首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Guide-Vane Closing Schemes for Pump-Turbines Based on Transient Characteristics in S-shaped Region
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Guide-Vane Closing Schemes for Pump-Turbines Based on Transient Characteristics in S-shaped Region

机译:基于S形区域瞬态特性的水轮机导叶关闭方案

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During the transitional processes of load rejection in a pumped-storage station, the S-shaped characteristics of the pump-turbines can result in relatively large water-hammer and pulsating pressures. These pressures and the high runaway speed during transient processes may directly damage the penstocks and shorten the life of the turbine. In this study, different guide-vane closing schemes for reducing the maximum transient pressures, including the water-hammer and pulsating pressures, and runaway speed were investigated, and the principles for improving the closing schemes were theoretically analyzed based on the transient characteristics in the S-shaped region. First, an analytical expression for the rate of change of relative water head during the transitional processes was deduced based on a simplified mathematical model. It reveals the relationship between the slopes of the trajectory at the pump-turbine operating points (defined as trajectory slopes) and the rigid water-column pressure, which approximates the water-hammer pressure considering compressibility. Then, based on the characteristics of the rigid water-column pressure during the transient process and the effects of guide-vane closure on the trajectory slopes, the selection method for a two-phase guide-vane closing scheme was proposed. The method included the technique for choosing the coordinates of the turning point and the closing speed of the guide vane. Furthermore, the pulsating pressures of pump-turbines were discussed under different working regions and guide-vane openings (GVOs). Considering the characteristics of the pulsating pressures and the runaway speed during the transient processes, the advantage of three-phase valve-closing schemes in controlling the pulsating pressures and the runaway speed was clarified. Finally, a series of model tests were conducted on a pumped-storage station model and the measured data fully validated the correctness of our analyses in this work.
机译:在抽水蓄能站的甩负荷过渡过程中,水轮机的S形特性会导致较大的水击和脉动压力。这些压力和瞬态过程中的高失控速度可能会直接损坏压力管道并缩短涡轮机的使用寿命。在这项研究中,研究了用于减小最大瞬态压力(包括水锤和脉动压力)和失控速度的不同导叶关闭方案,并基于该瞬态特性从理论上分析了改善关闭方案的原理。 S形区域。首先,基于简化的数学模型推导了过渡过程中相对水头变化率的解析表达式。它揭示了在水泵水轮机工作点处的轨迹斜率(定义为轨迹斜率)与刚性水柱压力之间的关系,刚性水柱压力考虑了可压缩性而近似于水锤压力。然后,基于过渡过程中刚性水柱压力的特性,以及导叶关闭对轨迹斜率的影响,提出了一种两相导叶关闭方案的选择方法。该方法包括用于选择转折点的坐标和导向叶片的闭合速度的技术。此外,还讨论了在不同的工作区域和导向叶片开口(GVO)下的水轮机脉动压力。考虑到瞬态过程中脉动压力和失控速度的特性,阐明了三相阀门关闭方案在控制脉动压力和失控速度方面的优势。最后,在抽水蓄能电站模型上进行了一系列模型测试,实测数据充分验证了我们在这项工作中进行分析的正确性。

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