Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study

A covalent functionalization approach was utilized for the preparation of highly dispersed pentaethylene glycol-thermally treated graphene-water as the absorbing material inside a flat-plate solar collector. Four mass fractions of nanofluids were prepared (0.025, 0.05, 0.075, and 0.1 wt pentaethylen...

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Main Authors: Alawi, O.A., Kamar, H.M., Mohammed, H.A., Mallah, A.R., Hussein, O.A.
Format: Article
Published: SAGE Publications Ltd 2020
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092557521&doi=10.1177%2f1847980420964618&partnerID=40&md5=e94fd03827f0b2f0bd5ec4365fd27497
http://eprints.utp.edu.my/23421/
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spelling my.utp.eprints.234212022-03-31T11:41:23Z Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study Alawi, O.A. Kamar, H.M. Mohammed, H.A. Mallah, A.R. Hussein, O.A. A covalent functionalization approach was utilized for the preparation of highly dispersed pentaethylene glycol-thermally treated graphene-water as the absorbing material inside a flat-plate solar collector. Four mass fractions of nanofluids were prepared (0.025, 0.05, 0.075, and 0.1 wt pentaethylene glycol-thermally treated graphene-water). Graphene nanoparticles were characterized by energy dispersive X-ray analysis with a scanning electron microscope. Measurements of the thermophysical properties were subsequently carried out for the nanosuspensions. The raw investigation data were collected from an indoor flat-plate solar collector test setup. The experimental procedure included different sets of variables such as input temperatures of 303, 313, and 323 K; fluid mass flow rate of 0.00833, 0.01667, and 0.025 kg s�1; and heat flow density of 500, 750, and 1000 W m�2. The thermophysical tests of pentaethylene glycol-thermally treated graphene-water nanofluids showed a proportional increase against weight concentrations, while the specific heat power was reduced. The tests showed an increment in energy efficiency by increasing the fluid mass flow rate and heat input. By comparison, the thermal efficiency decreased with the increasing temperature of the fluid supply. Relative to the base fluid, the energy efficiency of pentaethylene glycol-thermally treated graphene/water-based flat-plate solar collector increased to 10.6, 11, and 13.1 at the three fluid mass flow rates. In conclusion, an exponential form was used to derive the thermal effectiveness of flat-plate solar collector based on the experimental data. © The Author(s) 2020. SAGE Publications Ltd 2020 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092557521&doi=10.1177%2f1847980420964618&partnerID=40&md5=e94fd03827f0b2f0bd5ec4365fd27497 Alawi, O.A. and Kamar, H.M. and Mohammed, H.A. and Mallah, A.R. and Hussein, O.A. (2020) Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study. Nanomaterials and Nanotechnology, 10 . http://eprints.utp.edu.my/23421/
institution Universiti Teknologi Petronas
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country Malaysia
content_provider Universiti Teknologi Petronas
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description A covalent functionalization approach was utilized for the preparation of highly dispersed pentaethylene glycol-thermally treated graphene-water as the absorbing material inside a flat-plate solar collector. Four mass fractions of nanofluids were prepared (0.025, 0.05, 0.075, and 0.1 wt pentaethylene glycol-thermally treated graphene-water). Graphene nanoparticles were characterized by energy dispersive X-ray analysis with a scanning electron microscope. Measurements of the thermophysical properties were subsequently carried out for the nanosuspensions. The raw investigation data were collected from an indoor flat-plate solar collector test setup. The experimental procedure included different sets of variables such as input temperatures of 303, 313, and 323 K; fluid mass flow rate of 0.00833, 0.01667, and 0.025 kg s�1; and heat flow density of 500, 750, and 1000 W m�2. The thermophysical tests of pentaethylene glycol-thermally treated graphene-water nanofluids showed a proportional increase against weight concentrations, while the specific heat power was reduced. The tests showed an increment in energy efficiency by increasing the fluid mass flow rate and heat input. By comparison, the thermal efficiency decreased with the increasing temperature of the fluid supply. Relative to the base fluid, the energy efficiency of pentaethylene glycol-thermally treated graphene/water-based flat-plate solar collector increased to 10.6, 11, and 13.1 at the three fluid mass flow rates. In conclusion, an exponential form was used to derive the thermal effectiveness of flat-plate solar collector based on the experimental data. © The Author(s) 2020.
format Article
author Alawi, O.A.
Kamar, H.M.
Mohammed, H.A.
Mallah, A.R.
Hussein, O.A.
spellingShingle Alawi, O.A.
Kamar, H.M.
Mohammed, H.A.
Mallah, A.R.
Hussein, O.A.
Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study
author_facet Alawi, O.A.
Kamar, H.M.
Mohammed, H.A.
Mallah, A.R.
Hussein, O.A.
author_sort Alawi, O.A.
title Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study
title_short Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study
title_full Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study
title_fullStr Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study
title_full_unstemmed Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study
title_sort energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: experimental study
publisher SAGE Publications Ltd
publishDate 2020
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092557521&doi=10.1177%2f1847980420964618&partnerID=40&md5=e94fd03827f0b2f0bd5ec4365fd27497
http://eprints.utp.edu.my/23421/
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