raybet体育在线 院报 ›› 2025, Vol. 42 ›› Issue (6): 118-123.DOI: 10.11988/ckyyb.20240523

• 水力学 • 上一篇    下一篇

长距离重力流加压联合输水系统水锤防护数值模拟

黄伟(), 廖晨希, 黄鑫, 顾平(), 刘彬, 黄梓阳   

  1. 南昌大学 工程建设学院,南昌 330031
  • 收稿日期:2024-05-16 修回日期:2024-11-20 出版日期:2025-06-16 发布日期:2025-06-16
  • 通信作者:
    顾 平(1971-),女,江西高安人,副教授,博士,主要从事水工水力学相关研究。E-mail:
  • 作者简介:

    黄 伟(1990-),男,江西高安人,副教授,博士,主要从事水工水力学相关研究。E-mail:

  • 基金资助:
    国家重点研发计划项目(2023YFC3209404); 江西省研究生创新专项(YC2023-S205); 江西省赣鄱俊才支持计划资助项目(20243BCE51081); 江西省研究生创新专项(YC2022-s181); 江西省自然科学基金项目(20232BAB204093)

Numerical Simulation and Optimization of Water Hammer Protection Schemes for Long-Distance Gravity-Pressurized Water Conveyance Systems

HUANG Wei(), LIAO Chen-xi, HUANG Xin, GU Ping(), LIU Bin, HUANG Zi-yang   

  1. School of Infrastructure Engineering, Nanchang University, Nanchang 330031, China
  • Received:2024-05-16 Revised:2024-11-20 Published:2025-06-16 Online:2025-06-16

摘要:

长距离重力流输水系统在大流量输水期间需开启首部泵站加压供水,形成重力流加压联合输水,如遇事故停泵极易引起管线内水柱分离,产生弥合水锤威胁工程安全。采用特征线法对空气阀、空气阀+末端阀联合、空气阀+末端阀+溢流管联合、空气阀+空气阀调压室联合4种水锤防护方案开展水锤数值模拟。结果表明:对长距离重力流加压联合输水系统,利用末端阀关闭形成增压波无法有效改善管内负压效果,还可能带来管内最大压力超标问题;利用调压管和空气阀组合的空气阀调压室兼顾了补水和补气功能,与空气阀联合防护对于管内正、负压均有良好的防护效果,可作为长距离重力流加压输水系统的首选防护手段。

关键词: 重力流, 停泵水锤, 水柱分离, 空气阀, 空气阀调压室

Abstract:

[Objective] When the water level difference between the upstream and downstream of a long-distance gravitational water conveyance system is small, gravity flow alone cannot ensure the required design flow rate. In such cases, the intake pumping station must be activated during high-flow conveyance periods to provide pressurized supply, forming a combined gravity and pressurized flow system. The hydraulic characteristics of such systems are more complex than those of pure gravity-driven systems. Accidental pump shutdowns can easily induce water column separation in the pipeline, leading to water hammer upon rejoining that poses a significant threat to project safety. [Methods] To address this issue, this study employed the method of characteristic curve to conduct one-dimensional numerical simulations of transient hydraulic processes for four water hammer protection schemes: (1) air valve, (2) air valve + terminal valve, (3) air valve + terminal valve + overflow pipe, and (4) air valve + air valve surge chamber. [Results] In long-distance gravity-pressurized water conveyance systems where the upstream elevation was higher than that of the downstream, accidental pump shutdowns without any protective measures would generate decompression waves that caused extreme negative pressure and water column separation inside the pipeline. The subsequent compression wave reflected from the downstream outlet reservoir would cause the separated water column to rejoin, potentially resulting in pipe rupture. Therefore, effective protective measures must be adopted to eliminate extreme negative pressure in the pipeline. When using an air valve alone for water hammer protection, the minimum pressure within the pipeline was effectively increased, but the range of protection was limited. In the air valve + terminal valve scheme, the compression wave generated by the closure of the terminal valve failed to effectively mitigate the negative pressure and may even result in excessive maximum pressure due to poor closure regulation of the terminal valve. Adding an overflow pipe to this combined scheme effectively reduced the maximum pressure in the pipeline. However, since the overflow pipe reflected part of the compression wave generated by the terminal valve closure, it had an adverse effect on negative pressure protection. [Conclusions] The air valve surge chamber, combining a surge pipe and an air valve with both water and air compensation functions, is used in combination with an air valve to form a protection scheme that effectively controls both positive and negative pressures in the pipeline. This solution achieves balance between engineering safety and cost-efficiency, making it the preferred protective measure for long-distance gravity-pressurized water conveyance systems.

Key words: gravity flow, pump shutdown water hammer, water column separation, air valve, air valve surge chamber

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