References
- AGARWAL S., KUMAR S. 2019. Applicability of SWMM for semi Urban Catchment Flood modeling using extreme Rainfall Events. International Journal of Recent Technology and Engineering (IJRTE) 8, 2: 245–251. DOI:10.35940/ijrte.A3169.078219.
- ARJENAKI M., SANAYEI H., HEIDARZADEH H., MAHABADI N. 2020. Modeling and investigating the effect of the LID methods on collection network of urban runoff using the SWMM model (case study: Shahrekord City). Modeling Earth Systems and Environment 7:1–16. DOI:10.1007/s40808-020-00870-2.
- BAI Y., ZHAO N., RUOYU Z., ZENG X. 2019. Storm Water Management of Low Impact Development in Urban Areas Based on SWMM. Water 11, 1: 33. DOI:10.3390/w11010033.
- BARSZCZ M. 2017. Zastosowanie modelu SWMM do obliczenia przepływów i ich redukcji przez zbiorniki na obszarze lotniska Chopina [Application of the SWMM model to calculate flows and their reduction through reservoirs in the area of Chopin Airport]. Acta Sci. Pol. Architectura 16, 1: 79–91. ISSN 1644-0633, DOI:10.22630/ASPA.2017.16.1.08.
- BATALINI DE MACEDO M., FERREIRA DO LAGO C. A., MENDIONDO E. M., BORGES DE SOUZA V. C. 2018. Performance of bioretention experimental devices: contrasting laboratory and field scales through controlled experiments. Revista Brasileira de Recursos Hídricos Brazilian Journal of Water Resources Versão (RBRH) Porto Alegre, 23, 3. DOI:10.1590/2318-0331.0318170038.
- BOND J. 2021. Modeling a Bioretention Basin and Vegetated Swale with a Trapezoidal Cross Section using SWMM LID Controls. Journal of Water Management Modeling 29: C474, CHI 2021. DOI:10.14796/JWMM.C474.
- BURSZTA-ADAMIAK E., BINIAK-PIERÓG M., DĄBEK P. B., STERNIK A. 2023. Rain garden hydrological performance – Responses to real rainfall events. Science of the Total Environment 887: 164153. DOI:10.1016/j.scitotenv.2023.164153.
- BURSZTA-ADAMIAK E., MROWIEC M. 2013. Modelling of green roofs’ hydrologic performance using EPA’s SWMM. IWA Publishing Water Science & Technology 68,1: 36–42. DOI:10.2166/wst.2013.219.
- CHOI C., BERRY P., SMITH A. 2021. The climate benefits, co-benefits, and trade-offs of green infrastructure: A systematic literature review. Journal of Environmental Management, 291, 1 August 2021: 112583. DOI:10.1016/j.jenvman.2021.112583.
- CHRISTENSEN D., SCHMIDT A. R. 2012. An Approach to Analyze the Hydrologic Effects of Rain Gardens. In Low Impact Development for Urban Ecosystem and Habitat Protection, pp. 1–9, DOI:10.1061/41009(333)1.
- CIPOLLA S. S., MAGLIONICO M., STOJKOV I. 2016. A long-term hydrological modelling of an extensive green roof by means of SWMM. Ecological Engineering 95, October 2016: 876–887. DOI:10.1016/j.ecoleng.2016.07.009.
- D’AMBROSIO R., BALBO A., LONGOBARDI A., RIZZO A. 2022. Re-think urban drainage following a SuDS retrofitting approach against urban flooding: A modelling investigation for an Italian case study. Urban Forestry & Urban Greening 70: 127518. DOI:10.1016/j.ufug.2022.127518.
- DAS P., BEHERA M. D., PATIDAR N., SAHOO B., TRIPATHI P., BEHERA P. R., SRIVASTAVA S. K., ROY P. S., THAKUR P., AGRAWAL S. P., KRISHNAMURTHY Y. V. N. 2018. Impact of LULC Change on the Runoff, Base Flow and Evapotranspiration Dynamics in Eastern Indian River Basins during 1985–2005 Using Variable Infiltration Capacity Approach. Journal of Earth System Science 127, 2: 19. DOI:10.1007/s12040-018-0921-8.
- DĄBROWSKI W., NOWAK M. 2022. Potential of storm water storage tank outflow construction in the prevention of sewerage overload. Applied Water Science Volume 12: 205, DOI:10.1007/s13201-022-01729-w.
- DEL GIUDICE G., PADULANO R. 2016. Sensitivity Analysis and Calibration of a Rainfall-Runoff Model with the Combined Use of EPA-SWMM and Genetic Algorithm. Acta Geophysica 64, 5: 1755–1778. DOI:10.1515/acgeo-2016-0062.
- ENDRENY T. A. 2006. Land Use and Land Cover Effects on Runoff. Processes: Urban and Suburban Development. Encyclopedia of Hydrological Sciences (M.G. Anderson and J.J. McDonnell, eds). John Wiley & Sons, Ltd. DOI:10.1002/0470848944.hsa122.
- EPPS T., HATHAWAY J. 2019. Using spatially-identified effective impervious area to target green infrastructure retrofits: A modeling study in Knoxville, TN. Journal of Hydrology 575: 442–453. DOI:10.1016/j.jhydrol.2019.05.062.
- GODYŃ I., BODZIONY M., GRELA A., MUSZYŃSKI K., PAMUŁA J. 2023. Determination of Pollution and Environmental Risk Assessment of Stormwater and the Receiving River, Case Study of the Sudół River Catchment, Poland. International Journal of Environmental Research and Public Health 20, 1: 504. DOI:10.3390/IJERPH20010504.
- GODYŃ I., GRELA A., MUSZYŃSKI K., PAMUŁA J. 2024. The Impact of Green Infrastructure on the Quality of Stormwater and Environmental Risk. Sustainability 16: 8530. DOI:10.3390/su16198530.
- GOLDEN H. E., HOGHOOGHI N. 2018. Green infrastructure and its catchment-scale effects: an emerging science. WIREs Water 5, 1: 1254. DOI:10.1002/wat2.1254.
- GRANADOS-OLIVAS A., ALATORRE-CEJUDO L.C., ADAMS D., SERRA Y.L., ESQUIVEL-CEBALLOS V.H., VÁZQUEZ-GÁLVEZ F.A., GINER M.E., EASTOE C. 2016. Runoff Modeling to Inform Policy Regarding Development of Green Infrastructure for Flood Risk Management and Groundwater Recharge Augmentation along an Urban Subcatchment, Ciudad Juarez, Mexico. Journal of Contemporary Water Research & Education, 159: 50–61, DOI:10.1111/j.1936-704X.2016.03229.x.
- GRUMBLES B. 2007. Memorandum: Using Green Infrastructure to Protect Water Quality in Stormwater, CSO, Nonpoint Source and other Water Programs (United States Environmental Protectional Agency Office of Water, 05.03.2007).
- GUGiK, Head Office of Geodesy and Cartography. Available online:
https://www.gov.pl/web/gugik/dane-pzgik4 (accessed on September 2023). - GUO Q., CORREA C. A. 2013. The Impacts of Green Infrastructure on Flood Level Reduction for the Raritan River: Modeling Assessment. World Environmental and Water Resources Congress 2013: Showcasing the Future - Cincinnati, OH, United States, 19 May 2013. DOI:10.1061/9780784412947.035.
- GUO C., LI J., LI H., LI Y. 2019. Influences of stormwater concentration infiltration on soil nitrogen, phosphorus, TOC and their relations with enzyme activity in rain garden. Chemosphere 233: 207–215, DOI:10.1016/j.chemosphere.2019.05.236
- HAMOUZ V., MØLLER-PEDERSEN P., MUTHANNA T. M. 2020. Modelling runoff reduction through implementation of green and grey roofs in urban catchments using PCSWMM. Urban Water Journal 17, 9: 813–826. DOI:10.1080/1573062X.2020.1828500.
- HÖRNSCHEMEYER B., HENRICHS M., DITTMER U., UHL M. 2023. Parameterization for Modeling Blue–Green Infrastructures in Urban Settings Using SWMM-UrbanEVA. Water, 15, 15: 2840, DOI:10.3390/w15152840.
- HUNT W. F., JARRETT A. R., SMITH J. T., SHARKEY L. J. 2006. Evaluating Bioretention Hydrology and Nutrient Removal at Three Field Sites in North Carolina. Journal of Irrigation and Drainage Engineering ASCE 132: 600–608. DOI:10.1061/(ASCE)0733-9437(2006)132:6(600)
- HUANG Y., TIAN Z., KE Q., LIU J., IRANNEZHAD M., FAN D., HOU M., SUN L. 2020. Nature-based solutions for urban pluvial flood risk management. WIREs Water 2020, 7; e1421, DOI:10.1002/wat2.1421.
- IWASZUK E., RUDIK G., DUIN L., MEDERAKE L., DAVIS M., NAUMANN S., WAGNER I. 2019. Addressing Climate Change in Cities – Catalogue of urban nature-based solutions. Ecologic Institute & the Sendzimir Foundation: Berlin, Cracow.
- JARDEN K. M., JEFFERSON A. J., GRIESER J. 2015. Assessing the effects of catchment-scale urban green infrastructure retrofits on hydrograph characteristics. Hydrological Process 30, 10: 1536–1550, DOI:10.1002/hyp.10736.
- JEFFERS S., GARNER B., HIDALGO D., DAOULARIS D., WARMERDAM O. 2022. Insights into green roof modeling using SWMM LID controls for detention-based designs. Journal of Water Management Modeling 30: C484. DOI:10.14796/JWMM.C484.
- JIANG Y., YUAN Y., PIZA H. 2015. A Review of Applicability and Effectiveness of Low Impact Development/Green Infrastructure Practices in Arid/Semi-Arid United States. Environments, 2(2), 221–249; DOI:10.3390/environments2020221.
- KASPRZYK M., SZPAKOWSKI W., POZNAŃSKA E., BOOGAARD F. C., BOBKOWSKA K., GAJEWSKA, M. 2022. Technical solutions and benefits of introducing rain gardens – Gdańsk case study. Science of The Total Environment 835, August 2022: 155487, DOI:10.1016/J.SCITOTENV.2022.155487.
- KHAN, M. P., HUBACEK, K., BRUBAKER, K. L., ASCE, A. M., SUN, L., MOGLEN, G. E., ASCE, F. 2022. Stormwater Management Adaptation Pathways under Climate Change and Urbanization. Journal of Sustainable Water in the Built Environment 8, 4: 102290. DOI:10.1061/JSWBAY.0000992.
- KORKOU M., TARIGAN A. K., HANSLIN, H. M. 2023. The multifunctionality concept in urban green infrastructure planning: A systematic literature review. Urban Forestry & Urban Greening 85: 127975. DOI:10.1016/j.ufug.2023.127975.
- KRAVCHENKO M., WRZESIŃSKI G., PAWLUK K., LENDO-SIWICKA M., MARKIEWICZ A., TKACHENKO T., MILEIKOVSKYI V., ZHOVKVA O., SZYMANEK S., PIECHOWICZ K. 2024. Improving Urban Stormwater Management Using the Hydrological Model of Water Infiltration by Rain Gardens Considering the Water Column. Water 16, 16: 2339. DOI:10.3390/w16162339.
- LEE J. G., NIETCH C. T., PANGULURI S. 2018. SWMM Modeling Methods for Simulating Green Infrastructure at a Suburban Headwatershed: User’s Guide (U.S. Environmental Protection Agency, Washington, DC, EPA/600/R-17/414).
- LI C., LIU M., HU Y., GONG J., XU Y. 2015. Modeling the Quality and Quantity of Runoff in a Highly Urbanized Catchment Using Storm Water Management Model. Pol. J. Environ. Stud. 25, 4: 1573–1581. DOI: 10.15244/pjoes/60721.
- LI C., LIU M., HU Y., SHI T., QU X., WALTER T. M. 2018. Effects of Urbanization on Direct Runoff Characteristics in Urban Functional Zones. Science of The Total Environment 643, 1 December 2018: 301–311. DOI:10.1016/j.scitotenv.2018.06.211.
- LIN F., CHEN X., YAO, H. 2017. Evaluating the Use of Nash-Sutcliffe Efficiency Coefficient in Goodness-of-Fit Measures for Daily Runoff Simulation with SWAT. Journal of Hydrologic Engineering 22, 11. DOI:10.1061/(ASCE)HE.1943-5584.0001580.
- LIU D., KWAN M.P., KAN Z., WANG, J. 2022. Toward a Healthy Urban Living Environment: Assessing 15-Minute Green-Blue Space Accessibility. Sustainability, 14, 24: 16914. DOI:10.3390/su142416914.
- MAI Y., ZHANG M., CHEN W., CHEN X., HUANG G., LI D. 2019. Experimental study on the effects of LID measures on the control of rainfall runoff. Urban Water Journal 15, 9: 827–836. DOI:10.1080/1573062X.2018.1561912.
- MAO Y., LI Y., BAI X., YANG X., HAN Y., FU X. 2024. Scenario-Based Green Infrastructure Installations for Building Urban Stormwater Resilience—A Case Study of Fengxi New City, China. Sustainability 16, 10: 3990. DOI:10.3390/su16103990.
- MCCUTCHEON M., WRIDE, D. 2013. Shades of Green: Using SWMM LID Controls to Simulate Green Infrastructure. Journal Of Water Management Modeling 21: R246-15. DOI:DOI:10.14796/JWMM.R246-15.
- MORIASI D. N., ARNOLD J. G., VAN LIEW M. W., BINGNER R. L., HARMEL R. D., VEITH T. L. 2007. Model Evaluation Guidelines for Systematic Quantification of Accuracy in Watershed Simulations. Transactions of the ASABE (American Society of Agricultural and Biological Engineers) 50, 3: 885–900. DOI:10.13031/2013.23153.
- MULLER M. 2007. Adapting to climate change: water management for urban resilience. Environment and Urbanization 19, 1: 99–113. DOI:10.1177/0956247807076726.
- MUSZYŃSKI K., GODYŃ I., PORĘBSKA A., RACOŃ-LEJA K. 2022. Koncepcja możliwości kształtowania bioretencji w zlewni Serafy z wykorzystaniem analiz przestrzennych naturalnych dróg spływu wód opadowych [The concept of the possibility of shaping bioretention in the Serafa catchment using spatial analyses of natural rainwater runoff routes]. Instal, 7, 8: 59–65. DOI:10.36119/15.2022.7-8.8.
- NOWOGOŃSKI I., OGIOŁDA E., MUSIELAK M. 2019. Estimation of the Hydraulic Width of the Subcatchment Depending on the Degree of Detail of the Drainage System Model. Civil And Environmental Engineering Reports 29, 4: 128–140. DOI:10.2478/ceer-2019-0049.
- NUR OKTALINOV FIKRI A., TJENDANI H. T., OETOMO W. 2022. Analysis of urban drainage system to avoid rain water overflow on the access road to Juanda Airport. The 8th International Conference of Euro Asia Civil Engineering Forum 1195, 1: 012045. DOI:10.1088/1755-1315/1195/1/012045.
- PARNAS F. E. Å., ABDALLA E. M. H., MUTHANNA T. M. 2021. Evaluating three commonly used infiltration methods for permeable surfaces in urban areas using the SWMM and STORM. Hydrology Research 52, 1: 160–175. DOI:10.2166/nh.2021.048.
- PN-EN 752:2017-06. 2017. Drain and sewer systems outside buildings - Sewerage system management.
- PORĘBSKA A., MUSZYŃSKI K., GODYŃ I., RACOŃ-LEJA K. 2023. City and Water Risk: Accumulated Runoff Mapping Analysis as a Tool for Sustainable Land Use Planning. Land, 12, 7: 1345. DOI:10.3390/land12071345.
- PRECIPITATION MODEL, Precipitation model for the City of Cracow. 2024.
https://model-opadowy.wodociagi.krakow.pl/ . - RAHMAN M. A., HARTMANN C., MOSER-REISCHL A., VON STRACHWITZ M. F., PAETH H., PRETZSCH H., PAULEIT S., RÖTZER T. 2020. Tree cooling effects and human thermal comfort under contrasting species and sites. Agricultural and Forest Meteorology 287, 15 June: 107947, DOI:10.1016/j.agrformet.2020.107947.
- REZAEI A. R., ISMAIL Z., NIKSOKHAN M.H., DAYARIAN M. A., RAMLI A.H., SHIRAZI S.M. 2019. Quantity-Quality Model to Assess the Effects of Source Control Stormwater Management on Hydrology and Water Quality at the Catchment Scale. Water, 11, 7: 1415. DOI:10.3390/w11071415.
- RESOLUTION No. XCVII/2493/18 of the Cracow City Council of 14 March 2018 on adopting a local spatial development plan for the “BRONOWICE - STELMACHÓW” area. 2018. Announced in the Official Gazette of the Małopolskie Voivodship of 23 March 2018, item 2238.
https://www.bip.krakow.pl/?dok_id=96320 . - ROESNER L. A., DICKINSON R. E. 1992. Storm Water Management Model User’s Manual Version 4: Extra Addendum. Department of Environmental Engineering Sciences, University of Florida.
- ROSSMAN L. A., HUBER W. C. 2016. Storm Water Management Model Reference Manual Volume III – Water Quality. National Risk Management Laboratory, Office of Research and Development, U.S. Environmental Protection Agency, Cincinnati, OH, USA (45268, EPA/600/R-16/093).
- ROSSMAN L. A., SIMON M. A. 2022. Storm Water Management Model User’s Manual Version 5.2. Center for Environmental Solutions and Emergency Response, Office of Research and Development, U.S. Environmental Protection Agency, Cincinnati, OH, USA. (45268, EPA-600/R-22/030).
- ROY A. H., LEE R. K., MAYER A. L., SHUSTER W. D., BEAULIEU J. J., HOPTON M. E., MORRISON M. A., AMAND A. S. 2014. How Much Is Enough? Minimal Responses of Water Quality and Stream Biota to Partial Retrofit Stormwater Management in a Suburban Neighborhood. Plos One 9, 1: e85011. DOI:10.1371/JOURNAL.PONE.0085011.
- SHAMSI U. M., KORAN J. 2017. Continuous Calibration. Journal Of Water Management Modeling 25: C414. DOI:10.14796/JWMM.C414.
- SINGH J., KNAPP H. V., DEM M. 2004. Hydrologic Modeling of the Iroquois River Watershed Using HSPF and SWAT. Illinois Department of Natural Resources and the Illinois State Geological Survey. Illinois State Water Survey Contract Report 2004-08.
- SMITH J. S., WINSTON R. J., WITUSZYNSKI D. M., TIRPAK R. A., BOENING-ULMAN K. M., MARTIN, J. F. 2023. Effects of Watershed-Scale Green Infrastructure Retrofits on Urban Stormwater Quality: A Paired Watershed Study to Quantify Nutrient and Sediment Removal. Ecological Engineering 186, January 2023: 106835. DOI:10.1016/j.ecoleng.2022.106835.
- SOFIJANIC A., HULLEY M., FILION Y. 2022. SWMM Stormwater Quality Model Developed to Assess the Performance of Best Management Practices: A Case Study of the Town of Jasper in Canada. Canadian Journal of Civil Engineering 50, 1: 24–33. DOI:10.1139/cjce-2021-0243.R1.
- TACHE A.V., POPESCU O.C., PETRIȘOR A.I. 2023. Conceptual Model for Integrating the Green-Blue Infrastructure in Planning Using Geospatial Tools: Case Study of Bucharest, Romania Metropolitan Area. Land 12, 7: 1432. DOI:10.3390/land12071432.
- TAREK M. H., KABIR S. M. I., ADIL H. 2017. Application of SWMM for analysis of flash floods in urban areas: A case study for Chaktai Khal watershed in Chittagong. Volume 6th International Conference on Water & Flood Management, Dhaka, Bangladesh (ICWFM-2017).
- TITTERINGTON J., SQUIBBS G., DIGMAN C., ALLITT R., OSBORNE M., ECCLESTON P., WISDISH A. 2017. Code of Practice for the Hydraulic Modelling of Urban Drainage Systems 2017. The Chartered Institution of Water and Environmental Management (CIWEM), Version 01.
- TIVERON T., GHOLAMREZA-KASHI S., JOKSIMOVIC D. 2018. A USEPA SWMM Integrated Tool for Determining the Suspended Solids Reduction Performance of Bioretention Cells. Journal Of Water Management Modeling. DOI:10.14796/JWMM.C443.
- US ENVIRONMENTAL PROTECTION AGENCY. 2022. Storm Water Management Model User’s Manual Version 5.2. United States Environmental Protection, Revised February 2022 (EPA/600/R-22/030).
https://www.epa.gov/system/files/documents/2022-02/storm-water-management-model-users-manual-version-5.2.pdf . - WANG J., LIU J., WANG H., MEI C. 2020. Approaches to Multi-Objective Optimization and Assessment of Green Infrastructure and Their Multi-Functional Effectiveness: A Review. Water 12, 10: 2714, DOI:10.3390/w12102714.
- WANG M., SUN Y., SWEETAPPLE C. 2017. Optimization of storage tank locations in an urban stormwater drainage system using a two-stage approach. Journal of Environmental Management 204, PART 1: 37–38. DOI:10.1016/j.jenvman.2017.08.024.
- WANG M., ZHANG D. Q., SU J., DONG J. W., TAN S. K. 2018. Assessing hydrological effects and performance of low impact development practices based on future scenarios modeling. Journal of Cleaner Production 179, 1 April: 12–23. DOI:10.1016/j.jclepro.2018.01.096.
- WANG S., HE Q., AI H., WANG Z., ZHANG Q. 2013. Pollutant Concentrations and Pollution Loads in Stormwater Runoff from Different Land Uses in Chongqing. Journal of Environmental Sciences 25, 3: 502–510, DOI:10.1016/S1001-0742(11)61032-2.
- YIM S., AING C., MEN S., SOVANN, C. 2016. Applying PCSWMM for Stormwater Management in the Wat Phnom Sub Catchment, Phnom Penh, Cambodia. Journal of Geography, Environment and Earth Science International 5, 3: 1–11. ISSN: 2454-7352; DOI:10.9734/JGEESI/2016/23525.
- ZHANG K., MAY CHUI T. F. 2019. A review on implementing infiltration-based green infrastructure in shallow groundwater environments: Challenges, approaches, and progress. Journal of Hydrology 579: 124089. DOI:10.1016/j.jhydrol.2019.124089.
- ZHANG N., LUO Y., CHEN X., LI QI., JING Y., WANG X., FENG C. 2018. Understanding the Effects of Composition and Configuration of Land Covers on Surface Runoff in a Highly Urbanized Area. Ecological Engineering 125, December: 11–25. DOI:10.1016/J.ECOLENG.2018.10.008.