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Modelling rainfall runoff relations using HEC-HMS in a semi-arid region: Case study in Ain Sefra watershed, Ksour Mountains (SW Algeria)

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PL
Modelowanie relacji opad–odpływ za pomocą HEC-HMS w regionie półsuchym: Przykład zlewni Ain Sefra w górach Ksour (południowozachodnia Algieria)
Języki publikacji
EN
Abstrakty
EN
Ain Sefra is one of the Algerian cities that had been experienced several devastating floods during the past 100 years. The purpose of this study is to simulate runoff in the semi-arid region of Ain Sefra watershed through the employing of the Hydrologic Engineering Center – Hydrologic Modelling System (HEC-HMS). In this paper, the frequency storm is used for the meteorological model, the Soil Conservation Service – curve number (SCS-CN) is selected to calculate the loss rate and Soil Conservation Service unit hydrograph method have been applied to simulate the runoff rate. After calibration and validation, the simulated peak discharges were very close with observed values. The Nash–Sutcliffe efficiency coefficient was 0.95, indicates that the hydrological modeling results are satisfactory and accepted for simulation of rainfall-runoff. The peak discharges obtained for the 10, 50, 100 and 1000 year storms are respectively 425.8, 750.5, 904.3 and 1328.3 m3∙s–1.
PL
Ain Sefra jest jednym z algierskich miast, które doświadczyły kilku niszczących powodzi w ciągu minionych 100 lat. Celem badań prezentowanych w pracy było symulowanie odpływu w regionie o klimacie półsuchym w zlewni Ain Sefra z wykorzystaniem systemu modelowania hydrologicznego HEC-HMS. W pracy użyto częstotliwości opadów nawalnych do konstruowania modelu meteorologicznego, liczbę krzywych Służby Ochrony Gleb USA – ang. Soil Consevation Service (SCS-CN) wybrano do obliczenia tempa strat, a metodę jednostkowego hydrogramu Służby Ochrony Gleb USA użyto do symulowania szybkości odpływu. Po przeprowadzeniu kalibracji i walidacji modelu symulowane maksymalne odpływy były bardzo bliskie wartościom obserwowanym. Współczynnik wydajności Nasha–Sutcliffa równy 0,95 wskazuje, że wyniki modelowania hydrologicznego są zadowalające i mogą być przyjęte do symulowania relacji opad–odpływ. Uzyskane maksymalne odpływy dla 10-, 50-, 100- i 1000-letnich opadów nawalnych wynoszą odpowiednio 425,8, 750,5, 904,3 i 1328,3 m3∙s–1.
Wydawca
Rocznik
Tom
Strony
45--55
Opis fizyczny
Bibliogr. 37 poz., rys., tab.
Twórcy
autor
  • University of Tlemcen, Laboratory No. 25; BP119, 13000, Tlemcen, Algeria
autor
  • University of Tlemcen, Algeria
autor
  • University of Tlemcen, Algeria
Bibliografia
  • AMBRSOISE B. 1998. La dynamique du cycle de l’eau dans un bassin versant. Processus, Facteur, Modèles [The dynamics of the water cycle in a watershed. Process, factor, models]. Bucarest. H.G.A. ISBN 973-98954-2-5 pp. 206.
  • AQUAVEO 2012. WMS 9.1 Tutorial. Watershed modeling – Time of concentration calculations and computing a composite CN. Provo. Utah pp. 14.
  • BENSAID A. 2007. SIG et télédétection pour l’étude de l’ensablement dans une zone aride: le cas de la Wilaya de Naama (Algérie) [GIS and remote sensing for the study of silting in an arid zone: The case of the Wilaya of Naama (Algeria)]. PhD Thesis. Grenoble. Joseph Fourier University pp. 319.
  • CLARKE R.T. 1973. A review of some mathematical models used in hydrology with observations on their calibration and use. Journal of Hydrology. Vol. 19 p. 1–20.
  • CORNET A., DELEAU P. 1951. Carte géologique au 1/500.000 [Geologic card of Algeria scale 1/500.000]. Algiers, Algeria. Le service de la Carte Géologique d’Algérie.
  • CUNDERLIK J.M., SIMONOVIC S. P. 2004. Calibration, verification, and sensitivity analysis of the HEC-HMS hydrologic model. CFCAS project: Calibration, verifycation, and sensitivity analysis of the HEC-HMS hydrologic model. Project report IV. London, Canada. The University of Western Ontario pp. 113.
  • DERDOUR A. 2010. Modélisation hydrodynamique de la nappe des grès Crétacé de Remtha. Monts des Ksour [Hydrodynamic modelling of the cretaceous sandstone watertable of Remtha’s Synclinal. Ksour Mountains]. MSc Thesis. Tlemcen. Unversity of Tlemcen pp. 101.
  • DERDOUR A., BOUANANI A., BABAHAMED K. 2013. Utilisation d’un SIG pour l’évaluation des caractéristiques physiques d’un bassin versant et leurs influences sur l’écoulement des eaux (Bassin versant d’Ain Sefra, Sud-Ouest Algérien) [Use of GIS for the assessment of the physical characteristics of a watershed and their influences on water flow (case of Ain Sefra watershed, S-W of Algeria]. Séminaire sur le développement des sciences, de la vie et de l’univers. 14–15.05.2013, Tlemcen p. 227–230.
  • DJEBAILI S. 1984. Steppe Algérienne phytosociologie et écologie [Algerian steppe phytosociology and ecology]. Alger. Office des publications universitaires pp. 178.
  • DOUIHASNI M. 1976. Etude géologique de la région d’Ain Ouarka-Bousemghoun (partie centrale des Monts des Ksour). Stratigraphie et analyse stucturale [Geological study of the region of Ain Ouarka-Bousemghoun (central part of Ksour Mountains). Stratigraphy and structural analysis]. Thèse 3éme cyc. Oran. Univesity of Oran pp. 272.
  • GALMIER D. 1970. Photogéologie de la région d’Ain Sefra (Atlas Saharien, Algérie) [Photogeology of the region of Ain Sefra (Saharian atlas, Algeria)]. PhD Thesis. Paris pp. 320.
  • GIANDOTTI M. 1934. Previsione delle piene e delle magre dei corsi d’acqua [Forecast of floods and lean waters]. Istituto Poligrafico dello Stato. Vol. 8 p. 107–117.
  • GORDO B. 2014. Contribution à l’analyse phytoécologique de la région d’Ain Sefra (Naama) [Contribution to the phytoecological analysis of the region of Ain Sefra (Naama)]. MSc Thesis. Oran. University of Oran pp. 141.
  • GUENIFI D. 2004. Gestion risque inondation: Application réglementaire pour la sauvegarde des personnes et des biens [Flood risk management: Regulatory application for safeguarding people and property]. Actes des journées techniques des risques naturels: Inondation, prévision, protection. 15–16.12.2004 Batna, Algeria. University of Batna p. 58–62.
  • GUHA-SAPIR D., HOYOIS P., BELOW R. 2015. Annual disaster statistical review 2014: The numbers and trends. Brussels. CRED pp. 50.
  • KACEMI A. 2014. Evolution lithostructurale des Monts des Ksour (Atlas Saharien, Algérie) au cours du Trias et du Jurassique: Géodynamique, typologie du bassin et télédétection [Lithostructural evolution of Ksour Mountains (Saharian Atlas, Algeria) during the Trias and Jurassic periods: Geodynamics, basin typology and remote sensing]. PhD Thesis. Tlemcen, Algérie. Université Abou BakrBelkaid pp. 249.
  • LAOUACHERIA F., MANSOURI R. 2015. Comparison of WBNM and HEC-HMS for runoff hydrograph prediction in a small urban catchment. Water Resources Management. Vol. 29 p. 2485–2501. DOI 10.1007/ s11269-015-0953-7.
  • MCCUEN R.H. 1982. A guide to hydrologic analysis using SCS methods. Englewood Cliffs, N.J. Prentice-Hall. ISBN 0133702057. pp. 145.
  • MEILING W., LEI Z., THELMA D. 2016. Hydrological modeling in a semi-arid region using HEC-HMS. Journal of Water Resources and Hydraulic Engineering. Vol. 5 Iss. 3 p. 105–115. DOI 10.5963/JWRHE 0503004.
  • MOKHTARI E.H., REMINI B., HAMOUDI S.A. 2016. Modelling of the rain–flow by hydrological modelling software system HEC-HMS – watershed’s case of wadi Cheliff-Ghrib, Algeria. Journal of Water and Land Development. No. 30 p. 87–100. DOI 10.1515/jwld-2016-0025.
  • 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. American Society of Agricultural and Biological Engineers. Vol. 50(3) p. 885−900.
  • NASH J.E., SUTCLIFFE J. 1970. River flow forecasting through conceptual model. Part 1: A discussion of principles. Journal of Hydrology. Vol. 10. Iss. 3 p. 282–290.
  • NORHAN A., SAUD T., FAHAD A., KAMARUL A. 2016. Arid hydrological modeling at wadi Alaqiq, Madinah, Saudi Arabia. Jurnal Teknologi p. 51–58. DOI 10.11113/jt.v78.4516.
  • NRCS 2007. National Engineering Handbook: Part 630 – Hydrology. Chapter 7. USDA Natural Resources Conservation Service. Hydrologic Soil Groups pp. 14.
  • POUGET M. 1977. Cartographie des zones arides. Note explicative Office de la Recherche Scientifique et Technique Outre-mer [Arid zone mapping. Explanatory note Office for Scientific and Technical Research Overseas]. Paris. ORSTOM. ISBN 2-7099-0435-7 pp. 101.
  • RAHMANI A. 2010. Apport des S.I.G dans la caractérisation hydrodynamique et hydrochimique de la nappe du crétacé inférieur de la région d’Ain Sefra (Atlas Saharien Occidental – Algérie) [Contribution of GIS in the hydrodynamic and hydrochemical characterization of the lower cretaceous aquifer of the region of Ain Sefra (Western Saharian Atlas – Algeria)]. MSc Thesis. Tlemcen. University of Tlemcen pp. 105.
  • SAMPATH D., WEERAKOON S., HERATH S. 2015. HEC-HMS model for runoff simulation in a tropical catchment with intra-basin diversions case study of the Deduru Oya River Basin, Sri Lanka. Engineer. Vol. 48. No. 01 p. 1–9. DOI 10.4038/engineer.v48i1.6843.
  • SCHARFFENBERG W., FLEMING M. 2010. Hydrologic modeling system HEC-HMS v3.5: Users manual. Davis, CA. USACE, Hydrologic Engineering Center. pp. 318.
  • SCHARFFENBERG W., FLEMING M. 2016. Hydrologic modeling system HEC-HMS v4.2: Users manual. Davis, CA. USACE, Hydrologic Engineering Center. pp. 614.
  • SKHAKHFA I.D., OUERDACHI L. 2016. Hydrological modelling of wadi Ressoul watershed, Algeria, by HECHMS model. Journal of Water and Land Development. No. 31 p. 139–147. DOI 10.1515/jwld-2016-0045.
  • SHAH S., O’CONNELL P., HOSKING J. 1996. Modelling the effects of spatial variability in rainfall on catchment response: Formulation and calibration of a stochastic rainfall field model. Journal of Hydrology. Vol. 175 p. 67–88.
  • SINTAYEHU L.G. 2015. Application of the HEC-HMS model for runoff simulation of Upper Blue Nile River Basin. Hydrology: Current Research. Vol. 6. Iss. 2: 199. DOI 10.4172/2157-7587.1000199.
  • USGS 2012. Estimating basin lagtime and hydrographtiming indexes used to characterize stormflows for runoff-quality analysis. Scientific Investigations Report. Reston, Virginia. USA. U.S. Geological Survey pp. 58.
  • USGS undated. EarthExplorer [online]. [Digital elevation models and satellite data]. Available at: http://earthexplorer.usgs.gov/
  • WAŁĘGA A. 2013. Application of HEC-HMS programme for the reconstruction of a flood event in an uncontrolled basin. Journal of Water and Land Development. No. 18 p. 13–20.
  • WHEATER H., SOROOSHIAN S., SHARMA K. 2008. Hydrological modelling in arid and semi-arid areas. Cambridge UK. Cambridge University Press pp. 223. DOI 10.1017/CBO9780511535734.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-35db4f33-5b1b-4858-b100-41db86b7bfe0
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