Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial Symbiosis

Greenhouse gaseous (GHG) emissions are significant global challenges, leading to climate change. The industrial sector is the most significant contributor to global energy consumption, burning fuel and emitting GHG. This study aims to extend the Total Site Heat Integration (TSHI) methodology for cle...

Full description

Bibliographic Details
Main Authors: Wan Aina Syahirah Wan Abdullah, Imran Ismail, Peng Yen Liew, Kok Sin Woon, Wai Shin Ho, Jirí Jaromír Klemeš
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2022-09-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/12772
_version_ 1798002663837663232
author Wan Aina Syahirah Wan Abdullah
Imran Ismail
Peng Yen Liew
Kok Sin Woon
Wai Shin Ho
Jirí Jaromír Klemeš
author_facet Wan Aina Syahirah Wan Abdullah
Imran Ismail
Peng Yen Liew
Kok Sin Woon
Wai Shin Ho
Jirí Jaromír Klemeš
author_sort Wan Aina Syahirah Wan Abdullah
collection DOAJ
description Greenhouse gaseous (GHG) emissions are significant global challenges, leading to climate change. The industrial sector is the most significant contributor to global energy consumption, burning fuel and emitting GHG. This study aims to extend the Total Site Heat Integration (TSHI) methodology for clean decentralised energy systems to power an eco-city with Urban-Industrial Symbiosis (UIS). The system is assumed to work on the UIS's thermal energy and power systems. A Pinch-based cascade analysis is extended to simulate the hydrogen energy storage to recover thermal and electricity in the energy system, which can determine the hydrogen storage capacity, known as Total Site - Hydrogen Storage Cascade (TS-H2SC). The hydrogen energy storage system is configured to store excess electricity, and waste heat energy potential to be consumed later or sold off by the system. The methodology is demonstrated with an illustrative case study to integrate hydrogen storage for energy recovery in an Urban-Industrial Energy System. In the illustrative case study, the total electricity to be sold to the grid is found at 701 kWh, while the capacity of the Liquid Organic Hydrogen Carrier (LOHC) system is targeted at 2,616 kg of loaded LOHC. The application of a hydrogen storage system is compared with thermochemical energy storage and power storage systems. The research found that the LOHC system with condensing steam turbine rather than ORC has the most significant potential for energy saving in the UIES.
first_indexed 2024-04-11T11:55:45Z
format Article
id doaj.art-e57dfc9fad2047ee8e072e7e22bf18ac
institution Directory Open Access Journal
issn 2283-9216
language English
last_indexed 2024-04-11T11:55:45Z
publishDate 2022-09-01
publisher AIDIC Servizi S.r.l.
record_format Article
series Chemical Engineering Transactions
spelling doaj.art-e57dfc9fad2047ee8e072e7e22bf18ac2022-12-22T04:25:10ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162022-09-019410.3303/CET2294215Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial SymbiosisWan Aina Syahirah Wan AbdullahImran IsmailPeng Yen LiewKok Sin WoonWai Shin HoJirí Jaromír KlemešGreenhouse gaseous (GHG) emissions are significant global challenges, leading to climate change. The industrial sector is the most significant contributor to global energy consumption, burning fuel and emitting GHG. This study aims to extend the Total Site Heat Integration (TSHI) methodology for clean decentralised energy systems to power an eco-city with Urban-Industrial Symbiosis (UIS). The system is assumed to work on the UIS's thermal energy and power systems. A Pinch-based cascade analysis is extended to simulate the hydrogen energy storage to recover thermal and electricity in the energy system, which can determine the hydrogen storage capacity, known as Total Site - Hydrogen Storage Cascade (TS-H2SC). The hydrogen energy storage system is configured to store excess electricity, and waste heat energy potential to be consumed later or sold off by the system. The methodology is demonstrated with an illustrative case study to integrate hydrogen storage for energy recovery in an Urban-Industrial Energy System. In the illustrative case study, the total electricity to be sold to the grid is found at 701 kWh, while the capacity of the Liquid Organic Hydrogen Carrier (LOHC) system is targeted at 2,616 kg of loaded LOHC. The application of a hydrogen storage system is compared with thermochemical energy storage and power storage systems. The research found that the LOHC system with condensing steam turbine rather than ORC has the most significant potential for energy saving in the UIES.https://www.cetjournal.it/index.php/cet/article/view/12772
spellingShingle Wan Aina Syahirah Wan Abdullah
Imran Ismail
Peng Yen Liew
Kok Sin Woon
Wai Shin Ho
Jirí Jaromír Klemeš
Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial Symbiosis
Chemical Engineering Transactions
title Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial Symbiosis
title_full Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial Symbiosis
title_fullStr Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial Symbiosis
title_full_unstemmed Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial Symbiosis
title_short Hydrogen-based Energy Storage Targeting for the Integrated Heat and Power System in Urban-Industrial Symbiosis
title_sort hydrogen based energy storage targeting for the integrated heat and power system in urban industrial symbiosis
url https://www.cetjournal.it/index.php/cet/article/view/12772
work_keys_str_mv AT wanainasyahirahwanabdullah hydrogenbasedenergystoragetargetingfortheintegratedheatandpowersysteminurbanindustrialsymbiosis
AT imranismail hydrogenbasedenergystoragetargetingfortheintegratedheatandpowersysteminurbanindustrialsymbiosis
AT pengyenliew hydrogenbasedenergystoragetargetingfortheintegratedheatandpowersysteminurbanindustrialsymbiosis
AT koksinwoon hydrogenbasedenergystoragetargetingfortheintegratedheatandpowersysteminurbanindustrialsymbiosis
AT waishinho hydrogenbasedenergystoragetargetingfortheintegratedheatandpowersysteminurbanindustrialsymbiosis
AT jirijaromirklemes hydrogenbasedenergystoragetargetingfortheintegratedheatandpowersysteminurbanindustrialsymbiosis