Doctoral School, Faculty of Hydrotechnical, Department of Hydrotechnical Engineering, Technical University of Civil Engineering of BucharestBucharest, Romania
Doctoral School, Faculty of Energy Engineering, Department of Hydraulics, Hydraulic Machinery and Environmental Engineering, National University of Science and Technology Politehnica BucharestBucharest, Romania
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Fischer C, Hiraldo AS, Ghiță E, et al. (2024) Planning for flood resilience in Romania - Results and lesson learned from the RO-Floods Project. Avabile from: https://documents1.worldbank.org/curated/en/099438307162424637/pdf/IDU1ea2109c21fa8c146811822f1764487dacdde.pdf?_gl=1*kq5vw4*_gcl_au*MTU5MzA0NjE0My4xNzI0ODY5MzU2Search in Google Scholar
Schmitt R.J.P, Rosa L, (2024) Dams for hydropower and irrigation: Trends, challenges, and alternatives. Renewable and Sustainable Energy Reviews Volume 199: 114439. https://doi.org/10.1016/j.rser.2024.114439Search in Google Scholar
Chen Ji, Shi H, Sivakumar B, Peart MR. (2016) Population, water, food, energy and dams. Renewable and Sustainable Energy Reviews Volume 56: 18-28. https://doi.org/10.1016/j.rser.2015.11.043Search in Google Scholar
Acheampong J.N, Gyamfi C, Arthur E. (2023) Impacts of retention basins on downstream flood peak attenuation in the Odaw river basin, Ghana. Journal of Hydrology: Regional Studies Volume 47: 101364. https://doi.org/10.1016/j.ejrh.2023.101364Search in Google Scholar
Shrestha B.B, Kawasaki A, (2020) Quantitative assessment of flood risk with evaluation of the effectiveness of dam operation for flood control: A case of the Bago River Basin of Myanmar. International Journal of Disaster Risk Reduction Volume 50: 101707. https://doi.org/10.1016/j.ijdrr.2020.101707Search in Google Scholar
Yoshikawa N, Nagao N, Misawa S, (2010) Evaluation of the flood mitigation effect of a Paddy Field Dam project. Agricultural Water Management Volume 97, Issue 2: 259-270. https://doi.org/10.1016/j.agwat.2009.09.017Search in Google Scholar
Azha S.F, Sidek L.M, Kok K, et al. (2023) Assessing dam spillway discharge capacity in response to extreme floods in Perak River hydroelectric scheme: Simulation and proposed mitigation measures. Ain Shams Engineering Journal Volume 14, Issue 11: 102540. https://doi.org/10.1016/j.asej.2023.102540Search in Google Scholar
Dam Belci. Wikipedia. Accessed on: 29.08.2024. Avabile from: https://ro.wikipedia.org/wiki/Barajul_BelciSearch in Google Scholar
Mark E, Baker P.E, (2019) Spencer Dam (Nebraska 2019). Lessons Learned from Dam incidents and Failures -Association of State Dam Safety officials. Accessed on: 30.08.2024. Avabile from: https://damfailures.org/case-study/spencer-dam-nebraska-2019/Search in Google Scholar
Benito G, Grodek T, Enzel Y, (1998). The geomorphic and hydrologic impacts of the catastrophic failure of flood control dams the 1996 Biescas flood (Central Pyrenees, Spain). Zeitschrift für Geomorphologie. Volume 42, Issue 4:417-437. https://doi.org/10.1127/zfg/42/1998/417Search in Google Scholar
Rose A, Mascarenhas L, Musa A, Zdanowicz C, (2024) At least 2 are dead from catastrophic Midwest flooding and a Minnesota dam is at risk of failing. CNN US Accessed on: 31.08.2024. Avabile from: https://edition.cnn.com/2024/06/24/us/rapidan-dam-collapse-risk-minnesota/index.htmlSearch in Google Scholar
Ingram E, (2024) Partial dam failure reported at 14 de Julho hydroelectric project in Brazil. Hydro Review Accessed on: 02.09.2024. Avabile from: https://www.hydroreview.com/dams-and-civil-structures/dam-safety/partial-dam-failure-reported-at-14-de-julho-hydroelectric-project-in-brazil/Search in Google Scholar
Pilotti M, Maranzoni A, Tomirotti M, Valerio G (2011) 1923 Gleno Dam Break: Case Study and Numerical Modeling Journal of Hydraulic Engineering, Volume 137, Issue 4: 480:492. https://doi.org/10.1061/(ASCE)HY.1943-7900.0000327Search in Google Scholar
Duffaut P, (2013) The traps behind the failure of Malpasset arch dam, France, in 1959. Journal of Rock Mechanics and Geotechnical Engineering Volume 5, Issue 5: 335-341. https://doi.org/10.1016/j.jrmge.2013.07.004Search in Google Scholar
Superchi L, Floris M, Ghirotti M, Genevois R, Jaboyedff M, Stead D, (2010) Technical Note: Implementation of a geodatabase of published and unpublished data on the catastrophic Vaiont landslide Natural Hazards and Earth System Sciences Volume 10: 865-873. www.nat-hazards-earth-syst-sci.net/10/865/2010/Search in Google Scholar
Aureli F, Maranzoni A, 1, Petaccia G, (2024) Advances in Dam-Break Modeling for Flood Hazard Mitigation: Theory, Numerical Models, and Applications in Hydraulic Engineering, Water volume 16, issue 8:1093. https://doi.org/10.3390/w16081093Search in Google Scholar
Flood Modeller by Jacob. Accessed on: 22.08.2024. Avabile from: https://www.floodmodeller.com/aboutSearch in Google Scholar
Doulgeris C, Georgiou P, Papadimos D, Papamichail D, (2012) Ecosystem approach to water resources management using the MIKE 11 modeling system in the Strymonas River and Lake Kerkini Journal of Environmental Management Volume 94, Issue 1: 132-143. https://doi.org/10.1016/j.jenvman.2011.06.023Search in Google Scholar
Garzon L.F.L, Johnson M.F, Mount N, Gomez H (2023) Exploring the effects of catchment morphometry on overland flow response to extreme rainfall using a 2D hydraulic-hydrological model (IBER) Journal of Hydrology Volume 627, Part A: 130405. https://doi.org/10.1016/j.jhydrol.2023.130405Search in Google Scholar
Giglou A.N, Nazari R, Jazaei F, Karimi M, (2023) Assessing the effects of increased impervious surface on the aquifer recharge through river flow network, case study of Jackson, Tennessee, USA Science of The Total Environment Volume 872:162203. https://doi.org/10.1016/j.scitotenv.2023.162203Search in Google Scholar
Ghany S.H. A. El, Saleh O.K, Osman M.A, (2019) Applying different abstraction pattern to achieve better water management Alexandria Engineering Journal Volume 58, Issue 1: 181-187. https://doi.org/10.1016/j.aej.2018.01.008Search in Google Scholar
Costabile P, Costanzo C, Ferraro D, Barca P, (2021) Is HEC-RAS 2D accurate enough for storm-event hazard assessment? Lessons learnt from a benchmarking study based on rain-on-grid modelling Journal of Hydrology Volume 603, Part B: 126962. https://doi.org/10.1016/j.jhydrol.2021.126962Search in Google Scholar
Bharath A, Shivapur A.V, Hiremath C.G, Maddamsetty R, (2021) Dam break analysis using HEC-RAS and HECGeoRAS: A case study of Hidkal dam, Karnataka state, India Environmental Challenges Volume 5: 100401. https://doi.org/10.1016/j.envc.2021.100401Search in Google Scholar
Jibhakate S.M, Timbadiya P.V, Patel P.L, (2024) Dam-break flood hazard and risk assessment of large dam for emergency preparedness: A study of Ukai Dam, India Journal of Hydrology Volume 640: 131659. https://doi.org/10.1016/j.jhydrol.2024.131659Search in Google Scholar
Liu J, Song T, Mei C, Wang H, Zhang D, Nazil S, (2024) Flood risk zoning of cascade reservoir dam break based on a 1D-2D coupled hydrodynamic model: A case study on the Jinsha-Yalong River Journal of Hydrology Volume 639: 131555. https://doi.org/10.1016/j.jhydrol.2024.131555Search in Google Scholar
Wang D, Zhou Y, Pie X, et. al. (2021) Dam-break dynamics at Huohua Lake following the 2017 Mw 6.5 Jiuzhaigou earthquake in Sichuan, China Engineering Geology volume 289: 105145. https://doi.org/10.1016/j.enggeo.2021.106145Search in Google Scholar
Gallegos H.A, Schubert J.E, Sanders B.F, (2009) Two-dimensional, high-resolution modeling of urban dam-break flooding: A case study of Baldwin Hills, California Advances in Water Resources Volume 32, Issue 8: 1323-1335. https://doi.org/10.1016/j.advwatres.2009.05.008Search in Google Scholar
Pîrvulețu M.E, Drăghia A.F, (2016) Dam failure effects on local/regional critical infrastructures Mathematical Modelling in Civil Engineering Volume 12, Issue 3:19-29. https://sciendo.com/article/10.1515/mmce-2016-0011Search in Google Scholar
Nistoran D. E. G, Popovici D. A. G, Savin B. A. C, Armaș I, (2016) GIS for Dam-Break Flooding. Study Area: Bicaz-Izvorul Muntelui (Romania) Space and Time Visualisation, Springer: 253-280. https://doi.org/10.1007/978-3-319-24942-1_15Search in Google Scholar
Albu L.M, Enea A, Stoleriu C. C, et. al. (2019) Evaluation of the propagation time of a theoretical flood wave in the case of the breaking of Catamarasti Dam, Botosani (Romania) Acta Geobalcanica Volume 5, Issue 1: 35-41. https://doi.org/10.18509/AGB.2019.05Search in Google Scholar
Sabău D, Șerban G, (2018) Arch dam failure preliminary analysis using HEC-RAS and HEC-GEO RAS modeling. Case study Someșul Rece 1 reservoir Geographical studies and environment protection research Volume 8, Issue 1: 44-55. http://dx.doi.org/10.5775/fg.2018.058.iSearch in Google Scholar
Albu L.M, Enea A, Iosub M, Breadăn I.G, (2020) Dam Breach Size Comparison for Flood Simulations. A HECRAS Based, GIS Approach for Drăcșani Lake, Sitna River, Romania Water Volume 12, Issue 4: 1090. https://doi.org/10.3390/w12041090Search in Google Scholar
Nistoran D. E. G, Ionescu C. S, Simionescu Ș. M, (2024) Assessing the impact of an arch-dam breach magnitude and reservoir inflowonflood maps Journal of Hydroinformatics Volume 26, Issue 1, 33-50. https://doi.org/10.2166/hydro.2023.301Search in Google Scholar
Anar, Ingha (2023) Flood risk management plan A.B.A Crișuri - Cycle II of the implementation of the Flood Directive 2007/60/CE; In Romanian: Planul de management al riscului la inundații A.B.A Crișuri - Ciclul II de implementare a Directtivei Inundații 2007/60/CE, Accessed on: 13.09.2024. Avabile from: https://inundatii.ro/wp-content/uploads/2023/09/PMRI_Ciclul-II_ABA-Crisuri.pdfSearch in Google Scholar
Anar, Ingha (2015) Flood risk management plan - Crișuri Water Basin administration - Cycle I; In Romanian: Planul de management al riscului la inundații - administtrația Bazinală de apă Crișuri - Ciclul I, Accessed on: 13.09.2024. Avabile from: https://rowater.ro/wp-content/uploads/2023/09/2-PMRI-Crisuri.pdfSearch in Google Scholar
National Register of Dams in Romania REBAR, In Romanian: Registrului Naţional al Barajelor din România REBAR, Publication date: 25.05.2023, Accessed on: 18.09.2024. Avabile from: https://www.mmediu.ro/articol/registrului-national-al-barajelor-din-romania-rebar/6229Search in Google Scholar
US Army Corps of Engineers Hydrologic Engineering Center, Accessed on: 18.09.2024. Avabile from: https://www.hec.usace.army.mil/software/hec-ras/Search in Google Scholar
US Army Corps of Engineers Hydrologic Engineering Center, HEC-RAS User’s Manual, Publication date: March 2024, Accessed on: 18.09.2024. Avabile from: https://www.hec.usace.army.mil/software/hecras/documentation/HEC-RAS_Users_Manual_v6.5.pdfSearch in Google Scholar
US Army Corps of Engineers Hydrologic Engineering Center, HEC-RAS Hydraulic Reference Manual, Publication date: March 2024, Accessed on: 18.09.2024. Avabile from: https://www.hec.usace.army.mil/software/hec-ras/documentation/HECRAS_Hydraulic_Reference_Manual_v6.5.pdfSearch in Google Scholar
Chow Ven Te (1959), Open-Channel Hydraulics - International Student Edition - McGraw-Hill Book Company, INC - New York, St. Louis, San Fransisco, Dusseldorf, London, Mexico, Panama, Sydney, Toronto - Kogakusha Company, LDT. Tokyo.Search in Google Scholar
Copernicus - Land Monitoring Service, Accessed on: 19.09.2024. Avabile from: https://land.copernicus.eu/en/products/corine-land-coverSearch in Google Scholar
Normative on “Analysis and assessment of the risk associated with dams, indicative NP 132-2011”, In Romanian: Normativ privind „Analiza și evaluarea riscului asociat barajelor, indicativ NP 132-2011” Avabile from: https://www.mdlpa.ro/userfiles/reglementari/Domeniul_XIX/19_17_NP_132_2011.pdfSearch in Google Scholar
Nina P. (2023) Smart Cartography: representing complex geographical reality of 21st century, International Journal of Cartography, 9:3, 619-637, https://doi.org/10.1080/23729333.2023.2235498Search in Google Scholar
RO-Floods - Romania, Accessed on: 20.09.2024. Avabile from: https://inundatii.ro/en/ro-floods-2/Search in Google Scholar
Peng J, Zhang J, Sayama T, (2024) Assessment of loss of life owing to dam-failure flooding considering population distribution and evacuation, International Journal of Disaster Risk Reduction, Volume 112: 104737, https://doi.org/10.1016/j.ijdrr.2024.104737Search in Google Scholar
Wei G, Yutie J, Meimei W, et al. (2022) Estimating loss of life caused by dam breaches based on the simulation of floods routing and evacuation potential of population at risk, Journal of Hydrology, Volume 612, Part A, 0022-1694, https://doi.org/10.1016/j.jhydrol.2022.128059Search in Google Scholar
Cann L.F, Thomas Rh, Salmon R.L, et al (2013) “Extreme water-related weather events and waterborne disease, Epidemiology and Infection, vol. 141, no. 4, pp. 671–686, https://doi.org/10.1017/S0950268812001653Search in Google Scholar
Talbot, C. J., Bennett, E. M., Cassell, K et al. (2018). The impact of flooding on aquatic ecosystem services. Biogeochemistry, 141(3), 439-461. https://doi.org/10.1007/s10533-018-0449-7Search in Google Scholar
Shafii, N. Z., Saudi, A. S. M., Pang, J. C et al. (2023). Association of flood risk patterns with waterborne bacterial diseases in Malaysia. Water, 15(11), 2121. https://doi.org/10.3390/w15112121Search in Google Scholar
Onuoha, D. C., Uka, C., (2024) Mental Health Implications of Flooding in Nigeria and Its Effects on Farmers Health and Wellbeing, International Journal of Agriculture and Earth Science, Vol 10. No. 5: 2695-1894, 52-66, https://www.iiardjournals.org/get/IJAES/VOL.%2010%20NO.%205%202024/MENTAL%20HEALTH%20IMPLICATIONS%2052-66.pdfSearch in Google Scholar