Pump-stoppage-induced water hammer in a long-distance pipe: a case from the Yellow River in China

Author:

Zhang Yipeng1,Liu Meiqing1,Liu Zhiyong1,Wu Yuanwei1,Mei Jie1,Lin Peng1,Xue Fei1

Affiliation:

1. Hubei Key Laboratory of Accoutrement Technique in Fluid Machinery and Power Engineering, School of Power and Mechanical Engineering, Wuhan University, No. 299, Ba Yi Rd, Wu Chang District, Wuhan City 430072, Hubei Province, China

Abstract

Abstract Pump stoppage can instantaneously increase the pressure within a pipeline, which is an extreme condition and poses a severe threat to the safety of long-distance water transmission projects. Reducing positive and negative pressures is essential to reducing this risk, improving operational efficiency, and avoiding system component fatigue. This study investigated the performance of a combination of dimensionless pump parameters and pipeline pressure in providing detailed information for designing protective equipment to mitigate water hammer effects, which are generated by sudden pump stoppage. The conditions of the method of characteristics were satisfied by conducting an overall transient flow analysis to estimate the potential of the increased pressure relevant to all types of operating schemes. Extreme pressure waves, produced by pump failure or rapid valve closure, can be prevented using efficient protective designs. The findings of this study can be instructive to alleviating the potential damage engendered by water hammer.

Publisher

IWA Publishing

Subject

Water Science and Technology

Reference10 articles.

1. Cavitation characteristics of shutoff valves in numerical modeling of transients in pipelines with column separation;Journal of Hydraulic Engineering,2014

2. Pipeline column separation flow regimes;Journal of Hydraulic Engineering,1999

3. Water hammer and column separation due to accidental simultaneous closure of control valves in a large scale two-phase flow experimental test rig,2010

4. Practical formulas for the dimensioning of air valves;Journal of Hydraulic Engineering,2007

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