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Pumped storage system model and experimental investigations on S-induced issues during transients

机译:抽水蓄能系统模型和暂态过程中S引起的问题的实验研究

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摘要

Because of the important role of pumped storage stations in the peak regulation and frequency control of a power grid, pump turbines must rapidly switch between different operating modes, such as fast startup and load rejection. However, pump turbines go through the unstable S region in these transition processes, threatening the security and stability of the pumped storage station. This issue has mainly been investigated through numerical simulations, while field experiments generally involve high risks and are difficult to perform. Therefore, in this work, the model test method was employed to study S-induced security and stability issues for a pumped storage station in transition processes. First, a pumped storage system model was set up, including the piping system, model units, electrical control systems and measurement system. In this model, two pump turbines with different S-shaped characteristics were installed to determine the influence of S-shaped characteristics on transition processes. The model platform can be applied to simulate any hydraulic transition process that occurs in real power stations, such as load rejection, startup, and grid connection. On the experimental platform, the S-shaped characteristic curves were measured to be the basis of other experiments. Runaway experiments were performed to verify the impact of the S-shaped characteristics on the pump turbine runaway stability. Full load rejection tests were performed to validate the effect of the S-shaped characteristics on the water-hammer pressure. The condition of one pump turbine rejecting its load after another defined as one-after-another (OAA) load rejection was performed to validate the possibility of S-induced extreme draft tube pressure. Load rejection experiments with different guide vane closing schemes were performed to determine a suitable scheme to adapt the S-shaped characteristics. Through these experiments, the threats existing in the station were verified, the appropriate measures were summarized, and an important experimental basis for the safe and stable operation of a pumped storage station was provided.
机译:由于抽水蓄能电站在电网的峰值调节和频率控制中的重要作用,因此水轮机必须在不同的运行模式之间快速切换,例如快速启动和甩负荷。但是,在这些过渡过程中,水轮机经过不稳定的S区域,从而威胁到抽水蓄能电站的安全性和稳定性。这个问题主要是通过数值模拟来研究的,而现场实验通常具有很高的风险并且难以执行。因此,在这项工作中,采用模型测试方法来研究过渡过程中抽水蓄能站的S诱导安全性和稳定性问题。首先,建立抽水蓄能系统模型,包括管道系统,模型单元,电气控制系统和测量系统。在该模型中,安装了两个具有不同S形特征的泵涡轮,以确定S形特征对过渡过程的影响。该模型平台可用于模拟实际发电站中发生的任何水力过渡过程,例如甩负荷,启动和并网。在实验平台上,测量了S形特征曲线,作为其他实验的基础。进行了失控实验,以验证S形特性对泵轮机失控稳定性的影响。进行了满负荷试验,以验证S形特性对水锤压力的影响。进行了一个水泵水轮机拒绝其负载的条件,另一水泵水轮机拒绝了另一个负载(OAA),以验证S诱导的极端引水管压力的可能性。进行了具有不同导叶关闭方案的甩负荷实验,以确定适合S型特征的合适方案。通过这些实验,验证了该站存在的威胁,总结了适当的措施,为抽水蓄能站的安全稳定运行提供了重要的实验基础。

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