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Embracing carbon neutral electricity and transportation sectors in Cyprus

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  • Demetriou, E.
  • Mallouppas, G.
  • Hadjistassou, C.

Abstract

From the energy standpoint Cyprus is unique because the island relies on oil-fired power generation while the national electricity grid is isolated. Yet short driving distances render the country a testbed for a full electric vehicle fleet. Based on EU climate goals, passenger vehicles and buses were considered 100% electric by 2050. Spanning between 2018 and 2050, herein we present the future electricity needs and vehicle fleet size, which currently account for 77% of the island’s emissions. In parallel, four distinct scenarios, namely, the Least Cost (LCSc), the Business As Usual (BAU), the Carbon Capture and Storage (CCSc) and the Renewables (RESc) are presented. Weekly hourly profiles of electricity production and consumption were deduced during the winter and summer seasons. Passenger vehicle-to-grid units and desalination plants helped estimate the grid’s electrical load. Projections demonstrated that the RESc in 2050 yields the costliest electricity (0.115€/kWh) accompanied by the highest electricity losses (40%). A domestic battery storage of 5,600MWh is required, whereas Europe’s current battery capacity is 3,400MWh. In the context of EC’s goals, the BAU and LCSc cases fail to meet the 2 °C emissions threshold while the CCSc abides with the preceding target. Concluding, RESc attains full decarbonisation.

Suggested Citation

  • Demetriou, E. & Mallouppas, G. & Hadjistassou, C., 2021. "Embracing carbon neutral electricity and transportation sectors in Cyprus," Energy, Elsevier, vol. 229(C).
  • Handle: RePEc:eee:energy:v:229:y:2021:i:c:s0360544221008744
    DOI: 10.1016/j.energy.2021.120625
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    References listed on IDEAS

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    1. Kythreotou, Nicoletta & Tassou, Savvas A. & Florides, Georgios, 2012. "An assessment of the biomass potential of Cyprus for energy production," Energy, Elsevier, vol. 47(1), pages 253-261.
    2. Zhou, Wei & Yang, Hongxing & Fang, Zhaohong, 2006. "Wind power potential and characteristic analysis of the Pearl River Delta region, China," Renewable Energy, Elsevier, vol. 31(6), pages 739-753.
    3. Zachariadis, Theodoros, 2010. "Forecast of electricity consumption in Cyprus up to the year 2030: The potential impact of climate change," Energy Policy, Elsevier, vol. 38(2), pages 744-750, February.
    4. Kylili, Angeliki & Fokaides, Paris A., 2015. "Competitive auction mechanisms for the promotion renewable energy technologies: The case of the 50MW photovoltaics projects in Cyprus," Renewable and Sustainable Energy Reviews, Elsevier, vol. 42(C), pages 226-233.
    5. Koroneos, C. & Fokaidis, P. & Moussiopoulos, N., 2005. "Cyprus energy system and the use of renewable energy sources," Energy, Elsevier, vol. 30(10), pages 1889-1901.
    6. Ferbar Tratar, Liljana & Mojškerc, Blaž & Toman, Aleš, 2016. "Demand forecasting with four-parameter exponential smoothing," International Journal of Production Economics, Elsevier, vol. 181(PA), pages 162-173.
    7. Chiodi, Alessandro & Gargiulo, Maurizio & Rogan, Fionn & Deane, J.P. & Lavigne, Denis & Rout, Ullash K. & Ó Gallachóir, Brian P., 2013. "Modelling the impacts of challenging 2050 European climate mitigation targets on Ireland’s energy system," Energy Policy, Elsevier, vol. 53(C), pages 169-189.
    8. James Glynn & Maurizio Gargiulo & Alessandro Chiodi & Paul Deane & Fionn Rogan & Brian Ó Gallachóir, 2019. "Zero carbon energy system pathways for Ireland consistent with the Paris Agreement," Climate Policy, Taylor & Francis Journals, vol. 19(1), pages 30-42, January.
    9. Sferra, Fabio & Krapp, Mario & Roming, Niklas & Schaeffer, Michiel & Malik, Aman & Hare, Bill & Brecha, Robert, 2019. "Towards optimal 1.5° and 2 °C emission pathways for individual countries: A Finland case study," Energy Policy, Elsevier, vol. 133(C).
    10. Dilaver, Zafer & Hunt, Lester C., 2011. "Turkish aggregate electricity demand: An outlook to 2020," Energy, Elsevier, vol. 36(11), pages 6686-6696.
    11. Taliotis, Constantinos & Taibi, Emanuele & Howells, Mark & Rogner, Holger & Bazilian, Morgan & Welsch, Manuel, 2017. "Renewable energy technology integration for the island of Cyprus: A cost-optimization approach," Energy, Elsevier, vol. 137(C), pages 31-41.
    12. Fragkos, Panagiotis & Tasios, Nikos & Paroussos, Leonidas & Capros, Pantelis & Tsani, Stella, 2017. "Energy system impacts and policy implications of the European Intended Nationally Determined Contribution and low-carbon pathway to 2050," Energy Policy, Elsevier, vol. 100(C), pages 216-226.
    13. Taliotis, Constantinos & Rogner, Holger & Ressl, Stephan & Howells, Mark & Gardumi, Francesco, 2017. "Natural gas in Cyprus: The need for consolidated planning," Energy Policy, Elsevier, vol. 107(C), pages 197-209.
    14. Zachariadis, Theodoros & Taibi, Emanuele, 2015. "Exploring drivers of energy demand in Cyprus – Scenarios and policy options," Energy Policy, Elsevier, vol. 86(C), pages 166-175.
    15. Zappa, William & Junginger, Martin & van den Broek, Machteld, 2019. "Is a 100% renewable European power system feasible by 2050?," Applied Energy, Elsevier, vol. 233, pages 1027-1050.
    16. Demetriou, E. & Hadjistassou, C., 2021. "Can China decarbonize its electricity sector?," Energy Policy, Elsevier, vol. 148(PB).
    17. Alexopoulos, Spiros & Hoffschmidt, Bernhard, 2010. "Solar tower power plant in Germany and future perspectives of the development of the technology in Greece and Cyprus," Renewable Energy, Elsevier, vol. 35(7), pages 1352-1356.
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    3. Marcin Bukowski & Janusz Majewski & Agnieszka Sobolewska, 2023. "The Environmental Impact of Changes in the Structure of Electricity Sources in Europe," Energies, MDPI, vol. 16(1), pages 1-22, January.

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