Incorporating Uncertainty and Failure Probability in the Design of Urban Stormwater Channels for Resilient Cities

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Publicado en:Water vol. 17, no. 13 (2025), p. 1918-1939
Autor principal: Anaya-Pallares Stefany
Otros Autores: Avila-Rangel, Humberto, Coronado-Hernández, Oscar E, Sisa-Camargo, Augusto H, Pérez-Sánchez Modesto
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MDPI AG
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Acceso en línea:Citation/Abstract
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024 7 |a 10.3390/w17131918  |2 doi 
035 |a 3229159738 
045 2 |b d20250101  |b d20251231 
084 |a 231641  |2 nlm 
100 1 |a Anaya-Pallares Stefany  |u Gerencia Técnica, HYCEN S.A.S., Barranquilla 081007, Colombia; hycengroup@outlook.com 
245 1 |a Incorporating Uncertainty and Failure Probability in the Design of Urban Stormwater Channels for Resilient Cities 
260 |b MDPI AG  |c 2025 
513 |a Journal Article 
520 3 |a The conventional practice in the design of storm drainage systems is based on statistically stationary load and resistance conditions that remain invariant over time. However, uncertainties in the variables affect the design accuracy and the satisfactory performance of these hydrosystems during their operation and service. To overcome this limitation, a design methodology for a storm drainage channel was proposed using a probabilistic framework that incorporates uncertainty analysis of random variables and estimates the system’s probability of failure in terms of design depth and maximum allowable velocity. This methodology employs the Monte Carlo simulation technique and offers an alternative design and analysis approach to strengthen the conventional sizing method for drainage channels in urban watersheds. Based on uncertainty criteria associated with hydraulic design, operation, and prospective changes in the watershed and the channel, appropriate dimensions were estimated regarding design depth and freeboard. The results of this study demonstrate that the annual probability of failure of a channel, when considering uncertainty, is significantly higher than the yearly exceedance probability associated with the hydrological design return period event. Therefore, the proposed methodology is appropriate for estimating the system’s capacity and potential failure risk. This methodology may also be applied to sizing other stormwater drainage structures. 
651 4 |a Colombia 
653 |a Load 
653 |a Monte Carlo simulation 
653 |a Precipitation 
653 |a Failure 
653 |a Infrastructure 
653 |a Floods 
653 |a Stormwater management 
653 |a Drainage 
653 |a Watersheds 
653 |a Variables 
653 |a Design 
653 |a Measurement techniques 
653 |a Hydrology 
653 |a Land use 
653 |a Hydraulics 
653 |a Rain 
700 1 |a Avila-Rangel, Humberto  |u Department of Civil and Environmental Engineering, Universidad Del Norte, Barranquilla 081007, Colombia; asisa@uninorte.edu.co 
700 1 |a Coronado-Hernández, Oscar E  |u Instituto de Hidráulica y Saneamiento Ambiental, Universidad de Cartagena, Cartagena 130001, Colombia; ocoronadoh@unicartagena.edu.co 
700 1 |a Sisa-Camargo, Augusto H  |u Department of Civil and Environmental Engineering, Universidad Del Norte, Barranquilla 081007, Colombia; asisa@uninorte.edu.co 
700 1 |a Pérez-Sánchez Modesto  |u Departamento de Ingeniería Hidráulica y Medio Ambiente, Universitat Politècnica de València, 46022 Valencia, Spain 
773 0 |t Water  |g vol. 17, no. 13 (2025), p. 1918-1939 
786 0 |d ProQuest  |t Publicly Available Content Database 
856 4 1 |3 Citation/Abstract  |u https://www.proquest.com/docview/3229159738/abstract/embedded/7BTGNMKEMPT1V9Z2?source=fedsrch 
856 4 0 |3 Full Text + Graphics  |u https://www.proquest.com/docview/3229159738/fulltextwithgraphics/embedded/7BTGNMKEMPT1V9Z2?source=fedsrch 
856 4 0 |3 Full Text - PDF  |u https://www.proquest.com/docview/3229159738/fulltextPDF/embedded/7BTGNMKEMPT1V9Z2?source=fedsrch