Optimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis

Hydrogen energy technologies have attracted substantial attention due to carbon-free and environmental friendly. However, not much attention is paid to the application of hydrogen in tri- and polygeneration system. Hence, a renewable-based multi-energy system (RMES) is proposed to combine four separ...

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Autores principales: Kang Ying Pang, Peng Yen Liew, Wai Shin Ho, Kok Sin Woon, Sharifah Rafidah Wan Alwi, Jirí Jaromír Klemeš
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Publicado: AIDIC Servizi S.r.l. 2021
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Acceso en línea:https://doaj.org/article/d275d82afaec4c5f9fb8166a848049fe
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spelling oai:doaj.org-article:d275d82afaec4c5f9fb8166a848049fe2021-11-15T21:48:49ZOptimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis10.3303/CET21880332283-9216https://doaj.org/article/d275d82afaec4c5f9fb8166a848049fe2021-11-01T00:00:00Zhttps://www.cetjournal.it/index.php/cet/article/view/11826https://doaj.org/toc/2283-9216Hydrogen energy technologies have attracted substantial attention due to carbon-free and environmental friendly. However, not much attention is paid to the application of hydrogen in tri- and polygeneration system. Hence, a renewable-based multi-energy system (RMES) is proposed to combine four separate systems: cooling, heating, hydrogen, and power. Renewable solar energy is supplied to the system utilising a photovoltaic solar panel for the electrical supply and a solar thermal collector for the heating supply. Thermal and electrical energy storage is utilised to mitigate the fluctuations in the energy consumption and peak shaving characteristics of the multi-energy system. The hydrogen sub-system consists of solid oxide fuel cell, solid oxide electrolyser cell and hydrogen energy storage. A comparative analysis is performed to study the effect of different energy storage on each objective function. A multi-objective optimisation approach was proposed to evaluate trade-offs between two different objective functions: economic and environment. A well-known decision-making approach E-constraint method has been applied to identify the final desired Pareto optimal solution for the model to be more suitable in reality. This result will contribute to the global goal on energy (SDG 7) to strive towards affordable and clean energy to significantly increase the share of renewable energy in the global energy mix.Kang Ying PangPeng Yen LiewWai Shin HoKok Sin WoonSharifah Rafidah Wan AlwiJirí Jaromír KlemešAIDIC Servizi S.r.l.articleChemical engineeringTP155-156Computer engineering. Computer hardwareTK7885-7895ENChemical Engineering Transactions, Vol 88 (2021)
institution DOAJ
collection DOAJ
language EN
topic Chemical engineering
TP155-156
Computer engineering. Computer hardware
TK7885-7895
spellingShingle Chemical engineering
TP155-156
Computer engineering. Computer hardware
TK7885-7895
Kang Ying Pang
Peng Yen Liew
Wai Shin Ho
Kok Sin Woon
Sharifah Rafidah Wan Alwi
Jirí Jaromír Klemeš
Optimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis
description Hydrogen energy technologies have attracted substantial attention due to carbon-free and environmental friendly. However, not much attention is paid to the application of hydrogen in tri- and polygeneration system. Hence, a renewable-based multi-energy system (RMES) is proposed to combine four separate systems: cooling, heating, hydrogen, and power. Renewable solar energy is supplied to the system utilising a photovoltaic solar panel for the electrical supply and a solar thermal collector for the heating supply. Thermal and electrical energy storage is utilised to mitigate the fluctuations in the energy consumption and peak shaving characteristics of the multi-energy system. The hydrogen sub-system consists of solid oxide fuel cell, solid oxide electrolyser cell and hydrogen energy storage. A comparative analysis is performed to study the effect of different energy storage on each objective function. A multi-objective optimisation approach was proposed to evaluate trade-offs between two different objective functions: economic and environment. A well-known decision-making approach E-constraint method has been applied to identify the final desired Pareto optimal solution for the model to be more suitable in reality. This result will contribute to the global goal on energy (SDG 7) to strive towards affordable and clean energy to significantly increase the share of renewable energy in the global energy mix.
format article
author Kang Ying Pang
Peng Yen Liew
Wai Shin Ho
Kok Sin Woon
Sharifah Rafidah Wan Alwi
Jirí Jaromír Klemeš
author_facet Kang Ying Pang
Peng Yen Liew
Wai Shin Ho
Kok Sin Woon
Sharifah Rafidah Wan Alwi
Jirí Jaromír Klemeš
author_sort Kang Ying Pang
title Optimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis
title_short Optimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis
title_full Optimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis
title_fullStr Optimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis
title_full_unstemmed Optimisation of Renewable-Based Multi-Energy System with Hydrogen Energy for Urban-Industrial Symbiosis
title_sort optimisation of renewable-based multi-energy system with hydrogen energy for urban-industrial symbiosis
publisher AIDIC Servizi S.r.l.
publishDate 2021
url https://doaj.org/article/d275d82afaec4c5f9fb8166a848049fe
work_keys_str_mv AT kangyingpang optimisationofrenewablebasedmultienergysystemwithhydrogenenergyforurbanindustrialsymbiosis
AT pengyenliew optimisationofrenewablebasedmultienergysystemwithhydrogenenergyforurbanindustrialsymbiosis
AT waishinho optimisationofrenewablebasedmultienergysystemwithhydrogenenergyforurbanindustrialsymbiosis
AT koksinwoon optimisationofrenewablebasedmultienergysystemwithhydrogenenergyforurbanindustrialsymbiosis
AT sharifahrafidahwanalwi optimisationofrenewablebasedmultienergysystemwithhydrogenenergyforurbanindustrialsymbiosis
AT jirijaromirklemes optimisationofrenewablebasedmultienergysystemwithhydrogenenergyforurbanindustrialsymbiosis
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