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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Experimental Evidence of Rotating Stall in a Pump-Turbine at Off-Design Conditions in Generating Mode
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Experimental Evidence of Rotating Stall in a Pump-Turbine at Off-Design Conditions in Generating Mode

机译:发电模式下非设计工况下水轮机失速的实验证据

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An experimental investigation of the rotating stall in reduced scale model of a low specific speed radial pump-turbine at runaway and turbine brake conditions in generating mode is achieved. Measurements of wall pressure in the stator are performed along with high-speed flow visualizations in the vaneless gap with the help of air bubbles injection. When starting from the best efficiency point (BEP) and increasing the impeller speed, a significant increase of the pressure fluctuations is observed mainly in the wicket gates channels. The spectral analysis shows a rise of a low frequency component (about 70percent of the impeller rotational frequency) at runaway, which further increases as the zero discharge condition is approached. Analysis of the instantaneous pressure peripheral distribution in the vaneless gap reveals one stall cell rotating with the impeller at sub-synchronous speed. High-speed movies reveal a quite uniform flow pattern in the guide vanes channels at the normal operating range, whereas at runaway the flow is highly disturbed by the rotating stall passage. The situation is even more critical at very low positive discharge, where backflow and vortices in the guide vanes channels develop during the stall cell passage. A specific image processing technique is applied to reconstruct the rotating stall evolution in the entire guide vanes circumference for a low positive discharge operating point. The findings of this study suggest that one stall cell rotates with the impeller at sub-synchronous velocity in the vaneless gap between the impeller and the guide vanes. It is the result of rotating flow separations developed in several consecutive impeller channels which lead to their blockage.
机译:在发电模式下,在失控和涡轮制动条件下,对低比转速径向泵水轮机的缩小模型中的旋转失速进行了实验研究。定子壁压力的测量与无叶间隙中的高速流动可视化一起借助气泡注入进行。从最佳效率点(BEP)开始并提高叶轮速度时,主要在闸门通道中观察到压力波动的明显增加。频谱分析表明,在失控时低频分量(大约是叶轮旋转频率的70%)的上升,随着接近零排放条件而进一步增加。对无叶片间隙中瞬时压力周边分布的分析表明,一个失速室与叶轮以亚同步速度旋转。高速电影显示,在正常工作范围内,导叶通道中的流型相当均匀,而在失控状态下,旋转的失速通道会极大地干扰流。在极低的正放电条件下,情况甚至更为严峻,在停滞室通过过程中,导叶通道中会形成回流和涡流。应用了一种特殊的图像处理技术,以针对低正向放电工作点重建整个导叶圆周上的旋转失速演变。这项研究的发现表明,一个失速单元与叶轮在叶轮和导向叶片之间的无叶片间隙中以亚同步速度旋转。这是在几个连续的叶轮通道中形成旋转流分离而导致堵塞的结果。

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