Radon levels and indoor air quality after application of thermal retrofit measures—a case study

Author:

Gulan Ljiljana,Stajic Jelena M.,Spasic Dusica,Forkapic Sofija

Funder

Ministarstvo Prosvete, Nauke i Tehnološkog Razvoja

Publisher

Springer Science and Business Media LLC

Subject

Health, Toxicology and Mutagenesis,Management, Monitoring, Policy and Law,Atmospheric Science,Pollution

Reference44 articles.

1. Airthings Corentium Home: Radon detector. Oslo, Norway: Corentium AS. https://www.airthings.com/home. Accessed 20 Jan 2021

2. Azara A, Dettori M, Castiglia P, Piana A, Durando P, Parodi V, Salis G, Saderi L, Sotgiu G (2018) Indoor radon exposure in Italian schools. Int J Environ Res Public Health 15(4):749

3. Borgoni R, De Francesco D, De Bartolo D, Tzavidis N (2014) Hierarchical modeling of indoor radon concentration: how much do geology and building factors matter? J Environ Radioactiv 138:227–237

4. Bochicchio F, Žunić ZS, Carpentieri C, Antignani S, Venoso G, Carelli V, Cordedda C, Veselinović N, Tollefsen T, Bossew P (2014) Radon in indoor air of primary schools: a systematic survey to evaluate factors affecting radon concentration levels and their variability. Indoor Air 24:315–326

5. Čeliković I, Ujić P, Žunić ZS (2015) Seasonal variations of indoor radon concentrations in selected rural regions of Serbia. In: Proceedings of XXVIII Symposium the Society for Radiation Protection of Serbia and Montenegro.Vršac, Serbia. pp. 199–206. (In Serbian) http://dzz.org.rs/wp-content/uploads/2013/06/2015-XXVIII-DZZSCG-Vrsac.pdf (accessed 28 January 2021).

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