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Strupczewski Method for Parametric Design Hydrographs in Ungauged Cross-Sections


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Apel H., Thieken A. H., Merz B., Blöschl G. (2006) A Probabilistic Modelling System For Assessing Flood Risks, Natural Hazards, 38, 295-308.10.1007/s11069-005-8603-7Search in Google Scholar

Archer D., Foster M., Faulkner D., Mawdsley H. (2000) The Synthesis of Design Flood Hydrographs, Proc. Flooding: Risks And Reactions, CIWEM/ICE Conference, London, 45-57.Search in Google Scholar

Baptista M., Michel C. (1990) Influence Des Caracteristiques Hydrauliques Des Bies Sur La Propagation Des Pointes De Crue, La Houille Blanche, 2, 141-148.10.1051/lhb/1990007Search in Google Scholar

Ciepielowski A. (1987) Statistical Methods of Determining Typical Winter and Summer Hydrographs for Ungauged Watersheds, International Symposium on Hood Frequency and Risk Analyses, Department of Civil Engineering, Louisiana State University, Baton Rouge, 117-124.10.1007/978-94-009-3957-8_10Search in Google Scholar

Ciepielowski A. (2001) Relationships Between Selected Elements of the Flood Hydrographs in Rivers, Journal of Water and Land Development, (5), 89-105.Search in Google Scholar

Criss R. E., Winston W. E. (2008) Discharge Predictions of a Rainfall-Driven Theoretical Hydrograph Compared to Common Models and Observed Data,Water Resources Research, 44, W10407, Doi:10.1029/2007WR00641510.1029/2007WR006415Search in Google Scholar

Elshorbagy A., Simonovic S. P., Panu U. S. (2000) Performance Evaluation of Artificial Neural Networks for Runoff Prediction, Journal of Hydrologic Engineering, 5, 424-427.10.1061/(ASCE)1084-0699(2000)5:4(424)Search in Google Scholar

Gądek W., Srodula A. (2014), The Evaluation of the Design Flood Hydrographs Determined with the Hydroproject Method in the Gauged Catchments, Infrastruktura i Ekologia Terenów Wiejskich, Nr 2014/IV (3), 1355-1366.Search in Google Scholar

GądekW., Bodziony M. (2015) The Hydrological Model and Formula for Determining the Hypothetical FloodWave Volume in Non-Gauged Basin, Meteorology, Hydrology andWater Management, 3 (1), 3-10.10.26491/mhwm/41759Search in Google Scholar

Gądek W., Tokarczyk T. (2015) Determining Hypothetical Floods in the Odra Basin by Means of the Cracow Method and by Volume Formula, Infrastructure and Ecology of Rural Areas, IV/4, 1507-1519.Search in Google Scholar

Gądek W., Tokarczyk T., Srodula A. (2016) Estimation of Parametric Flood Hydrograph Determined by Means of Strupczewski Method in the Vistula and Odra Catchments, Journal ofWater and Land Development, 31 (X-XII), 43-51.10.1515/jwld-2016-0035Search in Google Scholar

Gądek W., Baziak B., Tokarczyk T. (2017) Nonparametric Design Hydrograph in the Gauged Cross Sections of the Vistula and Odra Catchment, Meteorology Hydrology and Water Management, 5 1, 53-61.10.26491/mhwm/67911Search in Google Scholar

Hayashi T., Nagamine Y., Nishida A. (1986) A Vibration Model to Describe the Lactation Curve of a Dairy Cow, Japanese Journal of Zootechnical Science, 57, 471-478.10.2508/chikusan.57.471Search in Google Scholar

Hattermann F. F., Kundzewicz Z. W. (Ed.) (2010) Water Framework Directive: Model Supported Implementation. A Water Manager’s Guide, IWA Publishing, London.10.2166/9781780401768Search in Google Scholar

Krišèiukaitiene I., Baleˇzentis T., Galnaityt´e A., Namiotko V. (2015) A Methodology for Flood Risk Appraisal in Lithuania, Journal of Water and Land Development, (25), 13-22.10.1515/jwld-2015-0008Search in Google Scholar

McEnroe B. M. (1992) Sizing Stormwater Detention Reservoirs to Reduce Peak Flow, Hydraulic Engineering: Saving a Threatened Resource - in Search of Solutions, Conference Proceeding Paper, Reston. VA. ASCE., 719-724.Search in Google Scholar

MioduszewskiW. (2012) SmallWater Reservoirs - Their Function and Construction, Journal of Water and Land Development, (17), 45-52.10.2478/v10025-012-0032-xSearch in Google Scholar

Mioduszewski W. (2014) Small (Natural) Water Retention in Rural Areas, Journal of Water and Land Development, (20), 19-29.10.2478/jwld-2014-0005Search in Google Scholar

O’Connor K., Goswami M., Faulkner D. (2014) Flood Studies Update. Technical Research Report, Volume III. Hydrograph Analysis, 186 pp.Search in Google Scholar

Ozga-Zielińska M., GadekW., Ksiazynski K.,Nachlik E., Szczepanek R. (2002) Mathematical Model of Rainfall-Runoff Transformation - WISTOO, Mathematical Models of LargeWatershed Hydrology, Ed. Singh V. P., Frevert D. K., Water Resources Publications, LLC, Littleton, Colorado, 811-860.Search in Google Scholar

Pietrusiewicz I., Cupak A., Wałega A., Michalec B. (2014) The Use of NRCS Synthetic Unit Hydrograph and Wackermann Conceptual Model in the Simulation of a Flood Wave in an Uncontrolled Catchment, Journal of Water and Land Development, (23), 53-59.10.1515/jwld-2014-0029Search in Google Scholar

Strupczewski W. (1964)Equation of Flood Crest, Wiadomosci Słuzby Hydrologicznej i Meteorologicznej, 2 (57), 35-58.Search in Google Scholar

Vrijling J. K., Van Hengel W., Houben R. J. (1998) Acceptable Risk as a Basis for Design, Reliability Engineering and System Safety, 59, 141-150.10.1016/S0951-8320(97)00135-XSearch in Google Scholar

Tokarczyk T., SzalinskaW. (2013) The Operational Drought Hazard Assessment Scheme - Performance and Preliminary Results, Archives of Environmental Protection, 39 (3), 61-77, Wałega A. (2013) Application of HEC-HMS Programme for the Reconstruction of a Flood Event in an Uncontrolled Basin, Journal of Water and Land Development, (18), 13-20.10.2478/aep-2013-0028Search in Google Scholar

WMO (2008) Urban Flood Risk Management. A Tool for Integrated Flood Management. Search in Google Scholar

Zevenbergen C., Cashman A., Evelpidou N., Pasche E., Garvin S., Ashley R. (2011) Urban Flood Management, CRC Press London.10.1201/9781439894330Search in Google Scholar

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Language:
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