Please use this identifier to cite or link to this item: https://hdl.handle.net/10316/113391
Title: Electricity, Transportation, and Water Provision of 100% Renewable Energy for Remote Areas
Authors: Torabi, Roham 
Gomes, Álvaro 
Morgado-Dias, Fernando
Keywords: hybrid RES; sizing; isolated systems; heuristic algorithm
Issue Date: 2023
Publisher: MDPI
Project: This research was funded by the following institutions and projects: ARDITI—Agência Regional para o Desenvolvimento da Investigação, Tecnologia e Inovação under the scope of the Project M1420-09-5369-FSE-000001—PhD Studentship; the Portuguese Foundation for Science and Technology through Projeto Estratégico LA 9—UID/EEA/50009/2019; and the Project MITI Excell co-financed by Regional Development European Funds, for the Operational Program ‘Madeira 14-20’—EIXO PRIORITÁRIO 1, of Região Autónoma da Madeira, with no. M1420-01-0145-FEDER- 000002. The second author also was supported by the European Regional Development Fund in the framework of the COMPETE 2020 Program through project UIDB/MULTI/00308/2020. 
Serial title, monograph or event: Energies
Volume: 16
Issue: 10
Abstract: The integration of variable renewable energy sources in islands has become crucial in reducing their dependency on imported fossil fuels. This study aimed to assess the energy transition of an island towards a 100% renewable energy system for power generation, inland transport, and potable water provision. Linking various fossil-fuel-consuming sectors, such as transport and potable water supply systems, may strongly assist in reducing the possible mismatch between renewable energy source production and demand and contribute to fulfilling other system requirements. The use of energy storage technologies is vital and unlike traditional power systems; as the number of components in the system increases, their proper capacity needs to be accurately determined. This work employs a multi-objective optimization assessment using a modified NSGA-II algorithm to depict the energy transition for Porto Santo Island. To evaluate the solutions, we considered the main criteria of energy cost, avoided environmental impacts (CO2-equivalent emissions) of the proposed system, and loss of power supply. The Pareto front contains various solutions under different system configurations. Results indicate that full inland transport electrification (introducing 3000 EVs) can account for 18% of the avoided CO2 emissions of the island while sharing 28–40% of the up-front cost of the system, depending on the proposed system’s components. The EV’s costs incorporate subsidies and their battery replacement. Another interesting finding from the optimization process is that the solution with the highest avoided CO2 emissions involves keeping a diesel generator for supplying 4% of the island’s total demand and using an underwater compressed air energy storage with a capacity of 280 MWh. This suggests that adding more installed wind turbines or PV panels may not necessarily contribute to reducing the emissions of the entire system.
URI: https://hdl.handle.net/10316/113391
ISSN: 1996-1073
DOI: 10.3390/en16104146
Rights: openAccess
Appears in Collections:FCTUC Eng.Electrotécnica - Artigos em Revistas Internacionais

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