Cite

Alsup, S., Ebbs, S. & Retzlaff, W. (2010). The exchangeability and leachability of metals from select green roof growth substrates. Urban Ecosystems, 13 (1), 91–111.10.1007/s11252-009-0106-ySearch in Google Scholar

Baryła, A., Gnatowski, T., Karczmarczyk, A. & Szatyłowicz, J. (2019). Changes in Temperature and Moisture Content of an Extensive-Type Green Roof. Sustainability, 11 (9), 2498. doi: 10.3390/su1109249810.3390/su11092498Search in Google Scholar

Baryła, A., Karczmarczyk, A. & Brandyk, A. (2018). The influence of a green roof drainage layer on retention capacity and leakage quality. Water Science and Technology, 77 (12), 2886–2895.10.2166/wst.2018.283Search in Google Scholar

Baryła, A., Karczmarczyk, A. & Bus, A. (2018). Role of Substrates Used for Green Roofs in Limiting Rainwater Runoff. Journal of Ecological Engineering, 19 (5), 86–92.10.12911/22998993/91268Search in Google Scholar

Beck, D. A., Johnson, G. R. & Spolek G. A. (2011). Amending green roof soil with biochar to affect runoff water quantity and quality. Environmental Pollution, 159 (8–9), 2111–2118.10.1016/j.envpol.2011.01.022Search in Google Scholar

Berardi, U., Ghaffarian Hoseini, A. H & Ghaffarian Hoseini, A. (2014). State-of-the-art analysis of the environmental benefits of green roofs. Applied Energy, 115, 411–428.10.1016/j.apenergy.2013.10.047Search in Google Scholar

Berndtsson, J. C. (2010). Green roof performance towards management of runoff water quantity and quality: a review. Ecological Engineering, 36, 351–360.10.1016/j.ecoleng.2009.12.014Search in Google Scholar

Bianchini, F. & Hewage, K. (2012). How “green” are the green roofs? Lifecycle analysis of green roof materials. Building and Environment, 48, 57–65.10.1016/j.buildenv.2011.08.019Search in Google Scholar

Boas Berg, A., Jeznach, J., Radziemska, M., Adamcová, D. & Brtnický, M. (2018). Rain water not in sewers but in the garden – the study case of the Netherlands and Polish experience. Acta Sci. Pol. Architectura, 17 (1), 79–88.10.22630/ASPA.2018.17.1.8Search in Google Scholar

Bowler, D. E., Buyung-Ali, L., Knight, T. M. & Pullin, A. S. (2010). Urban greening to cool towns and cities: a systematic review of the empirical evidence. Landscape and Urban Planning, 97 (3), 147–155.10.1016/j.landurbplan.2010.05.006Search in Google Scholar

Carpenter, D. D. & Kaluvakolanu, P. (2011). Effect of roof surface type on storm-water runoff from full-scale roofs in a temperate climate. Journal of Irrigation and Drainage Engineering, 137 (3), 161–169.10.1061/(ASCE)IR.1943-4774.0000185Search in Google Scholar

Castleton, H. F., Stovin, V., Beck, S. B. M. & Davison, J. B. (2010). Green roofs: building energy savings and the potential for retrofit. Energy and Buildings, 42, 1582–1591.10.1016/j.enbuild.2010.05.004Search in Google Scholar

Francis, L. F. M. & Jensen, M. B. (2017). Benefits of green roofs: A systematic review of the evidence for three ecosystem services. Urban Forestry and Urban Greening, 28, 167–176.10.1016/j.ufug.2017.10.015Search in Google Scholar

Getter, K. L. & Rowe, D. B. (2009). Substrate depth influences Sedum plant community on a green roof. Hort-Science, 44 (2), 401–407.10.21273/HORTSCI.44.2.401Search in Google Scholar

Gong, K. N., Wu, Q., Peng, S., Zhao, X. H. & Wang, X. C. (2014). Research on the characteristics of the water quality of rainwater runoff from green roofs. Water Science and Technology, 70 (7), 1205–1210.10.2166/wst.2014.358Search in Google Scholar

Gregoire, B. G. & Clausen, J. C. (2011). Effect of a modular extensive green roof on stormwater runoff and water quality. Ecological Engineering, 37 (6), 963–969.10.1016/j.ecoleng.2011.02.004Search in Google Scholar

Hathaway, A. M., Hunt, W. F. & Jennings, G. D. (2008). A field study of green roof hydrologic and water quality performance. Transactions of the ASABE, 51 (1), 37–44.10.13031/2013.24225Search in Google Scholar

Hendel, I. (2007–2010). Projekt Galerii Sfera rozbudowa (wielofunkcyjny obiekt z galerią handlową, hotelem, mieszkaniami) [Project Galeria Sfera expansion (multifunctional facility with a shopping gallery, hotel, apartments)]. Warszawa: Bielsko Business Center 2 Sp. z o.o.Search in Google Scholar

Jungels, J., Rakow, D. A., Allred, S. B. & Skelly, S. M. (2013). Attitudes and aesthetic reactions toward green roofs in the Northeastern United States. Landscape and Urban Planning, 117, 13–21.10.1016/j.landurbplan.2013.04.013Search in Google Scholar

Kočí, V., Rakovický T. & Švagr, A. (2001). Test semichronické toxicity se semeny Sinapis alba [Semi-chronic toxicity test with Sinapis alba]. Praha: Vysoká škola chemicko-technologická v Praze. Retrieved from: http://ekotoxikologie.sweb.cz/toxlab/vyuka/sinapis.htm#_Toc525630663Search in Google Scholar

Law, E. P., Diemont, S. A. W & Toland, T. R. (2017). A sustainability comparison of green infrastructure interventions using energy evaluation. Journal of Cleaner Production, 145, 374–385.10.1016/j.jclepro.2016.12.039Search in Google Scholar

Lin, B. & Zhu, J. (2018). Changes in urban air quality during urbanization in China. Journal of Cleaner Production, 188, 312–321.10.1016/j.jclepro.2018.03.293Search in Google Scholar

Liu, J., Shrestha, P., Skabelund, L. R., Todd, T., Decker, A. & Kirkham, M. B. (2019). Growth of prairie plants and sedums in different substrates on an experimental green roof in Mid-Continental USA. Science of The Total Environment, 697, 134089. doi: 10.1016/j.scitotenv.2019.13408910.1016/j.scitotenv.2019.134089Search in Google Scholar

Madre, F., Vergnes, A., Machon, N. & Clergeau, P. (2014). Green roofs as habitats for wild plant species in urban landscapes: First insights from a large-scale sampling. Landscape and Urban Planning, 122, 100–107.10.1016/j.landurbplan.2013.11.012Search in Google Scholar

Manso, M., Castro-Gomes, J., Paulo, B., Bentes, I. & Teixeira, C. A. (2018). Life cycle analysis of a new modular greening system. Science of The Total Environment, 627, 1146–1153.10.1016/j.scitotenv.2018.01.198Search in Google Scholar

Meera, V. & Ahammed, M. (2006). Water quality of rooftop rainwater harvesting systems: a review. Water SRT – Aqua, 55, 257–268.10.2166/aqua.2006.0010Search in Google Scholar

Newton, J., Gedge, D., Early, P. & Wilson, S. (2007). Building Greener: Guidance on the Use of Green Roofs, Green Walls and Complementary Features on Buildings. London: CIRIA.Search in Google Scholar

Ouldboukhitine, S. E., Belarbi, R. & Sailor, D. J. (2014). Experimental and numerical investigation of urban street canyons to evaluate the impact of green roof inside and outside buildings. Applied Energy, 114, 273–282.10.1016/j.apenergy.2013.09.073Search in Google Scholar

Palermo, S. A., Turco, M., Principato, F. & Piro, P. (2019). Hydrological effectiveness of an extensive green roof in Mediterranean climate. Water, 11 (7), 1378. doi: 10.3390/w1107137810.3390/w11071378Search in Google Scholar

Rozporządzenie Ministra Infrastruktury z dnia 14 stycznia 2002 r. w sprawie określenia przeciętnych norm zużycia wody. Dz.U. 2002 nr 8 poz. 70 [Regulation of the Minister of Infrastructure of 14 January 2002 on determining average standards of water consumption. Journal of Laws 2002 No 8, item 70].Search in Google Scholar

Shafique, M., Azam, A., Rafiq, M., Ateeq, M. & Luo, X. (2020). An overview of life cycle assessment of green roofs. Journal of Cleaner Production, 250, 119471. doi: 10.1016/j.jclepro.2019.11947110.1016/j.jclepro.2019.119471Search in Google Scholar

Shafique, M. & Kim, R. (2017). Application of green blue roof to mitigate heat island phenomena and resilient to climate change in urban areas: a case study from Seoul, Korea. Journal of Water and Land Development, 33 (1), 165–170.10.1515/jwld-2017-0032Search in Google Scholar

Shafique, M., Kim, R. & Rafiq, M. (2018). Green roof benefits, opportunities and challenges – a review. Renewable and Sustainable Energy Reviews, 90, 757–773.10.1016/j.rser.2018.04.006Search in Google Scholar

She, N. & Pang, J. (2010). Physically based green roof model. Journal of Hydrologic Engineering, 15 (6), 458–464.10.1061/(ASCE)HE.1943-5584.0000138Search in Google Scholar

Speak, A. F., Rothwell, J. J., Lindley, S. J. & Smith, C. L. (2012). Urban particulate pollution reduction by four species of green roof vegetation in a UK city. Atmospheric Environment, 61, 283–293.10.1016/j.atmosenv.2012.07.043Search in Google Scholar

Stovin, V. (2010). The potential of green roofs to manage urban stormwater. Water Environment Journal, 24, 192– –199.10.1111/j.1747-6593.2009.00174.xSearch in Google Scholar

Suter, I., Maksimović, Č. & Reeuwijk, M. van (2017). A neighbourhood-scale estimate for the cooling potential of green roofs. Urban Climatology, 20, 33–45.10.1016/j.uclim.2017.02.007Search in Google Scholar

Tadeu, A., Simões, N., Almeida, R. & Manuel, C. (2019). Drainage and water storage capacity of insulation cork board applied as a layer on green roofs. Construction and Building Material, 209, 52–65.10.1016/j.conbuildmat.2019.03.073Search in Google Scholar

Teemusk, A. & Mander, Ü. (2007). Rainwater runoff quantity and quality performance from a greenroof: the effects of short-term events. Ecological Engineering, 30 (3), 271–277.10.1016/j.ecoleng.2007.01.009Search in Google Scholar

Teotónio, I., Silva, C. M. & Cruz, C. O. (2018). Eco-solutions for urban environments regeneration: the economic value of green roofs. Journal of Cleaner Production, 199, 121–135.10.1016/j.jclepro.2018.07.084Search in Google Scholar

Todorov, D., Driscoll, C. T. & Todorova, S. (2018). Long-term and seasonal hydrologic performance of an extensive green roof. Hydrological processes, 32, 2471– –2482.10.1002/hyp.13175Search in Google Scholar

Vacek, P., Struhala, K. & Matějka, L. (2017). Life-cycle study on semi intensive green roofs. Journal of Cleaner Production, 154, 203–213.10.1016/j.jclepro.2017.03.188Search in Google Scholar

Van Metre, P. & Mahler B. (2003). The contribution of particles washed from rooftops to contaminant loading to urban streams. Chemosphere, 52 (10), 1727–1741.10.1016/S0045-6535(03)00454-5Search in Google Scholar

Van Seters, T., Rocha, L., Smith, D. & MacMillan, G. (2009). Evaluation of green roofs for runoff retention, runoff quality, and leachability. Water Quality Research Journal of Canada, 44 (1), 33–47.10.2166/wqrj.2009.005Search in Google Scholar

Versini, P-A., Gires, A., Tchinguirinskaia, I. & Schertzer, D. (2016). Toward an operational tool to simulate green roof hydrological impact at the basin scale: a new version of the distributed rainfall-runoff model Multi-Hydro. Water Science and Technology, 74, 1845–1854.10.2166/wst.2016.310Search in Google Scholar

Versini, P-A., Gires, A., Tchiguirinskaia, I. & Schertzer, D. (2020). Fractal analysis of green roof spatial implementation in European cities. Urban Forestry and Urban Greening, 49, 126629. doi: 10.1016/j.ufug.2020.12662910.1016/j.ufug.2020.126629Search in Google Scholar

Wang, X., Tian, Y. & Zhao, X. (2017). The influence of dual-substrate-layer extensive green roofs on rainwater runoff quantity and quality. Science of The Total Environment, 592, 465–476.10.1016/j.scitotenv.2017.03.124Search in Google Scholar

Zhang, Q., Miao, L., Wang, X., Liu, D., Zhu, L., Zhou, B., Sun, J. & Liu, J. (2015). The capacity of greening roof to reduce stormwater runoff and pollution. Landscape and Urban Planning, 144, 142–150.10.1016/j.landurbplan.2015.08.017Search in Google Scholar

eISSN:
2544-1760
Language:
English