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Design of Photovoltaic Systems Using Computer Software

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Renewable energy sources such as solar, wind and hydroelectric power plants are an inexhaustible and clean source of electricity and heat. The development of civilization, resulting in a constant increase in the demand for electricity and the prospect of fossil fuels depletion, including coal and oil, forces us to seek new sources of energy and invest in the renewable energy sources. The development of technology and the policy of the European Union have a positive impact on the development of renewable energy sources and the increase in the installed capacity. One of the ways of obtaining electricity from renewable sources is through the photovoltaic cells. Computer software is becoming helpful in designing the photovoltaic installations. Simulations enable conducting the economic analysis and selection of the best possible installation parameters. This enables the best use of the available conditions to obtain the largest production of electricity. The article presents a project of a photovoltaic installation for a single-family building using the BlueSol Design software.
Słowa kluczowe
Rocznik
Strony
72--78
Opis fizyczny
Bibliogr. 11 poz., rys., tab.
Twórcy
autor
  • Rzeszow University of Technology, Department of Heat Engineering and Air Conditioning, Al. Powstańców Warszawy 6, 35-959 Rzeszów, Poland
  • Rzeszow University of Technology, Department of Heat Engineering and Air Conditioning, Al. Powstańców Warszawy 6, 35-959 Rzeszów, Poland
Bibliografia
  • 1. Bagher A.M., Vahid M.M.A., Mohsen M. 2015. Types of Solar Cells and Application. American Journal of Optics and Photonics, 3(5), 94–113
  • 2. Badawy W.A. 2015. A review on solar cells from Si-single crystals to porous materials and quantum dots. Journal of Advanced Research, 6, 123–132
  • 3. Fitra M., Daut I., Gomesh N., Irwanto M., Irwan Y. M. 2013. Dye Solar Cell Using Syzigium Oleina Organic Dye. Energy Procedia, 36, 341–348
  • 4. https://ec.europa.eu/
  • 5. Klugmann-Radziemska E. 2014. Technologiczny postęp w fotowoltaice. Czysta Energia, 5, 40–42
  • 6. Luceño-Sánchez J.A., Díez-Pascual A.M., Peña Capilla R. 2019. Materials for Photovoltaics: State of Art and Recent Developments. Internation Journal of Molecular Sciences, 20, 1–42
  • 7. Nowak K., Bukowska M., Proszak-Miąsik D., Rabczak S. 2017. Emission of Air Pollutants in the Hot Water Production. Iop Conf Ser-Mat Sci., 245
  • 8. Polish National Energy Conservation Agency data
  • 9. Qarony W., Hossain M.I., Hossain M.K., Uddin M. J., Haque A., Saad A.R., Tsang Y.H. 2017. Efficient amorphous silicon solar cells: characterization, optimization, and optical loss analysis. Results in Physics, 6, 4287–4293
  • 10. Sward J.A., Siff J., Gu J., Zhang K.M. 2019. Strategic planning for utility-scale solar photovoltaic development – Historical peak events revisited. Applied Energy, 250, 1292–1301
  • 11. Yeh N., Yeh P. 2013. Organic solar cells: Their developments and potentials. Renewable and Sustainable Energy Reviews, 21, 421–431
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e404659e-5bdd-4a76-b0c2-170d757cbebd
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