Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction
In this study, a biomass based power generation system is proposed. This system includes a BIG (BIG) system to produce syngas, a proton exchange membrane (PEM) type fuel cell (FC), a gas turbine (GT), and an organic Rankine cycle (ORC). In order to evaluate the system function, first a parametric st...
Published in: | International Journal of Hydrogen Energy |
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Elsevier Ltd
2024
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2-s2.0-85165130395 Hai T.; Alenizi F.A.; Flaih L.R.; Singh Chauhan B.; Metwally A.S.M. Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction 2024 International Journal of Hydrogen Energy 52 10.1016/j.ijhydene.2023.06.300 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85165130395&doi=10.1016%2fj.ijhydene.2023.06.300&partnerID=40&md5=532e6831991fb5f6120c37c37be41c55 In this study, a biomass based power generation system is proposed. This system includes a BIG (BIG) system to produce syngas, a proton exchange membrane (PEM) type fuel cell (FC), a gas turbine (GT), and an organic Rankine cycle (ORC). In order to evaluate the system function, first a parametric study is conducted and the effect of the design variables on the production power, exergy efficiency, and the total cost rate (TCR) of the system is investigated. Design variables include biomass moisture content, gasification temperature, compressor pressure ratio, air heat exchanger temperature difference, pressure of FC, current density of FC, LP Stage PPTD, and HP stage pressure. It is observed that the determining factors in the TCR of the system are more affected by the cost of the gasifier and PEM FC system. It is also observed that the ORC plays a greater role in recovering wasted heat and generating power compared to GT. Finally, it is observed that in optimal operating conditions, the exergy efficiency of the system are 33.19% and TCR is 693 $/h, respectively. © 2023 Hydrogen Energy Publications LLC Elsevier Ltd 3603199 English Article |
author |
Hai T.; Alenizi F.A.; Flaih L.R.; Singh Chauhan B.; Metwally A.S.M. |
spellingShingle |
Hai T.; Alenizi F.A.; Flaih L.R.; Singh Chauhan B.; Metwally A.S.M. Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction |
author_facet |
Hai T.; Alenizi F.A.; Flaih L.R.; Singh Chauhan B.; Metwally A.S.M. |
author_sort |
Hai T.; Alenizi F.A.; Flaih L.R.; Singh Chauhan B.; Metwally A.S.M. |
title |
Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction |
title_short |
Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction |
title_full |
Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction |
title_fullStr |
Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction |
title_full_unstemmed |
Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction |
title_sort |
Dual-objective optimization of a novel hybrid power generation system based on hydrogen production unit for emission reduction |
publishDate |
2024 |
container_title |
International Journal of Hydrogen Energy |
container_volume |
52 |
container_issue |
|
doi_str_mv |
10.1016/j.ijhydene.2023.06.300 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85165130395&doi=10.1016%2fj.ijhydene.2023.06.300&partnerID=40&md5=532e6831991fb5f6120c37c37be41c55 |
description |
In this study, a biomass based power generation system is proposed. This system includes a BIG (BIG) system to produce syngas, a proton exchange membrane (PEM) type fuel cell (FC), a gas turbine (GT), and an organic Rankine cycle (ORC). In order to evaluate the system function, first a parametric study is conducted and the effect of the design variables on the production power, exergy efficiency, and the total cost rate (TCR) of the system is investigated. Design variables include biomass moisture content, gasification temperature, compressor pressure ratio, air heat exchanger temperature difference, pressure of FC, current density of FC, LP Stage PPTD, and HP stage pressure. It is observed that the determining factors in the TCR of the system are more affected by the cost of the gasifier and PEM FC system. It is also observed that the ORC plays a greater role in recovering wasted heat and generating power compared to GT. Finally, it is observed that in optimal operating conditions, the exergy efficiency of the system are 33.19% and TCR is 693 $/h, respectively. © 2023 Hydrogen Energy Publications LLC |
publisher |
Elsevier Ltd |
issn |
3603199 |
language |
English |
format |
Article |
accesstype |
|
record_format |
scopus |
collection |
Scopus |
_version_ |
1809678011328364544 |