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Location of Photovoltaic Panels in the Building Envelope in Terms of Fire Safety

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[1] EUR - Lex - 02018L2001 - 20181221 - EN - EUR - Lex 2022, https://eurlex.europa.eu/eli/dir/2018/2001/2018-12-21. Search in Google Scholar

[2] Photovoltaics and Firefighters’ Operations: Best Practices in Selected Countries. Photovoltaikanlagen, VdS 3145: 2017 - 11(02), 24 p. Search in Google Scholar

[3] GHOLAMI, H. - RØSTVIK, H. N. - MÜLLER-EIE, D.: Holistic economic analysis of building-integrated photovoltaics (BIPV) system: Case studies evaluation. Energy and Buildings, Vol. 13, 2019, 11 p., https://doi.org/10.1016/j.enbuild.2019.109461. Search in Google Scholar

[4] JING YANG, R. - ZOU, P. X. W.: Building integrated photovoltaics (BIPV): costs, benefits, risks, barriers and improvement strategy. International Journal of Construction Management, Vol. 16, Iss. 1, 2016, pp. 39-53, https://www.tandfonline.com/doi/full/10.1080/15623599.2015.1117709.10.1080/15623599.2015.1117709 Search in Google Scholar

[5] NGUYEN, K. - KATZFEY, J. - RIEDL, J. - TROCCOLI, A.: Potential impacts of solar arrays on regional climate and on array efficiency. International Journal of Climatology, Vol. 37, Iss. 11, 2017, pp. 4053-4064.10.1002/joc.4995 Search in Google Scholar

[6] ARMSTRONG, A. - WALDRON, S. - WHITAKER, J. - OSTLE, N. J.: Wind farm and solar park effects on plante soil carbon cycling: uncertain impacts of changes in ground-level microclimate. Global Change Biology, Viol. 20, 2014, pp. 1699-1706, doi: 10.1111/gcb.12437. Open DOISearch in Google Scholar

[7] SORGATO, M. J. - SCHNEIDER, K. - RÜTHER, R.: Technical and economic evaluation of thin-film CdTe building-integrated photovoltaics (BIPV) replacing façade and roof top materials in office buildings in a warm and sunny climate. Renewable Energy, Vol. 118 C, 2018, pp. 84-98, doi: 10.1016/j.renene.2017.10.091. Open DOISearch in Google Scholar

[8] GHOLAMI, H. - RØSTVIK, H. N. - MÜLLER-EIE, D.: Analysis of solar radiation components on building skins for selected cities. Proceedings of ABS 2019 Conference on Advanced Building Skins, Switzerland, pp. 541-549. Search in Google Scholar

[9] GHOLAMI, H. - SARWAT, A. I. - HOSSEINIAN, H. - KHALILNEJAD, A.: Evaluation of optimal dual axis concentrated photovoltaic thermal system with active ventilation using Frog Leap algorithm. Energy Conversion and Management, Vol. 105, 2015, pp. 782-790.10.1016/j.enconman.2015.08.033 Search in Google Scholar

[10] MOHAMMADI, F. - GHOLAMI, H. - MENHAJ, M. B.: Effect of ventilation on yearly photovoltaic performance. 1st International conference on new research achievements in electrical and computer engineering, Vol. 1, 2016, 6 p. Search in Google Scholar

[11] KATUNSKÁ, J. - KATUNSKÝ, D.: Alternative Solutions of Wooden External Walls: Case Study. Advanced Building Construction and Materials, 2016, pp. 134-141. Search in Google Scholar

[12] IBRAHIM, A. - FUDHOLI, A. - SOPIAN, K. - OTHMAN, M. Y. - RUSLAN, M. H.: Efficiencies and improvement potential of building integrated photovoltaic thermal (BIPVT) system. Energy Conversion and Management, Vol. 77, 2014, pp. 527-534.10.1016/j.enconman.2013.10.033 Search in Google Scholar

[13] TRIPATHY, M. - JOSHI, H. - PANDA, S. K.: Energy payback time and life-cycle cost analysis of building integrated photovoltaic thermal system influenced by adverse effect of shadow. Applied Energy, Vol. 208, 2017, pp. 376-389.10.1016/j.apenergy.2017.10.025 Search in Google Scholar

[14] CHIU, M. S. - HOU, S. P. - TZENG, C. T. - LAI, C. M.: Experimental investigations on the thermal performance of the ventilated BIPV wall. Journal of Applied Sciences, Vol. 15, Iss. 3, 2015, pp. 613-618.10.3923/jas.2015.613.618 Search in Google Scholar

[15] BRITO, M. - REDWEIK, P. - CATITA, C.: Photovoltaics and zero energy buildings: the role of building facades. 28th European Photovoltaic Solar Energy Conference and Exhibition, 2013, pp. 4800-4804, doi: 10.4229/28thEUPVSEC2013-6CV.5.42. Open DOISearch in Google Scholar

[16] FREITAS, S. - BRITO, M. C.: Solar façades for future cities. Renewable Energy Focus, Vol. 31, 2019, pp. 73-79.10.1016/j.ref.2019.09.002 Search in Google Scholar

[17] DESPINASSE, M. C. - KRUEGER, S.: The first development of a new test to evaluate the fire behavior of photovoltaic modules on roofs. Fire Safety Journal, Vol. 71, 2015, pp. 49–57.10.1016/j.firesaf.2014.11.011 Search in Google Scholar

[18] TUREKOVA, I. - MARKOVA, I. - IVANOVICOVA, M. - HARANGOZO, J.: Experimental Study of Oriented Strand Board Ignition by Radiant Heat Fluxes. Polymers, Vol. 13, Iss. 5, 2021, 13 p.10.3390/polym13050709 Search in Google Scholar

[19] GAŠPERCOVÁ, S. - MAKOVICKÁ OSVALDOVÁ, L. - KADLICOVÁ, P.: Additional thermal insulation materials and their reaction on fire. Fire protection, safety and security: conference proceedings, Zvolen, Technical University, 2017, pp. 51-56. Search in Google Scholar

[20] MAKOVICKÁ OSVALDOVÁ, L. - GAŠPERCOVÁ, S.: The evaluation of flammability properties regarding testing methods. Civil and Environmental Engineering, Vol. 11, Iss. 2, 2015, pp. 142-146.10.1515/cee-2015-0018 Search in Google Scholar

[21] MAKOVICKA OSVALDOVA, L. - OSVALD, A.: Flame retardation of wood. Advanced Materials Research, Vol. 690-693, pp. 1331-1334.10.4028/www.scientific.net/AMR.690-693.1331 Search in Google Scholar

[22] MAKOVICKA OSVALDOVA, L.: Wooden façades and fire safety: effects of joint type on ignition behaviour. 1st edition, Springer, 2020, 88 p.10.1007/978-3-030-48883-3_1 Search in Google Scholar

[23] PRUME K. - VIEHWEG, J.: TÜV Rheinland Energie und Umwelt GmbH Fraunhofer-Institut für Solare Energiesysteme (ISE): Guideline Assessing Fire Risks in Photovoltaic Systems and Developing Safety Concepts for Risk Minimization, 2018. Search in Google Scholar

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