Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer

Present paper aims to investigate effects of nanoparticle addition to thermal oil of parabolic trough collectors which are integrated to Kalina cycle for electricity generation to run an alkaline electrolyzer for hydrogen production. Thermodynamic models for Kalina cycle, thermal model for parabolic...

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Published in:International Journal of Hydrogen Energy
Main Author: Hai T.; Zhou J.; Li M.; Zain J.M.; Wang D.; Zheng M.
Format: Article
Language:English
Published: Elsevier Ltd 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85187558099&doi=10.1016%2fj.ijhydene.2023.07.117&partnerID=40&md5=5d5ad091881097d8611d0212d23bedc1
id 2-s2.0-85187558099
spelling 2-s2.0-85187558099
Hai T.; Zhou J.; Li M.; Zain J.M.; Wang D.; Zheng M.
Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
2024
International Journal of Hydrogen Energy
67

10.1016/j.ijhydene.2023.07.117
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85187558099&doi=10.1016%2fj.ijhydene.2023.07.117&partnerID=40&md5=5d5ad091881097d8611d0212d23bedc1
Present paper aims to investigate effects of nanoparticle addition to thermal oil of parabolic trough collectors which are integrated to Kalina cycle for electricity generation to run an alkaline electrolyzer for hydrogen production. Thermodynamic models for Kalina cycle, thermal model for parabolic collectors and electrochemical models for water electrolyzer are developed for overall plant modeling. Three types of nanoparticles including: copper oxide, alumina and titanium oxide are considered and overall plant performance is investigated using these nanoparticles and is compared with basefluid. The nanofluid thermophysical properties are evaluated as a function of nanoparticles’ properties, volume fraction and the base fluid properties. The effects of key variables such as nanoparticle volume fraction, collector inlet temperature, evaporation pressure and ammonia concentration of Kalina system were evaluated on hydrogen production as well as exergetic efficiencies. Results revealed greater positive influence for CuO compared to TiO2 and Al2O3 on performance improvement for both hydrogen generation and its exergetic efficiency. Also, compared to basefluid (without nanoparticles) case, it was found that CuO particles result in a solar-to-H2 exergy efficiency improvement by 4.7%. Using this nanofluid with a volume fraction of 5%, the H2 production rate enhances from 0.633kg/hto0.664kg/h, indicating 4.9 % improvement. © 2023
Elsevier Ltd
3603199
English
Article

author Hai T.; Zhou J.; Li M.; Zain J.M.; Wang D.; Zheng M.
spellingShingle Hai T.; Zhou J.; Li M.; Zain J.M.; Wang D.; Zheng M.
Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
author_facet Hai T.; Zhou J.; Li M.; Zain J.M.; Wang D.; Zheng M.
author_sort Hai T.; Zhou J.; Li M.; Zain J.M.; Wang D.; Zheng M.
title Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
title_short Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
title_full Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
title_fullStr Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
title_full_unstemmed Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
title_sort Investigation of the effects of various nanoparticles on improvement of hydrogen production rate in a solar energy driven alkaline electrolyzer
publishDate 2024
container_title International Journal of Hydrogen Energy
container_volume 67
container_issue
doi_str_mv 10.1016/j.ijhydene.2023.07.117
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85187558099&doi=10.1016%2fj.ijhydene.2023.07.117&partnerID=40&md5=5d5ad091881097d8611d0212d23bedc1
description Present paper aims to investigate effects of nanoparticle addition to thermal oil of parabolic trough collectors which are integrated to Kalina cycle for electricity generation to run an alkaline electrolyzer for hydrogen production. Thermodynamic models for Kalina cycle, thermal model for parabolic collectors and electrochemical models for water electrolyzer are developed for overall plant modeling. Three types of nanoparticles including: copper oxide, alumina and titanium oxide are considered and overall plant performance is investigated using these nanoparticles and is compared with basefluid. The nanofluid thermophysical properties are evaluated as a function of nanoparticles’ properties, volume fraction and the base fluid properties. The effects of key variables such as nanoparticle volume fraction, collector inlet temperature, evaporation pressure and ammonia concentration of Kalina system were evaluated on hydrogen production as well as exergetic efficiencies. Results revealed greater positive influence for CuO compared to TiO2 and Al2O3 on performance improvement for both hydrogen generation and its exergetic efficiency. Also, compared to basefluid (without nanoparticles) case, it was found that CuO particles result in a solar-to-H2 exergy efficiency improvement by 4.7%. Using this nanofluid with a volume fraction of 5%, the H2 production rate enhances from 0.633kg/hto0.664kg/h, indicating 4.9 % improvement. © 2023
publisher Elsevier Ltd
issn 3603199
language English
format Article
accesstype
record_format scopus
collection Scopus
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