Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production

Solar-driven hydrogen production systems are environmentally benign alternatives to gain more benefits of green hydrogen. In this work, a novel power generation plant based on supercritical Closed Brayton Cycle (CBC) driven by solar heliostat field is designed and optimized to be integrated with an...

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Published in:Sustainable Energy Technologies and Assessments
Main Author: Hai T.; Dhahad H.A.; ATTIA E.-A.; Zakaria Z.; Rashidi S.; Kumar Singh P.; Shamseldin M.A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.; Cao Y.
Format: Article
Language:English
Published: Elsevier Ltd 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85136335315&doi=10.1016%2fj.seta.2022.102599&partnerID=40&md5=0f5835ac3396fa60ecc2817d4e4a73d9
id 2-s2.0-85136335315
spelling 2-s2.0-85136335315
Hai T.; Dhahad H.A.; ATTIA E.-A.; Zakaria Z.; Rashidi S.; Kumar Singh P.; Shamseldin M.A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.; Cao Y.
Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
2022
Sustainable Energy Technologies and Assessments
53

10.1016/j.seta.2022.102599
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85136335315&doi=10.1016%2fj.seta.2022.102599&partnerID=40&md5=0f5835ac3396fa60ecc2817d4e4a73d9
Solar-driven hydrogen production systems are environmentally benign alternatives to gain more benefits of green hydrogen. In this work, a novel power generation plant based on supercritical Closed Brayton Cycle (CBC) driven by solar heliostat field is designed and optimized to be integrated with an electrolyzer for green hydrogen production. To improve the CBC performance, its waste heat is recovered by an organic Rankine cycle (for additional power generation) and an absorption chiller for compressor inlet cooling. Thermoeconomic models are developed to evaluate the proposed hydrogen production plants and to compare the proposed combined cycle performance with that of standalone CBC-based system, in terms of hydrogen production rate, solar-to-hydrogen exergy efficiency and levelized cost of produced hydrogen. Then, a bi-objective optimization is conducted to attain minimum hydrogen cost and maximum exergy efficiency. The results revealed superior performance of the combined cycle over the CBC-based system. Under the optimum operating condition, the combined cycle yields around 15.8% higher hydrogen production rate and solar-to-hydrogen efficiency, and approximately 4.2% lower hydrogen cost. This implies that, the additional expenditures imposed by adding the bottoming cycles are totally compensated by extra hydrogen production, which in this case it costs 7.01$/kgH. A comparison with a solar tower-based previous system proved superiority of the present plant by around 5% based on solar-to-hydrogen exergy efficiency. © 2022 Elsevier Ltd
Elsevier Ltd
22131388
English
Article

author Hai T.; Dhahad H.A.; ATTIA E.-A.; Zakaria Z.; Rashidi S.; Kumar Singh P.; Shamseldin M.A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.; Cao Y.
spellingShingle Hai T.; Dhahad H.A.; ATTIA E.-A.; Zakaria Z.; Rashidi S.; Kumar Singh P.; Shamseldin M.A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.; Cao Y.
Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
author_facet Hai T.; Dhahad H.A.; ATTIA E.-A.; Zakaria Z.; Rashidi S.; Kumar Singh P.; Shamseldin M.A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.; Cao Y.
author_sort Hai T.; Dhahad H.A.; ATTIA E.-A.; Zakaria Z.; Rashidi S.; Kumar Singh P.; Shamseldin M.A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.; Cao Y.
title Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
title_short Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
title_full Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
title_fullStr Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
title_full_unstemmed Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
title_sort Design, modeling and multi-objective techno-economic optimization of an integrated supercritical Brayton cycle with solar power tower for efficient hydrogen production
publishDate 2022
container_title Sustainable Energy Technologies and Assessments
container_volume 53
container_issue
doi_str_mv 10.1016/j.seta.2022.102599
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85136335315&doi=10.1016%2fj.seta.2022.102599&partnerID=40&md5=0f5835ac3396fa60ecc2817d4e4a73d9
description Solar-driven hydrogen production systems are environmentally benign alternatives to gain more benefits of green hydrogen. In this work, a novel power generation plant based on supercritical Closed Brayton Cycle (CBC) driven by solar heliostat field is designed and optimized to be integrated with an electrolyzer for green hydrogen production. To improve the CBC performance, its waste heat is recovered by an organic Rankine cycle (for additional power generation) and an absorption chiller for compressor inlet cooling. Thermoeconomic models are developed to evaluate the proposed hydrogen production plants and to compare the proposed combined cycle performance with that of standalone CBC-based system, in terms of hydrogen production rate, solar-to-hydrogen exergy efficiency and levelized cost of produced hydrogen. Then, a bi-objective optimization is conducted to attain minimum hydrogen cost and maximum exergy efficiency. The results revealed superior performance of the combined cycle over the CBC-based system. Under the optimum operating condition, the combined cycle yields around 15.8% higher hydrogen production rate and solar-to-hydrogen efficiency, and approximately 4.2% lower hydrogen cost. This implies that, the additional expenditures imposed by adding the bottoming cycles are totally compensated by extra hydrogen production, which in this case it costs 7.01$/kgH. A comparison with a solar tower-based previous system proved superiority of the present plant by around 5% based on solar-to-hydrogen exergy efficiency. © 2022 Elsevier Ltd
publisher Elsevier Ltd
issn 22131388
language English
format Article
accesstype
record_format scopus
collection Scopus
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