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Erschienen in: Water Resources Management 7/2015

01.05.2015

Multi-Objective Optimal Design of Detention Tanks in the Urban Stormwater Drainage System: Framework Development and Case Study

verfasst von: Fei Li, Huan-Feng Duan, Hexiang Yan, Tao Tao

Erschienen in: Water Resources Management | Ausgabe 7/2015

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Abstract

Detention tank plays an important role in the flooding control in the downstream areas of the urban stormwater drainage system (USDS) during the wet weather seasons. For complex watersheds with specific local flooding control policies, the conventional optimization and design methods are found to be not sufficient for effectively and optimally locating and sizing appropriate detention tanks any more. This paper investigates the optimal design of detention tanks under the constraints of local flooding control criteria, with the aim to develop an efficient and robust method and framework for the design of detention tank network. Coupled with the SWMM-based hydraulic simulation, a modified particle swarm optimizer is adopted to find out non-dominated solutions to minimize both the engineering cost and flooding risks by taking the local design criteria into consideration for the more realistic local engineering application. To validate the proposed method, a real-life case in SA city in China is taken for example to obtain optimal layout and sizes of the detention tank network under different construction factors and design conditions. Different rainfall return periods are also tested to guarantee the robustness of the optimal solutions. The results of this study confirm the feasibility and validity of the proposed methodological framework for multi-objective optimal design of detention tanks in the USDS.

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Literatur
Zurück zum Zitat Balistrocchi M, Grossi G, Bacchi B (2013) Deriving a practical analytical-probabilistic method to size flood routing reservoirs. Adv Water Resour 62:37–46CrossRef Balistrocchi M, Grossi G, Bacchi B (2013) Deriving a practical analytical-probabilistic method to size flood routing reservoirs. Adv Water Resour 62:37–46CrossRef
Zurück zum Zitat Bennett MS, Mays LW (1985) Optimal design of detention and drainage channel systems. J Water Resour Plann Manage 111(1):99–112CrossRef Bennett MS, Mays LW (1985) Optimal design of detention and drainage channel systems. J Water Resour Plann Manage 111(1):99–112CrossRef
Zurück zum Zitat CDOWE (Code for Design of Outdoor Wastewater Engineering) (2014) The People’s Republic of China Ministry of Housing and Urban Rural Development: 12–28 CDOWE (Code for Design of Outdoor Wastewater Engineering) (2014) The People’s Republic of China Ministry of Housing and Urban Rural Development: 12–28
Zurück zum Zitat Chang CH, Wen CG, Lee CS (2008) Use of intercepted runoff depth for stormwater runoff management in industrial parks in Taiwan. Water Resour Manag 22(11):1609–1623CrossRef Chang CH, Wen CG, Lee CS (2008) Use of intercepted runoff depth for stormwater runoff management in industrial parks in Taiwan. Water Resour Manag 22(11):1609–1623CrossRef
Zurück zum Zitat Deb K, Agrawal S, Pratap A, Meyarivan T (2000) A fast elitist non-dominated sorting genetic algorithm for multi-objective optimization: NSGA-II. Lect Notes Comput Sci 1917:849–858CrossRef Deb K, Agrawal S, Pratap A, Meyarivan T (2000) A fast elitist non-dominated sorting genetic algorithm for multi-objective optimization: NSGA-II. Lect Notes Comput Sci 1917:849–858CrossRef
Zurück zum Zitat Guo Y (2001) Hydrologic design of urban flood control detention ponds. J Hydrol Eng 6(6):472–479CrossRef Guo Y (2001) Hydrologic design of urban flood control detention ponds. J Hydrol Eng 6(6):472–479CrossRef
Zurück zum Zitat Guo Y, Adams BJ (1999) An analytical probabilistic approach to sizing flood control detention facilities. Water Resour Res 35(8):2457–2468CrossRef Guo Y, Adams BJ (1999) An analytical probabilistic approach to sizing flood control detention facilities. Water Resour Res 35(8):2457–2468CrossRef
Zurück zum Zitat Kamedulski GE, McCuen RH (1979) Evaluation of alternatives stormwater detention policies. J Water Resour Plann Manage, ASCE 105(WR2):171–186 Kamedulski GE, McCuen RH (1979) Evaluation of alternatives stormwater detention policies. J Water Resour Plann Manage, ASCE 105(WR2):171–186
Zurück zum Zitat Kennedy J, Eberhart R (1995) Particle swarm optimization. IEEE: 1942–1948 Kennedy J, Eberhart R (1995) Particle swarm optimization. IEEE: 1942–1948
Zurück zum Zitat Li X (2003) A non-dominated sorting particle swarm optimizer for multiobjective optimization. In Genetic and Evolutionary Computation-GECCO 2003:37–48, Springer Berlin Heidelberg Li X (2003) A non-dominated sorting particle swarm optimizer for multiobjective optimization. In Genetic and Evolutionary Computation-GECCO 2003:37–48, Springer Berlin Heidelberg
Zurück zum Zitat Mays LW, Bedient PB (1982) Model for optimal size and location of detention. J Water Resour Plann Manage 108(3):270–285 Mays LW, Bedient PB (1982) Model for optimal size and location of detention. J Water Resour Plann Manage 108(3):270–285
Zurück zum Zitat Oxley RL, Mays LW (2014) Optimization–simulation model for detention basin system design. Water Resour Manag 28(4):1157–1171CrossRef Oxley RL, Mays LW (2014) Optimization–simulation model for detention basin system design. Water Resour Manag 28(4):1157–1171CrossRef
Zurück zum Zitat Ramos HM, Teyssier C, López-Jiménez PA (2013) Optimization of retention ponds to improve the drainage system elasticity for water-energy nexus. Water Resour Manag 27(8):2889–2901CrossRef Ramos HM, Teyssier C, López-Jiménez PA (2013) Optimization of retention ponds to improve the drainage system elasticity for water-energy nexus. Water Resour Manag 27(8):2889–2901CrossRef
Zurück zum Zitat Rossman LA (2010) Stormwatrer management model user’s manual, version 5.0: water supply and water resources division. National Risk Management Research Laboratory, U.S. Environmental Protection Agency, Cincinnati Rossman LA (2010) Stormwatrer management model user’s manual, version 5.0: water supply and water resources division. National Risk Management Research Laboratory, U.S. Environmental Protection Agency, Cincinnati
Zurück zum Zitat Rossman LA, Supply W (2006) Storm water management model, quality assurance report: dynamic wave flow routing. US Environmental Protection Agency, Office of Research and Development, National Research Management Research Laboratory Rossman LA, Supply W (2006) Storm water management model, quality assurance report: dynamic wave flow routing. US Environmental Protection Agency, Office of Research and Development, National Research Management Research Laboratory
Zurück zum Zitat Sample DJ, Heaney JP, Wright LT, Fan C-Y, Lai F-H, Field R (2003) Costs of best management practices and associated land for urban stormwater control. J Water Resour Plann Manage 129(1):59–68CrossRef Sample DJ, Heaney JP, Wright LT, Fan C-Y, Lai F-H, Field R (2003) Costs of best management practices and associated land for urban stormwater control. J Water Resour Plann Manage 129(1):59–68CrossRef
Zurück zum Zitat Shi Y, Eberhart RC (2001) Fuzzy adaptive particle swarm optimization. IEEE: 101–106 Shi Y, Eberhart RC (2001) Fuzzy adaptive particle swarm optimization. IEEE: 101–106
Zurück zum Zitat Sun F, Yang Z, Huang Z (2014) Challenges and solutions of urban hydrology in Beijing. Water Resour Manag 28(11):3377–3389CrossRef Sun F, Yang Z, Huang Z (2014) Challenges and solutions of urban hydrology in Beijing. Water Resour Manag 28(11):3377–3389CrossRef
Zurück zum Zitat Tao T, Wang J, Xin K, Li S (2013) Multi-objective optimal layout of distributed storm-water detention. Int J Environ Sci Technol: 1–8 Tao T, Wang J, Xin K, Li S (2013) Multi-objective optimal layout of distributed storm-water detention. Int J Environ Sci Technol: 1–8
Zurück zum Zitat Travis QB, Mays LW (2008) Optimizing retention basin networks. J Water Resour Plann Manage 134(5):432–439CrossRef Travis QB, Mays LW (2008) Optimizing retention basin networks. J Water Resour Plann Manage 134(5):432–439CrossRef
Zurück zum Zitat Tung YK (1988) Multi-objective detention basin design in urban drainage systems–tradeoff between risk and cost. Water Resour Manag 2(1):57–62CrossRef Tung YK (1988) Multi-objective detention basin design in urban drainage systems–tradeoff between risk and cost. Water Resour Manag 2(1):57–62CrossRef
Zurück zum Zitat Weiss JD, Hondzo M, Semmens M (2006) Storm water detention ponds: modeling heavy metal removal by plant species and sediments. ASCE J Environ Eng 132(9):1034–1042CrossRef Weiss JD, Hondzo M, Semmens M (2006) Storm water detention ponds: modeling heavy metal removal by plant species and sediments. ASCE J Environ Eng 132(9):1034–1042CrossRef
Zurück zum Zitat Xu YP, Tung YK (2008) Decision-making in water management under uncertainty. Water Resour Manag 22(5):535–550CrossRef Xu YP, Tung YK (2008) Decision-making in water management under uncertainty. Water Resour Manag 22(5):535–550CrossRef
Zurück zum Zitat Yeh CH, Labadie JW (1997) Multiobjective watershed-level planning of storm water detention systems. J Water Resour Plann Manage 123(6):336–343CrossRef Yeh CH, Labadie JW (1997) Multiobjective watershed-level planning of storm water detention systems. J Water Resour Plann Manage 123(6):336–343CrossRef
Zurück zum Zitat Zhang X, Hu M (2014) Effectiveness of Rainwater Harvesting in Runoff Volume Reduction in a Planned Industrial Park, China. Water Resour Manag 28(3):671–682CrossRef Zhang X, Hu M (2014) Effectiveness of Rainwater Harvesting in Runoff Volume Reduction in a Planned Industrial Park, China. Water Resour Manag 28(3):671–682CrossRef
Metadaten
Titel
Multi-Objective Optimal Design of Detention Tanks in the Urban Stormwater Drainage System: Framework Development and Case Study
verfasst von
Fei Li
Huan-Feng Duan
Hexiang Yan
Tao Tao
Publikationsdatum
01.05.2015
Verlag
Springer Netherlands
Erschienen in
Water Resources Management / Ausgabe 7/2015
Print ISSN: 0920-4741
Elektronische ISSN: 1573-1650
DOI
https://doi.org/10.1007/s11269-015-0931-0

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