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Generation scheduling in non-interconnected islands with high RES penetration

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  • Psarros, Georgios N.
  • Nanou, Sotirios I.
  • Papaefthymiou, Stefanos V.
  • Papathanassiou, Stavros A.

Abstract

In this paper, the generation scheduling problem for autonomous island systems with significant penetration of non-dispatchable Renewable Energy Source (RES) generation is investigated, proposing a unit commitment-economic dispatch (UC-ED) model which is fully compatible with the provisions of the regulatory framework currently applicable to the Greek non-interconnected island (NII) systems. Two UC-ED model variants are presented and comparatively assessed, in order to illustrate the impact of various system parameters (technical characteristics of the thermal units, reserve requirements, etc.) on the expected operating profile of the NII system. A detailed UC-ED model is first proposed, which takes into account the reserve requirements at different time scales (primary, secondary and tertiary reserves) and respective capabilities of generating units. An alternative, simplified UC-ED model is also presented, formulated on the basis of aggregate spinning reserves, to cater for uncertainties in the actual reserve capabilities of existing thermal units. The developed UC-ED models are applied to an existing NII system to evaluate their performance and results obtained on an annual basis.

Suggested Citation

  • Psarros, Georgios N. & Nanou, Sotirios I. & Papaefthymiou, Stefanos V. & Papathanassiou, Stavros A., 2018. "Generation scheduling in non-interconnected islands with high RES penetration," Renewable Energy, Elsevier, vol. 115(C), pages 338-352.
  • Handle: RePEc:eee:renene:v:115:y:2018:i:c:p:338-352
    DOI: 10.1016/j.renene.2017.08.050
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    2. Evangelos S. Chatzistylianos & Georgios N. Psarros & Stavros A. Papathanassiou, 2024. "Insights from a Comprehensive Capacity Expansion Planning Modeling on the Operation and Value of Hydropower Plants under High Renewable Penetrations," Energies, MDPI, vol. 17(7), pages 1-29, April.
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    4. Psarros, Georgios N. & Papathanassiou, Stavros A., 2023. "Generation scheduling in island systems with variable renewable energy sources: A literature review," Renewable Energy, Elsevier, vol. 205(C), pages 1105-1124.
    5. Psarros, Georgios N. & Papathanassiou, Stavros A., 2020. "Internal dispatch for RES-storage hybrid power stations in isolated grids," Renewable Energy, Elsevier, vol. 147(P1), pages 2141-2150.
    6. Psarros, Georgios N. & Dratsas, Pantelis A. & Papathanassiou, Stavros A., 2021. "A comparison between central- and self-dispatch storage management principles in island systems," Applied Energy, Elsevier, vol. 298(C).
    7. Georgios N. Psarros & Stavros A. Papathanassiou, 2019. "Comparative Assessment of Priority Listing and Mixed Integer Linear Programming Unit Commitment Methods for Non-Interconnected Island Systems," Energies, MDPI, vol. 12(4), pages 1-23, February.
    8. Kougias, Ioannis & Szabó, Sándor & Nikitas, Alexandros & Theodossiou, Nicolaos, 2019. "Sustainable energy modelling of non-interconnected Mediterranean islands," Renewable Energy, Elsevier, vol. 133(C), pages 930-940.
    9. Stelios Loumakis & Evgenia Giannini & Zacharias Maroulis, 2019. "Renewable Energy Sources Penetration in Greece: Characteristics and Seasonal Variation of the Electricity Demand Share Covering," Energies, MDPI, vol. 12(12), pages 1-20, June.
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