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Effects of sediment deposit on the hydraulic performance of the urban stormwater drainage system
Author(s) -
Chau Nguyen Xuan Quang,
Ngo Ngoc Hoang Giang,
H V Hoa,
Phan Quang Hung
Publication year - 2022
Publication title -
iop conference series. earth and environmental science
Language(s) - English
Resource type - Journals
eISSN - 1755-1307
pISSN - 1755-1315
DOI - 10.1088/1755-1315/964/1/012020
Subject(s) - electrical conduit , sediment , drainage , hydrology (agriculture) , geology , stormwater , flow (mathematics) , drainage system (geomorphology) , structural basin , geotechnical engineering , environmental science , drainage network , surface runoff , geomorphology , engineering , mechanical engineering , ecology , geometry , mathematics , biology
Sediment deposit is a critical factor strongly affecting the drainage capacity of the conduits due to its cross-section area narrowing and roughness increasing. In this study, a numerical model was applied to investigate the influences of sediment deposit on the hydraulic performance of the drainage conduits. The Nhieu Loc - Thi Nghe (NL-TN) basin, located in Ho Chi Minh City, Vietnam, was selected as a case study. The drainage network of the NL-TN basin was simulated by using the EPA-SWMM model. The effects of sediment deposit were assessed by a non-dimensional comparison of the simulated peak flows of the sediment-deposited conduits and the clean ones. The results indicated that the sediment deposit significantly affects the flow capacity of the conduits and could cause severe inundation. Narrowing of the cross-section area has more impact on the hydraulic performance of the conduit than the increase in the roughness. A 40% increase in the Manning coefficient could decline the peak flow to approximately 80-90%, while a 40% increase in sediment thickness depth could degrade the peak flow by about 60-70% to compare with the peak flow of the clean conduit. The findings could support decision makings on the operation and maintenance of the sewer system and adaptation to extreme rainfall events.

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