The steady-transient optimization of water transmission pipelines with consideration of water-hammer control devices: a case study

被引:8
作者
Moghaddas, S. Mahmood Jazayeri [1 ]
机构
[1] Islamic Azad Univ, Dept Civil Engn, Shoushtar Branch, Shoushtar, Iran
来源
JOURNAL OF WATER SUPPLY RESEARCH AND TECHNOLOGY-AQUA | 2018年 / 67卷 / 06期
关键词
optimization; self-adaptive GA; water-hammer; water-hammer control devices; water transmission pipelines; PROTECTION; DESIGN; PSO; GA;
D O I
10.2166/aqua.2018.018
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Pump power failure in pipelines is one of the most important factors causing water-hammer, which leads to sharp fluctuations in velocity and pressure. To prevent the destructive effects of this phenomenon, the use of pipe of appropriate compressive capacity and protective devices such as air-chambers and control valves is required. In a transmission system, increased diameter and decreased thickness of pipe leads to decreased flow velocity and compressive wave speed and reduction of water-hammer impact. Thus, although the increase of diameter leads to increased cost of pipe and decrease of thickness lowers its compressive strength, the resulting reduced fluctuation of water-hammer could minimize the cost by lowering the required pipeline class and decreasing the size and number of protective devices. In this paper, an optimization model has been presented for selection of the best diameter, thickness and pipe material and selection of positions and proper type of water-hammer controlling devices where a combined flowchart includes an optimization algorithm and flow analysis at steady and transient states. A self-adaptive real genetic algorithm has been used for this optimization, and its capability in cost reduction of pipelines has been approved in a case study.
引用
收藏
页码:556 / 565
页数:10
相关论文
共 14 条
[1]  
[Anonymous], 2004, Wiley InterScience electronic collection.
[2]  
BongSeog Jung, 2013, World Environmental and Water Resources Congress 2013. Showcasing the Future. Proceedings of the 2013 Congress, P903
[3]  
Brunone B., 1991, P INT M HYDR TRANS C, P140
[4]  
Chaudhry M.H., 2014, Applied Hydraulic Transients, V3rd
[5]  
Jung B. S, 2009, WORLD ENV WAT RES C, P5698
[6]   Fluid transients and pipeline optimization using GA and PSO: the diameter connection [J].
Jung, Bong Seog ;
Karney, Bryan W. .
URBAN WATER JOURNAL, 2004, 1 (02) :167-176
[7]  
Jung BS, 2011, J AM WATER WORKS ASS, V103, P118
[8]   Hydraulic optimization of transient protection devices using GA and PSO approaches [J].
Jung, BS ;
Karney, BW .
JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT, 2006, 132 (01) :44-52
[9]  
Lingireddy S., 2000, P ASCE 2000 JOINT C
[10]   Multi-objective optimization of transient protection for pipelines with regard to cost and serviceability [J].
Moghaddas, S. Mahmood Jazayeri ;
Samani, Hossein M. V. ;
Haghighi, Ali .
JOURNAL OF WATER SUPPLY RESEARCH AND TECHNOLOGY-AQUA, 2017, 66 (05) :340-352