Multiple-objective optimization on ammonia decomposition using membrane reactor

Ammonia plays a key role in the renewable hydrogen economy nowadays, thus, the efficiency of ammonia decomposition for hydrogen production becomes an important research topic. In this study, a numerical model was built to study the performance of ammonia decomposition using a membrane reactor and Ru...

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Main Authors: Chen, Wei-Hsin, Chou, Wei-Shan, Chein, Rei-Yu, Hoang, Anh Tuan, Juan, Joon Ching
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Published: PERGAMON-ELSEVIER SCIENCE LTD 2024
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Online Access:http://eprints.um.edu.my/44232/
https://doi.org/10.1016/j.ijhydene.2023.05.081
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spelling my.um.eprints.442322024-06-25T07:11:28Z http://eprints.um.edu.my/44232/ Multiple-objective optimization on ammonia decomposition using membrane reactor Chen, Wei-Hsin Chou, Wei-Shan Chein, Rei-Yu Hoang, Anh Tuan Juan, Joon Ching QD Chemistry TD Environmental technology. Sanitary engineering Ammonia plays a key role in the renewable hydrogen economy nowadays, thus, the efficiency of ammonia decomposition for hydrogen production becomes an important research topic. In this study, a numerical model was built to study the performance of ammonia decomposition using a membrane reactor and Ru/Al2O3 catalyst under various operating conditions such as feed NH3 temperature and volume flow rate as well as retentate side pressure. The reactor performance was characterized by ammonia conversion, hydrogen recovery, and recovered hydrogen flow rate. Pre-exponential factor and activation energy of ammonia reaction rate were obtained by equilibrium conversion and two-step parametric sweeping. It was found that ammonia conversion can be increased by about 33% compared to a conventional fixed-bed reactor under the same operating conditions. H2 recovery can be enhanced when the reactant inlet temperature and the pressure difference between the retentate and permeate sides increase. The increase in feed NH3 flow rate (gas hourly space velocity, GHSV) decreased the ammonia conversion and H2 recovery. An optimum GHSV that results in a maximum recovered H2 flow rate can be found. Finally, optimum operation conditions for maximizing the hydrogen recovery and recovered hydrogen flow rate were analyzed using the multi-objective Non-dominated sorting genetic algorithm-II (NSGA-II). It was found that maximum H2 recovery with a value of 79.7% can be obtained under the conditions of inlet temperature of 336 degrees C, GHSV of 900 h-1, and retentate side pressure of 9.9875 bar. The maximum recovered hydrogen flow rate with a value of 9:55 x10-14 (mol center dot s-1) can be obtained under the conditions of an inlet temperature of 394 degrees C, GHSV of 1315 h-1, and retentate side pressure of 9.9879 bar. (c) 2023 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved. PERGAMON-ELSEVIER SCIENCE LTD 2024-01-02 Article PeerReviewed Chen, Wei-Hsin and Chou, Wei-Shan and Chein, Rei-Yu and Hoang, Anh Tuan and Juan, Joon Ching (2024) Multiple-objective optimization on ammonia decomposition using membrane reactor. International Journal of Hydrogen Energy, 52 (B). pp. 1002-1017. ISSN 1879-3487, DOI https://doi.org/10.1016/j.ijhydene.2023.05.081 <https://doi.org/10.1016/j.ijhydene.2023.05.081>. https://doi.org/10.1016/j.ijhydene.2023.05.081 10.1016/j.ijhydene.2023.05.081
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QD Chemistry
TD Environmental technology. Sanitary engineering
spellingShingle QD Chemistry
TD Environmental technology. Sanitary engineering
Chen, Wei-Hsin
Chou, Wei-Shan
Chein, Rei-Yu
Hoang, Anh Tuan
Juan, Joon Ching
Multiple-objective optimization on ammonia decomposition using membrane reactor
description Ammonia plays a key role in the renewable hydrogen economy nowadays, thus, the efficiency of ammonia decomposition for hydrogen production becomes an important research topic. In this study, a numerical model was built to study the performance of ammonia decomposition using a membrane reactor and Ru/Al2O3 catalyst under various operating conditions such as feed NH3 temperature and volume flow rate as well as retentate side pressure. The reactor performance was characterized by ammonia conversion, hydrogen recovery, and recovered hydrogen flow rate. Pre-exponential factor and activation energy of ammonia reaction rate were obtained by equilibrium conversion and two-step parametric sweeping. It was found that ammonia conversion can be increased by about 33% compared to a conventional fixed-bed reactor under the same operating conditions. H2 recovery can be enhanced when the reactant inlet temperature and the pressure difference between the retentate and permeate sides increase. The increase in feed NH3 flow rate (gas hourly space velocity, GHSV) decreased the ammonia conversion and H2 recovery. An optimum GHSV that results in a maximum recovered H2 flow rate can be found. Finally, optimum operation conditions for maximizing the hydrogen recovery and recovered hydrogen flow rate were analyzed using the multi-objective Non-dominated sorting genetic algorithm-II (NSGA-II). It was found that maximum H2 recovery with a value of 79.7% can be obtained under the conditions of inlet temperature of 336 degrees C, GHSV of 900 h-1, and retentate side pressure of 9.9875 bar. The maximum recovered hydrogen flow rate with a value of 9:55 x10-14 (mol center dot s-1) can be obtained under the conditions of an inlet temperature of 394 degrees C, GHSV of 1315 h-1, and retentate side pressure of 9.9879 bar. (c) 2023 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
format Article
author Chen, Wei-Hsin
Chou, Wei-Shan
Chein, Rei-Yu
Hoang, Anh Tuan
Juan, Joon Ching
author_facet Chen, Wei-Hsin
Chou, Wei-Shan
Chein, Rei-Yu
Hoang, Anh Tuan
Juan, Joon Ching
author_sort Chen, Wei-Hsin
title Multiple-objective optimization on ammonia decomposition using membrane reactor
title_short Multiple-objective optimization on ammonia decomposition using membrane reactor
title_full Multiple-objective optimization on ammonia decomposition using membrane reactor
title_fullStr Multiple-objective optimization on ammonia decomposition using membrane reactor
title_full_unstemmed Multiple-objective optimization on ammonia decomposition using membrane reactor
title_sort multiple-objective optimization on ammonia decomposition using membrane reactor
publisher PERGAMON-ELSEVIER SCIENCE LTD
publishDate 2024
url http://eprints.um.edu.my/44232/
https://doi.org/10.1016/j.ijhydene.2023.05.081
_version_ 1805881139238273024
score 13.188404