Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization
Due to the fact that biomass fuel is capable of powering multi-generation systems, has a high-efficiency performance, and produces fewer harmful gases, biomass fuel can prove to be a valuable heat source. In this regard, this study introduces a new biomass-fueled power and hydrogen generation scheme...
Published in: | INTERNATIONAL JOURNAL OF HYDROGEN ENERGY |
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Main Authors: | , , , , , , , , |
Format: | Article |
Language: | English |
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PERGAMON-ELSEVIER SCIENCE LTD
2024
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Online Access: | https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001139416800001 |
author |
Hai Tao; Ali Masood Ashraf; Alizadeh As'ad; Almojil Sattam Fahad; Singh Pradeep Kumar; Almohana Abdulaziz Ibrahim; Almoalimi Khaled Twfiq; Alali Abdulrhman Fahmi |
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spellingShingle |
Hai Tao; Ali Masood Ashraf; Alizadeh As'ad; Almojil Sattam Fahad; Singh Pradeep Kumar; Almohana Abdulaziz Ibrahim; Almoalimi Khaled Twfiq; Alali Abdulrhman Fahmi Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization Chemistry; Electrochemistry; Energy & Fuels |
author_facet |
Hai Tao; Ali Masood Ashraf; Alizadeh As'ad; Almojil Sattam Fahad; Singh Pradeep Kumar; Almohana Abdulaziz Ibrahim; Almoalimi Khaled Twfiq; Alali Abdulrhman Fahmi |
author_sort |
Hai |
spelling |
Hai, Tao; Ali, Masood Ashraf; Alizadeh, As'ad; Almojil, Sattam Fahad; Singh, Pradeep Kumar; Almohana, Abdulaziz Ibrahim; Almoalimi, Khaled Twfiq; Alali, Abdulrhman Fahmi Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization INTERNATIONAL JOURNAL OF HYDROGEN ENERGY English Article Due to the fact that biomass fuel is capable of powering multi-generation systems, has a high-efficiency performance, and produces fewer harmful gases, biomass fuel can prove to be a valuable heat source. In this regard, this study introduces a new biomass-fueled power and hydrogen generation scheme. There are three subsystems involved in the study: a biomass-based gas turbine cycle, a steam flash cycle, and an electrolyzer unit. To begin, a parametric analysis is performed on the system from the perspectives of thermodynamics, thermoeconomic, and the environment. As a next step, four effective variables are evaluated for single-objective and bi-objective optimizations in order to determine the optimal working conditions. The results of bi-objective optimization indicate 48.78% and 41.40% energy and exergy efficiencies for the presented system, separately, with 8093 kW output power, 86.1 kg/day hydrogen production, 8684 t/MWh CO2 emission, and 27.9 $/MWh Levelized Cost of Product. Compared to the base condition, hydrogen production grows 29.78%, but output power drops by 1.14%. Furthermore, hydrogen Production Optimum Design accounts for the maximum amount of hydrogen production in optimal conditions, producing 94.73 kg/day. The gasifier destroys the most exergy under base and optimum conditions. (c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved. PERGAMON-ELSEVIER SCIENCE LTD 0360-3199 1879-3487 2024 52 10.1016/j.ijhydene.2022.11.279 Chemistry; Electrochemistry; Energy & Fuels WOS:001139416800001 https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001139416800001 |
title |
Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization |
title_short |
Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization |
title_full |
Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization |
title_fullStr |
Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization |
title_full_unstemmed |
Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization |
title_sort |
Design of a biomass-fueled system to produce hydrogen/power: Environmental analyses and Bi-objective optimization |
container_title |
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY |
language |
English |
format |
Article |
description |
Due to the fact that biomass fuel is capable of powering multi-generation systems, has a high-efficiency performance, and produces fewer harmful gases, biomass fuel can prove to be a valuable heat source. In this regard, this study introduces a new biomass-fueled power and hydrogen generation scheme. There are three subsystems involved in the study: a biomass-based gas turbine cycle, a steam flash cycle, and an electrolyzer unit. To begin, a parametric analysis is performed on the system from the perspectives of thermodynamics, thermoeconomic, and the environment. As a next step, four effective variables are evaluated for single-objective and bi-objective optimizations in order to determine the optimal working conditions. The results of bi-objective optimization indicate 48.78% and 41.40% energy and exergy efficiencies for the presented system, separately, with 8093 kW output power, 86.1 kg/day hydrogen production, 8684 t/MWh CO2 emission, and 27.9 $/MWh Levelized Cost of Product. Compared to the base condition, hydrogen production grows 29.78%, but output power drops by 1.14%. Furthermore, hydrogen Production Optimum Design accounts for the maximum amount of hydrogen production in optimal conditions, producing 94.73 kg/day. The gasifier destroys the most exergy under base and optimum conditions. (c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved. |
publisher |
PERGAMON-ELSEVIER SCIENCE LTD |
issn |
0360-3199 1879-3487 |
publishDate |
2024 |
container_volume |
52 |
container_issue |
|
doi_str_mv |
10.1016/j.ijhydene.2022.11.279 |
topic |
Chemistry; Electrochemistry; Energy & Fuels |
topic_facet |
Chemistry; Electrochemistry; Energy & Fuels |
accesstype |
|
id |
WOS:001139416800001 |
url |
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001139416800001 |
record_format |
wos |
collection |
Web of Science (WoS) |
_version_ |
1809678579219300352 |