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Coexistence of nuclear and renewables in the V4 electricity system: Friends or enemies?

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  • Mezősi, András
  • Felsmann, Balázs
  • Kerekes, Lajos
  • Szabó, László

Abstract

The paper examines the interactions between nuclear and variable renewable generation capacities (vRES) under various assumptions in the broader V4 region. Four exploratory scenarios are analysed with high and low penetration levels of vRES and nuclear applying electricity dispatch and unit commitment models. The assessment quantifies the impacts of the joint evolution of these technologies, measuring the effect on utilisation rates, wholesale prices, market values of vRES, energy not supplied (ENS) and the changing production and trading patterns in the projected 2035 electricity system. The results are indicative of a ‘double competition’ between (i) nuclear and vRES technologies within the merit order and (ii) between the NPPs in the region. If the ambitious V4 nuclear plans are indeed execute, NPPs will compete for limited export opportunities during times of high vRES production periods. Thus, coordination of long term energy policies within the V4 region is critical to manage nuclear and vRES developments and trade patterns with the aim of improving flexibility and security of supply to mitigate the negative economic impact on the electricity system.

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  • Mezősi, András & Felsmann, Balázs & Kerekes, Lajos & Szabó, László, 2020. "Coexistence of nuclear and renewables in the V4 electricity system: Friends or enemies?," Energy Policy, Elsevier, vol. 140(C).
  • Handle: RePEc:eee:enepol:v:140:y:2020:i:c:s0301421520302020
    DOI: 10.1016/j.enpol.2020.111449
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    1. Lucas W. Davis, 2012. "Prospects for Nuclear Power," Journal of Economic Perspectives, American Economic Association, vol. 26(1), pages 49-66, Winter.
    2. Suna, Demet & Resch, Gustav, 2016. "Is nuclear economical in comparison to renewables?," Energy Policy, Elsevier, vol. 98(C), pages 199-209.
    3. Khatib, Hisham & Difiglio, Carmine, 2016. "Economics of nuclear and renewables," Energy Policy, Elsevier, vol. 96(C), pages 740-750.
    4. Kessides, Ioannis N., 2012. "The future of the nuclear industry reconsidered: Risks, uncertainties, and continued promise," Energy Policy, Elsevier, vol. 48(C), pages 185-208.
    5. László Szabó & Ágnes Kelemen & András Mezősi & Zsuzsanna Pató & Enikő Kácsor & Gustav Resch & Lukas Liebmann, 2019. "South East Europe electricity roadmap – modelling energy transition in the electricity sectors," Climate Policy, Taylor & Francis Journals, vol. 19(4), pages 495-510, April.
    6. Tlili, Olfa & Mansilla, Christine & Robinius, Martin & Syranidis, Konstantinos & Reuss, Markus & Linssen, Jochen & André, Jean & Perez, Yannick & Stolten, Detlef, 2019. "Role of electricity interconnections and impact of the geographical scale on the French potential of producing hydrogen via electricity surplus by 2035," Energy, Elsevier, vol. 172(C), pages 977-990.
    7. Reichenberg, Lina & Hedenus, Fredrik & Odenberger, Mikael & Johnsson, Filip, 2018. "Tailoring large-scale electricity production from variable renewable energy sources to accommodate baseload generation in europe," Renewable Energy, Elsevier, vol. 129(PA), pages 334-346.
    8. Cany, C. & Mansilla, C. & Mathonnière, G. & da Costa, P., 2018. "Nuclear contribution to the penetration of variable renewable energy sources in a French decarbonised power mix," Energy, Elsevier, vol. 150(C), pages 544-555.
    9. Sensfuß, Frank & Ragwitz, Mario & Genoese, Massimo, 2007. "The merit-order effect: a detailed analysis of the price effect of renewable electricity generation on spot market prices in Germany," Working Papers "Sustainability and Innovation" S7/2007, Fraunhofer Institute for Systems and Innovation Research (ISI).
    10. Portugal-Pereira, J. & Ferreira, P. & Cunha, J. & Szklo, A. & Schaeffer, R. & Araújo, M., 2018. "Better late than never, but never late is better: Risk assessment of nuclear power construction projects," Energy Policy, Elsevier, vol. 120(C), pages 158-166.
    11. Jenkins, J.D. & Zhou, Z. & Ponciroli, R. & Vilim, R.B. & Ganda, F. & de Sisternes, F. & Botterud, A., 2018. "The benefits of nuclear flexibility in power system operations with renewable energy," Applied Energy, Elsevier, vol. 222(C), pages 872-884.
    12. Cany, C. & Mansilla, C. & Mathonnière, G. & da Costa, P., 2018. "Nuclear power supply: Going against the misconceptions. Evidence of nuclear flexibility from the French experience," Energy, Elsevier, vol. 151(C), pages 289-296.
    13. Hirth, Lion, 2016. "The benefits of flexibility: The value of wind energy with hydropower," Applied Energy, Elsevier, vol. 181(C), pages 210-223.
    14. Ueckerdt, Falko & Hirth, Lion & Luderer, Gunnar & Edenhofer, Ottmar, 2013. "System LCOE: What are the costs of variable renewables?," Energy, Elsevier, vol. 63(C), pages 61-75.
    15. Lion Hirth, 2013. "The Market Value of Variable Renewables. The Effect of Solar and Wind Power Variability on their Relative Price," RSCAS Working Papers 2013/36, European University Institute.
    16. Kessides, Ioannis N., 2012. "The future of the Nuclear industry reconsidered : risks, uncertainties, and continued potential," Policy Research Working Paper Series 6112, The World Bank.
    17. Troy, Niamh & Denny, Eleanor & O'Malley, Mark, 2010. "Base-load cycling on a system with significant wind penetration," MPRA Paper 34848, University Library of Munich, Germany.
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