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Influence Mechanism of Geometric Characteristics of Water Conveyance System on Extreme Water Hammer during Load Rejection in Pumped Storage Plants

机译:泵送贮藏厂负荷抑制过程中水输送系统几何特性的影响机理

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摘要

Pumped storage plants (PSPs) have achieved rapid development and deployment worldwide since the penetration of intermittent renewable energy sources (RES). Hydraulic transient analysis in the PSP, to obtain the control parameters such as extreme water hammer pressure, is vital to the safe design of water conveyance system. Empirically, simultaneous load rejection (SLR) is commonly accepted as the control condition for extreme water hammer, while it is not completely true for the PSP. Employing theoretical analysis and numerical simulation, this study systematically investigates the effects of geometric characteristics on the extreme water hammer, and reveals the mechanism leading to the maximum spiral case pressure (SCP) during a two-stage load rejection (TLR) process. The results indicate that the extreme water hammer pressure is closely related to geometric characteristics of the water conveyance system, performing the allocation of the water inertia time constant of the main and branch pipelines. When the water inertia time constant in the branch pipe is dominant (η1 > 0.24 for example), the maximum SCP will occur in TLR conditions rather than SLR. Moreover, the maximum SCP is almost the same, providing the water inertia time constants of both the main and branch pipelines are kept constant.
机译:自渗透间歇性可再生能源(RES)的渗透以来,泵送储存工厂(PSP)已达到全球快速开发和部署。 PSP中的液压瞬态分析,以获得极端水锤压等控制参数,对水输送系统的安全设计至关重要。经验上,同时负载抑制(SLR)通常被接受为极端水锤的控制条件,而PSP并不完全正确。采用理论分析和数值模拟,本研究系统地研究了几何特性对极水锤上的几何特性的影响,并揭示了在两级负载排斥(TLR)过程中的最大螺旋壳压力(SCP)的机构。结果表明,极端水锤压力与水输送系统的几何特性密切相关,执行主要和分支管道的水惯性时间常数的分配。当分支管中的水惯性时间常数是主导的(例如,例如η1> 0.24)时,最大SCP将在TLR条件而不是SLR中发生。此外,最大SCP几乎相同,提供主和分支管道的水惯性时间常数保持恒定。

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