Optimal design and sizing of integrated centralized and decentralized energy systems

Concerns over sustainability of fossil fuels, and increasing awareness for the environment have encouraged countries all over the world to shift from the heavy reliance on fossil fuel to renewable energy (RE) resources for electricity generation. Although implementation of RE has been on the rise, l...

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Main Authors: Liu, Wen Hui, Wan Alwi, Sharifah Rafidah, Hashim, Haslenda, Ab Muis, Zarina
Format: Conference or Workshop Item
Published: - 2016
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Online Access:http://eprints.utm.my/id/eprint/66955/
http://dx.doi.org/10.1016/j.egypro.2017.03.866
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spelling my.utm.669552017-07-26T07:19:59Z http://eprints.utm.my/id/eprint/66955/ Optimal design and sizing of integrated centralized and decentralized energy systems Liu, Wen Hui Wan Alwi, Sharifah Rafidah Hashim, Haslenda Ab Muis, Zarina TP Chemical technology Concerns over sustainability of fossil fuels, and increasing awareness for the environment have encouraged countries all over the world to shift from the heavy reliance on fossil fuel to renewable energy (RE) resources for electricity generation. Although implementation of RE has been on the rise, large-scale deployment of RE still remains a challenge, especially in terms of economic and technicality. This paper proposes the integration of the current energy system (centralised energy system, CEG running on mainly fossil fuels) with the new energy system (decentralised energy system, DEG). Numerical analysis is developed to solve and target the proposed multiple DEGs and CEG integrated system at its optimum design and sizing. Two existing numerical approaches in Power Pinch Analysis are applied, i.e. Power Pinch Analysis (PoPA) for a smaller scale decentralised energy systems while the net energy deficit will be satisfied in a centralised energy system via Electric System Cascade Analysis (ESCA). The designated combination of Power Pinch methodology in this study is based on an hourly scale operation of both systems. With case study of five (5) DEG(s), the analysis indicates that DEG 1 has 540 MWh for energy-related capacity and 70 MW for power-related capacity. DEG 2, 480 MWh and 70 MW, DEG 3, 480 MWh and 120 MW, DEG 4, 1,000 MWh and 150 MW, and DEG 5, 100 MWh and 90 MW. The CEG power plants should have a total capacity of 48.3 MW with energy storage of 270.6 MWh and 45.1 MW. - 2016-01-10 Conference or Workshop Item PeerReviewed Liu, Wen Hui and Wan Alwi, Sharifah Rafidah and Hashim, Haslenda and Ab Muis, Zarina (2016) Optimal design and sizing of integrated centralized and decentralized energy systems. In: 8th International Conference on Applied Energy (ICAE2016), 08-11 Oct, 2016, Beijing, China. http://dx.doi.org/10.1016/j.egypro.2017.03.866
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Liu, Wen Hui
Wan Alwi, Sharifah Rafidah
Hashim, Haslenda
Ab Muis, Zarina
Optimal design and sizing of integrated centralized and decentralized energy systems
description Concerns over sustainability of fossil fuels, and increasing awareness for the environment have encouraged countries all over the world to shift from the heavy reliance on fossil fuel to renewable energy (RE) resources for electricity generation. Although implementation of RE has been on the rise, large-scale deployment of RE still remains a challenge, especially in terms of economic and technicality. This paper proposes the integration of the current energy system (centralised energy system, CEG running on mainly fossil fuels) with the new energy system (decentralised energy system, DEG). Numerical analysis is developed to solve and target the proposed multiple DEGs and CEG integrated system at its optimum design and sizing. Two existing numerical approaches in Power Pinch Analysis are applied, i.e. Power Pinch Analysis (PoPA) for a smaller scale decentralised energy systems while the net energy deficit will be satisfied in a centralised energy system via Electric System Cascade Analysis (ESCA). The designated combination of Power Pinch methodology in this study is based on an hourly scale operation of both systems. With case study of five (5) DEG(s), the analysis indicates that DEG 1 has 540 MWh for energy-related capacity and 70 MW for power-related capacity. DEG 2, 480 MWh and 70 MW, DEG 3, 480 MWh and 120 MW, DEG 4, 1,000 MWh and 150 MW, and DEG 5, 100 MWh and 90 MW. The CEG power plants should have a total capacity of 48.3 MW with energy storage of 270.6 MWh and 45.1 MW.
format Conference or Workshop Item
author Liu, Wen Hui
Wan Alwi, Sharifah Rafidah
Hashim, Haslenda
Ab Muis, Zarina
author_facet Liu, Wen Hui
Wan Alwi, Sharifah Rafidah
Hashim, Haslenda
Ab Muis, Zarina
author_sort Liu, Wen Hui
title Optimal design and sizing of integrated centralized and decentralized energy systems
title_short Optimal design and sizing of integrated centralized and decentralized energy systems
title_full Optimal design and sizing of integrated centralized and decentralized energy systems
title_fullStr Optimal design and sizing of integrated centralized and decentralized energy systems
title_full_unstemmed Optimal design and sizing of integrated centralized and decentralized energy systems
title_sort optimal design and sizing of integrated centralized and decentralized energy systems
publisher -
publishDate 2016
url http://eprints.utm.my/id/eprint/66955/
http://dx.doi.org/10.1016/j.egypro.2017.03.866
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score 13.160551