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Cavitation Characteristics and Hydrodynamic Radial Forces of a Reversible Pump-Turbine at Pump Mode

机译:泵模式下可逆泵汽轮机的空化特性和流体动力径向力

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As the most critical part of a hydropower station, reversible pump-turbines (RPTs) are facing the trend of high parameterization (e.g., high head and high rotation speed) with the rapid development of hydropower, which may cause more detrimental cavitation-induced hydrodynamic forces. Considering that cavitation occurs more easily under pump mode than turbine mode for the RPT, the characteristics and generation mechanism of the hydrodynamic radial force induced by cavitation of a RPT model at pump mode are investigated by computational fluid dynamics and experimental methods. Combined with the shear stress transport (SST) turbulence model, the three-dimensional (3D) unsteady Reynolds-averaged Navier-Stokes (URANS) equations are solved to calculate the cavitation flow of the RPT at various cavitation states. The blade loading and the pressure pulsations of the pressure/suction surfaces of the blade are monitored from the inlet to the outlet. Results show that with the development of cavitation, increasing cavitation bubbles covering the blade surfaces lead to the decrease of the blade loading, weaken the regularity of the pressure fluctuation, and increase the amplitude of the pressure pulsation, especially the suction surface. Furthermore, the characteristics of hydrodynamic radial forces under various cavitation states are discussed, and it is found that the values of the hydrodynamic radial forces become larger and the alternating hydrodynamic radial forces are more remarkable with the development of cavitation. Meanwhile, the symmetry of the radial force of the impeller presents a slight change due to the rotor-stator interaction between impeller and guide vanes and the symmetrical structure of the guide vanes. Then, to explore the generation mechanism of the hydrodynamic radial forces, the frequency spectrum of the pressure pulsation and hydrodynamic radial forces are analyzed comparatively. It is found that the hydrodynamic radial forces are affected by the rotor-stator interaction in the initial stage of cavitation, whereas the influence of the pressure distribution of suction surface of the blade increases with the development of cavitation. (c) 2020 American Society of Civil Engineers.
机译:作为水电站最关键的部分,可逆泵涡轮机(RPTS)面临着高参数化(例如,高头和高旋转速度)的趋势,随着水电的快速发展,这可能导致更有害的空化诱导的流体动力学势力。考虑到在泵模式下更容易发生空化,而不是RPT的涡轮机模式,通过计算流体动力学和实验方法研究了通过泵模式下的RPT模型的空化诱导的流体动力径向力的特性和产生机制。结合剪切应力传输(SST)湍流模型,解决了三维(3D)不稳定的雷诺平均纳维尔 - Stokes(urans)方程以计算RPT在各种空化状态下的空化流动。叶片加载和叶片的压力/抽吸表面的压力脉动从入口监测到出口。结果表明,随着空化的发展,增加覆盖叶片表面的空化气泡导致叶片装载的减少,削弱了压力波动的规律性,并增加了压力脉动的幅度,尤其是抽吸表面。此外,讨论了各种空化状态下的流体动力径向力的特征,发现流体动力径向力的值变大,并且随着空化的发展,交替的流体动力学径向力更显着。同时,由于叶轮和引导叶片之间的转子 - 定子相互作用以及导叶片的对称结构,叶轮的径向力的对称呈现略微变化。然后,为了探讨流体动力径向力的产生机制,相对较好地分析压力脉动和流体动力径向力的频谱。结果发现,流体动力学径向力受到空化初始阶段的转子 - 定子相互作用的影响,而叶片的吸入表面的压力分布的影响随空化的发展而增加。 (c)2020年美国土木工程师协会。

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