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Analysis and Evaluation of the Possibility of Electricity Production from Small Photovoltaic Installations in Poland

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  • Waldemar Izdebski

    (Faculty of Management, Warsaw University of Technology, Narbutta N. 85, 02-524 Warsaw, Poland)

  • Katarzyna Kosiorek

    (Laboratory of Applied Microbiology, Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Pawinskiego 5a, 02-106 Warsaw, Poland)

Abstract

The production of electricity from photovoltaic (PV) systems is one of the significant opportunities for novel renewable energy sources. The PV systems can provide energy with minimum environmental harm; however, the usage of this energy source becomes strongly dependent on a wide range of social, economic, and technical factors. Based on the growing demand for renewable energy sources, the aim of the work focuses on the socio-economic analysis of possibilities of producing electricity from photovoltaic installations up to 10 kW in Poland. Based on expert research, the factors influencing energy production from PV systems were assessed based on factor three analysis (level II with 5 factors, level III with 15 factors). Using the expert-mathematical method, a hierarchy of economic, technical, and social factors of PV-based energy production was evaluated. The analysis of socio-economic factors indicated that the greatest impact on the PV systems development in Poland depends on energy purchasing costs and EU law regulations on renewable energy sources (RESs). The most influential factors were then used to forecast the possible cost-effectiveness of renewable energy production of home energy production. The study demonstrates the importance of renewable energy sources utilization and the cost-effectiveness of solar energy production in small PV systems in Poland.

Suggested Citation

  • Waldemar Izdebski & Katarzyna Kosiorek, 2023. "Analysis and Evaluation of the Possibility of Electricity Production from Small Photovoltaic Installations in Poland," Energies, MDPI, vol. 16(2), pages 1-19, January.
  • Handle: RePEc:gam:jeners:v:16:y:2023:i:2:p:944-:d:1035696
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    References listed on IDEAS

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    1. Lukač, Niko & Seme, Sebastijan & Dežan, Katarina & Žalik, Borut & Štumberger, Gorazd, 2016. "Economic and environmental assessment of rooftops regarding suitability for photovoltaic systems installation based on remote sensing data," Energy, Elsevier, vol. 107(C), pages 854-865.
    2. Clarke, Leon & Eom, Jiyong & Marten, Elke Hodson & Horowitz, Russell & Kyle, Page & Link, Robert & Mignone, Bryan K. & Mundra, Anupriya & Zhou, Yuyu, 2018. "Effects of long-term climate change on global building energy expenditures," Energy Economics, Elsevier, vol. 72(C), pages 667-677.
    3. Akella, A.K. & Saini, R.P. & Sharma, M.P., 2009. "Social, economical and environmental impacts of renewable energy systems," Renewable Energy, Elsevier, vol. 34(2), pages 390-396.
    4. Agata Zdyb & Slawomir Gulkowski, 2020. "Performance Assessment of Four Different Photovoltaic Technologies in Poland," Energies, MDPI, vol. 13(1), pages 1-17, January.
    5. Wang, Yue & Das, Ridoy & Putrus, Ghanim & Kotter, Richard, 2020. "Economic evaluation of photovoltaic and energy storage technologies for future domestic energy systems – A case study of the UK," Energy, Elsevier, vol. 203(C).
    6. Talavera, D.L. & Muñoz-Cerón, E. & de la Casa, J. & Ortega, M.J. & Almonacid, G., 2011. "Energy and economic analysis for large-scale integration of small photovoltaic systems in buildings: The case of a public location in Southern Spain," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(9), pages 4310-4319.
    7. Gawlik, Lidia & Szurlej, Adam & Wyrwa, Artur, 2015. "The impact of the long-term EU target for renewables on the structure of electricity production in Poland," Energy, Elsevier, vol. 92(P2), pages 172-178.
    8. Chwieduk, Bartosz & Chwieduk, Dorota, 2021. "Analysis of operation and energy performance of a heat pump driven by a PV system for space heating of a single family house in polish conditions," Renewable Energy, Elsevier, vol. 165(P2), pages 117-126.
    9. Uzair, Muhammad & Rehman, Naveed ur & Yousuf, Muhammad Uzair, 2022. "Sensitivity analysis of capital and energy production cost for off-grid building integrated photovoltaic systems," Renewable Energy, Elsevier, vol. 186(C), pages 195-206.
    10. Peñaloza, Diego & Mata, Érika & Fransson, Nathalie & Fridén, Håkan & Samperio, Álvaro & Quijano, Ana & Cuneo, Alessandra, 2022. "Social and market acceptance of photovoltaic panels and heat pumps in Europe: A literature review and survey," Renewable and Sustainable Energy Reviews, Elsevier, vol. 155(C).
    11. Bernard Knutel & Anna Pierzyńska & Marcin Dębowski & Przemysław Bukowski & Arkadiusz Dyjakon, 2020. "Assessment of Energy Storage from Photovoltaic Installations in Poland Using Batteries or Hydrogen," Energies, MDPI, vol. 13(15), pages 1-16, August.
    12. Singh, G.K., 2013. "Solar power generation by PV (photovoltaic) technology: A review," Energy, Elsevier, vol. 53(C), pages 1-13.
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