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KONG, K. LO, S. HOW, B. LEONG, W. TENG, S. NG, W. SUNARSO, J.
Original Title
Enhanced automated targeting model for multi-period energy planning
Type
journal article in Scopus
Language
English
Original Abstract
The shortage of non-renewable power supplies and critical environmental issues such as climate change, urban sprawl, ozone layer depletion and excessive carbon emission are the main driving forces that urged many countries and non-profit organisations fully committed to seeking more sustainable energy sources and energy planning. Various Process Integration techniques have been developed, extended and utilized in the energy planning sector. Based on the literature review, the use of time-sliced based models in energy integration is still limited. This paper aims to develop time-sliced models that can be applied into an energy integration model that promises higher energy efficiency in power generation energy planning. To accomplish this, a two-stage framework involving (i) targeting and (ii) scheduling is proposed. The targeting step is to determine the minimum amount of renewable energy sources needed to meet the carbon emission limit whereas the scheduling step is to discover the optimal scheduling of introduced renewable energy sources to mitigate the total electricity bill. It is proposed that with the aid of adequate planning, the economic benefit of utilising renewable energy can be realized. A case study in Malaysia that incorporates an actual billing system is used to demonstrate the effectiveness of the model in reducing both carbon emission and energy cost simultaneously. With the use of the proposed framework and developed model, 46.9 % of electricity bill can be reduced while emission is reduced by 40 % compared to the initial emission.
Keywords
targeting; energy planning; sustainable energy; integration
Authors
KONG, K.; LO, S.; HOW, B.; LEONG, W.; TENG, S.; NG, W.; SUNARSO, J.
Released
17. 8. 2020
Publisher
Aidic Servizi Srl
Location
Milano, Italy
ISBN
2283-9216
Periodical
Chemical Engineering Transactions
Year of study
81
Number
1
State
Republic of Italy
Pages from
607
Pages to
612
Pages count
6
URL
https://www.aidic.it/cet/20/81/102.pdf
BibTex
@article{BUT177019, author="Karen Gah Hie {Kong} and Shirleen Lee Yuen {Lo} and Bing Shen {How} and Wei Dong {Leong} and Sin Yong {Teng} and Wendy Pei Qin {Ng} and Jaka {Sunarso}", title="Enhanced automated targeting model for multi-period energy planning", journal="Chemical Engineering Transactions", year="2020", volume="81", number="1", pages="607--612", doi="10.3303/CET2081102", issn="2283-9216", url="https://www.aidic.it/cet/20/81/102.pdf" }