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Tytuł artykułu

Economy and energy analysis in the operation of renewable energy installations - a case study

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the paper an economic, ecological and energy analysis of a home photovoltaic on grid installation was presented. The increase in ecological awareness of the Polish society contributes to the continuous growth of interest in green energy. However, many people haven’t been aware of the ecological, economic and energy benefits of photovoltaic installations yet, so the following analysis is made. The analysis concerns a photovoltaic installation with a capacity of 3.96 kWp located in Ościęciny near Włocławek. The photovoltaic installation consists of 11 monocrystalline panels with a power of 360 Wp, a 4 KTLM Sofar Solar inverter and other necessary components. The first part presents basic issues related to photovoltaic installations. Parameters related to the proper functioning of the photovoltaic installation were replaced. The analysis of the literature will help to understand the essence of the proper functioning of the photovoltaic installation. In the practical part, an analysis of a selected home photovoltaic installation was carried out. Based on the available data, it has been calculated that the installation will have a payback period of over 9 years. The photovoltaic installation will produce approximately 3 582.61 kWh of electricity and will contribute to the reduction of 70 tons of carbon dioxide during the entire operation.
Rocznik
Strony
90--99
Opis fizyczny
Bibliogr. 27 poz., rys., tab.
Twórcy
  • Czestochowa University of Technology, Armi Krajowej 19B str., 42-201 Częstochowa, Poland
  • University of Science and Technology in Bydgoszcz, prof. S. Kaliskiego 7 str., 85-796 Bydgoszcz, Poland
Bibliografia
  • 1. Corcelli, F., Ripa, M., Ulgiati, S., 2017. End of life treatment of crystalline silicon photovoltaic panels, An emergy - based case study, J. Clean. Prod., 9, 1129-1142, DOI:10.1016/j.jclepro.2017.05.031
  • 2. Dincer, I., Midilli, A., Kucuk, H., 2014. Progressin Sustainable Energy Technologies: Generating Renewable Energy, Springer, Cham, Switzerland.
  • 3. Goe, M., Gaustad, G., 2014. Strengthening the case for recycling photovoltaics: An energy payback analysis, Appl. Energy, 5, 41-48, DOI:10.1016/j.apenergy.2014.01.036
  • 4. Hossain, J., Mahmud, A., 2014. Renewable Energy Integration: Challenges and Solutions, Springer, Singapore, 69–95, DOI: 10.1007/978-981-4585-27-9
  • 5. Twidell, J., Weir, T., 2015. Renewable Energy Resources, Routledge, London, United Kingdom.
  • 6. Kasner, R., Bałdowska-Witos, P., Flizikowski, J., Kruszelinicka, W., Tomporowski, A., 2020. Sustainable Wind Power Plant Modernization, Energies, 13(6), 1461, DOI:10.3390/en13061461
  • 7. Lelek, Ł., Kulczycka, J., Lewandowska, A., Zarębska, J., 2016. Life cycle assessment of energy generation in Poland, Int. J .Life Cycle Assess, 21, 1-14, DOI:10.1007/s11367-015-0979-3
  • 8. Majewski, G., Orman, Ł.J., Telejko, M., Radek, N., Pietraszek, J., Dudek, A., 2020. Assessment of thermal comfort in the intelligent buildings in view of providing high quality indoor environment, Energies, 13(8), 1973, DOI: 10.3390/en13081973
  • 9. Merkisz, J., Rymaniak, Ł., 2017. The assessment of vehicle exhaust emissions referred to CO2 based on the investigations of city buses under actual conditions of operation, Eksploat. Niezawodn., 19, 522-529, DOI: 10.17531/ein.2017.4.5
  • 10. Mroziński, A., Flizikowski, J., 2016. Engineering of photovoltaic installations, Grafpol Agnieszka Blicharz-Kurpińska, Bydgoszcz, Poland, (in Polish).
  • 11. Mroziński, A., Piaecka, I., 2016. Computer support. Computer design of selected RES installations, Wydawnictwo Grafpol Agnieszka BlicharzKrupińska, Bydgoszcz, Poland, (in Polish).
  • 12. Piasecka, I., Tomporowski, A., Flizikowski, J., Kruszelnicka, W., Kasner, R., Mroziński,A., 2019. Life Cycle Analysiso of Ecological impacts of an offshore anda Land-Based Wind Power Plant, Appl. Sci., 9, 231–246, DOI: 10.3390/app9020231
  • 13. Piasecka, I., Bałdowska-Witos, P., Kasner, R., Piotrowska, K., Kruszelinicka W., Tomporowski, A., 2020. Identification of the most important areas of impact on the environment in the life cycle of car tires, Przemysł chemiczny, 99/11, 1593-1599, DOI:10.15199/62.2020.11, (in Polish).
  • 14. Piasecka, I., Bałdowska-Witos, P., Piotrowska, K., Tomporowski, A., 2020. Eco-Energetical Life Cycle Assessment of Materials and Components of Photovoltaic Power Plant, Energies, 13, 1-24, DOI:10.3390/en13061385
  • 15. Piasecka, I., Bałdowska-Witos, P., Flizikowski, J., Piotrowska, K., Kruszelinicka, W., Tomporowski, A., 2021. Ecological life cycle assessment of the 1 MW photovoltaic power plant under Polish environmental conditions, Przemysł chemiczny, 100/1, 40-46, DOI: 10.15199/62.2021.1.2, (in Polish).
  • 16. Piasecka, I., Bałdowska-Witos, P., Flizikowski, J., Piotrowska, K., Tomporowski, A., 2020. Control the System and Environment of Post-Production Wind Turbine Blade Waste Using Life Cycle Models. Part 1. Environmental Transformation Models, Polymers, 12, 1-30, DOI:10.3390/polym12081828
  • 17. Joint publication, 2017. Green technologies and environmental sustainability (red. Singh, R., Kumar S.), Springer International Publishing, DOI: 10.1007/978-3-319-50654-8
  • 18. Joint publication, 2018. Renewable energies (red. F.P.G. Márquez, A. Karyotakis, M. Papaelias), Springer International Publishing AG, DOI: 10.1007/978-3-319-45364-4
  • 19. Joint publication, 2017. Energy efficiency and the future of real estate (red. Coulson, N.E., Wang, Y., Lipscomb, C.A.), Palgrave Macmillan US, DOI: 10.1057/978-1-137-57446-6
  • 20. Szczotok, A., Pietraszek, J., Radek, N., 2017. Metallographic Study and Repeatability Analysis of γ' Phase Precipitates in Cored, Thin-Walled Castings Made from IN713C Superalloy, Archives of Metallurgy and Materials, 62(2), 595-601. DOI: 10.1515/amm-2017-0088
  • 21. Szymański, B., 2020. Photovoltaic installations, Globenergia Sp. zo. o., Kraków, Poland, (in Polish).
  • 22. Toke, D., 2011. Ecological Modernization and Renewable Energy; Palgrave Macmillan, NewYork, US, 167–179, DOI: 10.1057/9780230302167.
  • 23. Tutak, M.; Brodny, J.; Siwiec, D.; Ulewicz, R.; Bindzár, P., 2020, Studying the Level of Sustainable Energy Development of the European Union Countries and Their Similarity Based on the Economic and Demographic Potential, Energies 13, 6643, DOI: 10.3390/en13246643 Tytko, R., 2020. Photovoltaics, Wydawnictwo i Drukarnia Towrarzystwa Słowiaków w Polsce, Kraków, Poland, (in Polish).
  • 24. Tytko, R., 2020. Photovoltaics, Wydawnictwo i Drukarnia Towrarzystwa Słowiaków w Polsce, Kraków, Poland, (in Polish).
  • 25. Tytko, R., Góralczyk I., 2013. Rational energy management, Wydawnictwo i Drukarnia Towarzystwa Słowaków w Polsce, Kraków, Poland, (in Polish).
  • 26. Ulewicz, R.; Siwiec, D.; Pacana, A.; Tutak, M.; Brodny, J., 2021. Multi-Criteria Method for the Selection of Renewable Energy Sources in the Polish Industrial Sector. Energies, 14, 2386. DOI: 10.3390/en14092386
  • 27. Wrzesiński, Z., 2017. Thermodynamics of renewable energy sources, Oficyna Wydawnicza Politechniki Warszawskiej, Warszawa, Poland, (in Polish).
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0e6d16d0-4edf-4e01-bafe-c1cf7a1c42dc
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