CONFIGURATION OF A FLAT ROOF SOLAR POWER PLANT FOR MAXIMUM ELECTRICITY PRODUCTION
Abstract
Commercial solar power plants are often installed on larger industrial, warehouse and commercial
buildings. Modern prefabricated constructions of such buildings dictate architectural solutions involving flat roofs, which are particularly suitable for the installation of larger solar power plants. This research investigates which configuration of solar module installation and which inclinations are suitable for implementation on a flat roof to achieve maximum annual electricity production. It aims to determine the maximum annual production per unit area and per installed power of the solar modules. The simulation results are conducted for all months of the year, and for the geographic latitude and longitude of the town of Lenart in Slovenia.
Downloads
References
D. H. Meadows et al.: The Limits to Growth, Universe Books, 1972
Directorate-General for Structural Reform Support: Technical support for implementing the European Green Deal, Publication Office of the European Union in Luxembourg, 2020
M. Borowiecki et al.: Accelerating the EU’s green transition, OECD Economics Department Working Papers, No. 1777, 2023
A. M. Reveshti et al.: Investigating the effect of new and old weather data on the energy consumption of buildings affected by global warming in different climates, International Journal of Thermofluids, No. 19, 2023
A. A. Ahmed: Global warming potential, water footprint, and energy demand of shared autonomous electric vehicles incorporating circular economy practices, Sustainable Production and Consumption, No. 36, 2023
Editorial: Sustainable development of energy, water and environment systems in the critical decade for climate action, Energy Conversion and Managementtle, No. 296, 2023
P. Jain et al.: Agrovoltaics: Step towards sustainable energy-food combination, Bioresource Technology Reports, No. 15, 2021
C. J. Torrente et al.: Simulation model to analyze the spatial distribution of solar radiation in agrivoltaic Mediterranean greenhouses and its effect on crop water needs, Applied Energy, No. 353, 2024
International Code Council: International Building Code, USA, 2021
D. Kastelec et al.: Sončna energija v Sloveniji, Ljubljana, 2007
E. Golubovska et al.: Analytical estimation of the optimal PV panel tilt based on a clear sky irradiance model, Journal of Energy Technology, Vol. 16, Iss. 4, 2023
S. Seme: Optimalno sledenje fotonapetostnega sistema soncu ob upoštevanju izgub pogonskega sklopa, doctoral dissertation, UM FERI, 2011
Solarific. Available: https://solarific.co/si (date of last access: 13. 8. 2024)
A. Dudek: Equity research: SolarEdge Technologies, INC., University of Algarve, 2023
Energy Simulation Validation: SolarEdge Designer Review, 2019. Available: https://knowledge-center.solaredge.com/sites/kc/files/se-designer-simulation-validation-dnv-gl-report.pdf (last access: 13. 8. 2024)
Huasun. Available: G10-182-108-DS_EN (huasunsolar.com) (last access: 13. 8. 2024)
Huason. Available: se-three-phase-inverter-extended-power-datasheet.pdf (solaredge.com) (last access 13. 8. 2024)
Y. Yang et al.: Potential analysis of roof-mounted solar photovoltaics in Sweden, Applied Energy, No. 279, 2020
SolarPower Europe: Rooftop PV Fire Safety Factsheet. Available: https://api.solarpowereurope.org/uploads/Factsheet_Rooftop_PV_Fire_Safety_vfinal_33eaab8bb3.pdf?updated_at=2024-03-18T15:38:06.684Z (last access: 13. 8. 2024)