 °C numerically per 10 L/h flow rate increment. Approximately 7.74 and 6.89 W thermal energy is enhanced per 10 L/h flow rate increment in numerical and experimental studies respectively. Percentage increment of thermal efficiency is found as 5.62% numerically and 5.13% experimentally for PVT system operated by water/MWCNT nanofluid with compared to water.
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spelling um.eprints-220842019-08-27T01:50:19Z http://eprints.um.edu.my/22084/ Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate Fayaz, Hussain Nasrin, Rehena Rahim, Nasrudin Abd Hasanuzzaman, Md. QA Mathematics TJ Mechanical engineering and machinery TK Electrical engineering. Electronics Nuclear engineering Solar energy is one of the promising resources to fulfil the energy demands to some level in place of fossil fuels to avoid environmental pollution. The efficiency of solar technology, e.g. photovoltaic panels, thermal systems or a combination of both technologies as photovoltaic thermal is a concern to increase at an optimum level. A three-dimensional numerical analysis of PVT systems using water and MWCNT-water nanofluid has been completed with FEM based software COMSOL Multiphysics®. A numerical investigation has been validated by the indoor experimental research at different mass flow rates of 30 to 120 L/h while keeping solar irradiation fixed at 1000 W/m2, inlet fluid and ambient temperature at 32 and 25 °C, respectively. Percent improvement of electrical efficiency of PV with nanofluid cooling at flow rate 120 L/h is obtained about 10.72 and 12.25% of numerical and experimental cases respectively. Optimization of the nanofluid for weight concentration is achieved at 0.75% MWCNT-water. Solar cell temperature reduces about 0.72 °C experimentally and 0.77 °C numerically per 10 L/h flow rate increment. Approximately 7.74 and 6.89 W thermal energy is enhanced per 10 L/h flow rate increment in numerical and experimental studies respectively. Percentage increment of thermal efficiency is found as 5.62% numerically and 5.13% experimentally for PVT system operated by water/MWCNT nanofluid with compared to water. Elsevier 2018 Article PeerReviewed Fayaz, Hussain and Nasrin, Rehena and Rahim, Nasrudin Abd and Hasanuzzaman, Md. (2018) Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate. Solar Energy, 169. pp. 217-230. ISSN 0038-092X, DOI https://doi.org/10.1016/j.solener.2018.05.004 <https://doi.org/10.1016/j.solener.2018.05.004>. https://doi.org/10.1016/j.solener.2018.05.004 doi:10.1016/j.solener.2018.05.004
spellingShingle QA Mathematics
TJ Mechanical engineering and machinery
TK Electrical engineering. Electronics Nuclear engineering
Fayaz, Hussain
Nasrin, Rehena
Rahim, Nasrudin Abd
Hasanuzzaman, Md.
Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate
title Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate
title_full Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate
title_fullStr Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate
title_full_unstemmed Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate
title_short Energy and exergy analysis of the PVT system: Effect of nanofluid flow rate
title_sort energy and exergy analysis of the pvt system effect of nanofluid flow rate
topic QA Mathematics
TJ Mechanical engineering and machinery
TK Electrical engineering. Electronics Nuclear engineering
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AT nasrinrehena energyandexergyanalysisofthepvtsystemeffectofnanofluidflowrate
AT rahimnasrudinabd energyandexergyanalysisofthepvtsystemeffectofnanofluidflowrate
AT hasanuzzamanmd energyandexergyanalysisofthepvtsystemeffectofnanofluidflowrate