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Lignite industry in Greece within a world context: Mining, energy supply and environment

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  • Kavouridis, Konstantinos
Abstract
Today coal covers 38% of global production and roughly 30% of the EU-25 power output. In 2005 domestic lignite with a share of 60.5% in power generation and accounting about 30% of primary energy consumption is currently the most important indigenous fuel of Greece. Greece, mining 70Â Mt annually, is the second lignite producer in the EU and fourth in the world. Approximately 97% of the lignite used to supply the existing lignite-fired power plants of Greece is mined by Public Power Corporation S.A. (PPC). Lignite as the base load fuel gives a competitive strength in PPC's and Greece's fuel mix. Due to lignite consumer prices in Greece are significantly below those in other comparable markets in EU-15. Extraction of lignite has a very long tradition. Significant achievements and large experience which has been gained during many years of mining operations place Greek lignite-mining industry in the leading position in Europe. The paper presents current state of Greek lignite industry, including operating mines, volume of production and other important production indicators as well as improvements in labor productivity and good results in industrial safety. The future of coal and specifically of Greek lignite will be crucially determined by environmentally compatible, i.e. low-CO2 generation of electricity. Investment in modernization and renewal of the power plant fleet are the key to securing electricity supply and progress in preventing climate change.

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  • Kavouridis, Konstantinos, 2008. "Lignite industry in Greece within a world context: Mining, energy supply and environment," Energy Policy, Elsevier, vol. 36(4), pages 1257-1272, April.
  • Handle: RePEc:eee:enepol:v:36:y:2008:i:4:p:1257-1272
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    Cited by:

    1. Widera, Marek & Kasztelewicz, Zbigniew & Ptak, Miranda, 2016. "Lignite mining and electricity generation in Poland: The current state and future prospects," Energy Policy, Elsevier, vol. 92(C), pages 151-157.
    2. Vangelis Marinakis & Alexandros Flamos & Giorgos Stamtsis & Ioannis Georgizas & Yannis Maniatis & Haris Doukas, 2020. "The Efforts towards and Challenges of Greece’s Post-Lignite Era: The Case of Megalopolis," Sustainability, MDPI, vol. 12(24), pages 1-21, December.
    3. Vasiliki Tzelepi & Myrto Zeneli & Dimitrios-Sotirios Kourkoumpas & Emmanouil Karampinis & Antonios Gypakis & Nikos Nikolopoulos & Panagiotis Grammelis, 2020. "Biomass Availability in Europe as an Alternative Fuel for Full Conversion of Lignite Power Plants: A Critical Review," Energies, MDPI, vol. 13(13), pages 1-26, July.
    4. Zhao, Qi & Guo, Ming & Feng, Fangfang & Li, Junjun & Guan, Hangtian, 2024. "Path analysis of digital development on the green industrial transformation of Chinese resource-based enterprises," Resources Policy, Elsevier, vol. 93(C).
    5. Dios, M. & Souto, J.A. & Casares, J.J., 2013. "Experimental development of CO2, SO2 and NOx emission factors for mixed lignite and subbituminous coal-fired power plant," Energy, Elsevier, vol. 53(C), pages 40-51.
    6. Kaldellis, J.K. & Kapsali, M., 2014. "Evaluation of the long-term environmental performance of Greek lignite-fired power stations," Renewable and Sustainable Energy Reviews, Elsevier, vol. 31(C), pages 472-485.
    7. Zafirakis, D. & Chalvatzis, K. & Kaldellis, J.K., 2013. "“Socially just” support mechanisms for the promotion of renewable energy sources in Greece," Renewable and Sustainable Energy Reviews, Elsevier, vol. 21(C), pages 478-493.
    8. Arapostathis, Stathis & Fotopoulos, Yannis, 2019. "Transnational energy flows, capacity building and Greece's quest for energy autarky, 1914–2010," Energy Policy, Elsevier, vol. 127(C), pages 39-50.
    9. Berumen, Sergio A. & Pérez-Megino, Luis P., 2016. "Ranking Socioeconómico para el Desarrollo de las Regiones Carboníferas en Europa || Socioeconomic Ranking for the Development of coal-mining regions in Europe," Revista de Métodos Cuantitativos para la Economía y la Empresa = Journal of Quantitative Methods for Economics and Business Administration, Universidad Pablo de Olavide, Department of Quantitative Methods for Economics and Business Administration, vol. 21(1), pages 39-57, June.
    10. Jovancic, Predrag & Tanasijevic, Milos & Ivezic, Dejan, 2011. "Serbian energy development based on lignite production," Energy Policy, Elsevier, vol. 39(3), pages 1191-1199, March.
    11. Ryszard Staniszewski & Dorota Cais-Sokolińska & Łukasz K. Kaczyński & Paulina Bielska, 2021. "Use of Bioluminescence for Monitoring Brown Coal Mine Waters from Deep and Surface Drainage," Energies, MDPI, vol. 14(12), pages 1-10, June.
    12. C. Loupasakis & V. Angelitsa & D. Rozos & N. Spanou, 2014. "Mining geohazards—land subsidence caused by the dewatering of opencast coal mines: The case study of the Amyntaio coal mine, Florina, Greece," Natural Hazards: Journal of the International Society for the Prevention and Mitigation of Natural Hazards, Springer;International Society for the Prevention and Mitigation of Natural Hazards, vol. 70(1), pages 675-691, January.
    13. Kaldellis, J.K., 2011. "Critical evaluation of financial supporting schemes for wind-based projects: Case study Greece," Energy Policy, Elsevier, vol. 39(5), pages 2490-2500, May.
    14. Karasmanaki, Evangelia & Ioannou, Konstantinos & Katsaounis, Konstantinos & Tsantopoulos, Georgios, 2020. "The attitude of the local community towards investments in lignite before transitioning to the post-lignite era: The case of Western Macedonia, Greece," Resources Policy, Elsevier, vol. 68(C).
    15. Antonia Gkergki, 2020. "The relationship between energy consumption and economic growth: New evidence from Greece," ECONOMICS AND POLICY OF ENERGY AND THE ENVIRONMENT, FrancoAngeli Editore, vol. 2020(2), pages 131-153.
    16. Badera, Jarosław & Kocoń, Paweł, 2014. "Local community opinions regarding the socio-environmental aspects of lignite surface mining: Experiences from central Poland," Energy Policy, Elsevier, vol. 66(C), pages 507-516.

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