The Study of Water Hammer Protection for Water Pipelines Containing Reversed Siphon Pipes With Special Large-Scale Dimensions

IF 1.2 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Geofluids Pub Date : 2025-07-28 DOI:10.1155/gfl/1930735
Hui Wang, Weibing Du, Xin Li, Xiaolei Zhang, Shuyu Liu, Yading Chen, Xiaoyi Guo
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引用次数: 0

Abstract

The study focuses on a key component of the Yangtze–Huaihe River Diversion Project—the Qiliqiao to Xincheng water supply pipeline section, which includes a megascale inverted siphon structure. A one-dimensional mathematical model is developed to simulate water hammer phenomena in transmission pipelines containing the large siphon. A comparative analysis is conducted to evaluate the protective effects of linear and nonlinear valve closure strategies. The optimal valve closure scheme is explored by parameterizing the valve closing duration and buffering time. The impact of air valves installed near the inverted siphon during hydraulic transition processes is examined, and the transient variations of key hydraulic parameters during the entire valve closure operation are systematically characterized. Under long-term operational conditions with Manning’s coefficient degradation, the designed pipeline maintains a hydraulic head surplus of 7.34 m, fully meeting long-distance water supply requirements. Air valves effectively reduce the peak pressure magnitude by 80%. Under linear valve closure conditions, only the high-elevation air valves exhibit significant exhaust behavior. In contrast, nonlinear closure strategies reduce the minimum internal pressure of the pipeline and suppress vaporization, thereby reducing the air valve discharge volume. Finally, the study identifies an optimal time coordination scheme by adjusting the closure timing of individual pumps and the interval between adjacent pump shutdowns.

Abstract Image

含特殊大尺寸反向虹吸管道水锤防护研究
本研究以长江淮河引水工程的关键组成部分——七里桥至新城供水管道段为研究对象,该管道段包含大型倒虹吸结构。建立了含大型虹吸管输送管道水锤现象的一维数学模型。对比分析了线性和非线性阀门关闭策略的保护效果。通过参数化阀门关闭时间和缓冲时间,探索最优阀门关闭方案。研究了安装在倒虹吸管附近的空气阀在水力过渡过程中的影响,系统地描述了整个阀门关闭过程中关键水力参数的瞬态变化。在曼宁系数下降的长期运行条件下,设计管道水头余量保持7.34 m,完全满足长距离供水要求。空气阀可有效降低80%的峰值压力。在线性阀门关闭条件下,只有高海拔空气阀表现出显著的排气行为。相反,非线性关闭策略降低了管道的最小内压,抑制了汽化,从而减少了空气阀的排出量。最后,通过调整单个泵的关闭时间和相邻泵的关闭间隔,确定了最优的时间协调方案。
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来源期刊
Geofluids
Geofluids 地学-地球化学与地球物理
CiteScore
2.80
自引率
17.60%
发文量
835
期刊介绍: Geofluids is a peer-reviewed, Open Access journal that provides a forum for original research and reviews relating to the role of fluids in mineralogical, chemical, and structural evolution of the Earth’s crust. Its explicit aim is to disseminate ideas across the range of sub-disciplines in which Geofluids research is carried out. To this end, authors are encouraged to stress the transdisciplinary relevance and international ramifications of their research. Authors are also encouraged to make their work as accessible as possible to readers from other sub-disciplines. Geofluids emphasizes chemical, microbial, and physical aspects of subsurface fluids throughout the Earth’s crust. Geofluids spans studies of groundwater, terrestrial or submarine geothermal fluids, basinal brines, petroleum, metamorphic waters or magmatic fluids.
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