首页> 外文会议>ASME Fluids Engineering Division summer meeting >UNSTABLE FLOW CHARACTERISTICS IN S-SHAPED REGION OF PUMP-TURBINE RUNNERS WITH LARGE BLADE LEAN
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UNSTABLE FLOW CHARACTERISTICS IN S-SHAPED REGION OF PUMP-TURBINE RUNNERS WITH LARGE BLADE LEAN

机译:大叶片稀薄的水轮机转轮S形区的不稳定流动特性

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As the reversible pump-turbines operate in the S-shaped region, instability problems including backflow, vortex formation and rotating stall may appear. Previous researches studied instabilities at different guide vane opening (GVO) on their inception and evolution but few studies explored the effect of the blade lean at the leading edge. In present work, two runners tested by experiments, the runner A with a negative and the runner B with a positive blade lean at leading edge, were studied in CFD mode with a reduced scale model. Six operating points, namely, best efficiency point (OP#l), two points in the normal operating region (OP#2, OP#3), two points near runaway line (OP#4, OP#5) and a low discharge point in turbine brake (OP#6) were calculated for both runners. As the discharge reduces, the flow in the runners loses its symmetry and the efficiency becomes lower and lower. The flow of OP#1, OP#2 and OP#3 is healthy but slight separations locate near the inlet of the passages. At OP#4, obvious vortexes occupy the passages and the visible vortexes prevent the flow from entering the channels. The blockage generates strong backflow near the inlet of the runner. Moreover, the main backflow area locates near the hub for runner A while for runner B it is near the shroud. Unsteady vortex formation and rotating stall respectively exist at the near runaway points (OP#4 and OP#5) and low discharge point (OP#6). At these three points, the pressure fluctuations in the vaneless gap between the runner and guide vanes are very high and the amplitude shows a small difference between the two runners. Dramatic distinction appears on the frequency of the fluctuation. For both of the two runners, a peak corresponding to 70% f_n, where f_n is the runner rotating frequency, rises in the spectra of OP#4 and OP#5. This peak appears at all the monitors in the vaneless space at the same time standing for the unsteady vortex formation, which does not rotate with the blades. In addition, at OP#6,40% and 50% f_n are detected as the dominant frequencies for runner A and runner B respectively. In addition, the propagation of such two low frequency signal along the annulus in the vaneless space proves the existence of the rotating stalls.
机译:由于可逆式水泵水轮机在S形区域内运行,可能会出现不稳定问题,包括回流,涡流形成和旋转失速。先前的研究研究了不同导流叶片开启(GVO)的不稳定性,包括它们的开始和演化过程,但是很少有研究探索前缘叶片倾斜的影响。在目前的工作中,以缩减比例模型在CFD模式下研究了两个通过实验测试的流道,即带A负值的流道A和带正向斜角的正叶片的流道B。六个工作点,即最佳效率点(OP#1),正常工作区域中的两个点(OP#2,OP#3),失控线附近的两个点(OP#4,OP#5)和低放电计算两个转轮的涡轮制动点(OP#6)。随着排放量的减少,流道中的流失去对称性,效率越来越低。 OP#1,OP#2和OP#3的流量正常,但在通道的入口附近有微小的间隔。在OP#4,明显的涡流占据了通道,可见的涡流阻止了流体进入通道。堵塞会在流道入口附近产生强烈的回流。此外,主回流区位于流道A的轮毂附近,而流道B的流道则位于护罩附近。不稳定的涡流形成和旋转失速分别存在于失控点(OP#4和OP#5)和低放电点(OP#6)附近。在这三个点上,流道和导向叶片之间的无叶间隙中的压力波动非常大,并且振幅显示出两个流道之间的差异很小。明显的区别出现在波动的频率上。对于两个跑步者,OP#4和OP#5的光谱中对应于70%f_n的峰(其中f_n是跑步者的旋转频率)上升。该峰值同时出现在无叶空间中的所有监视器上,这表示不随叶片旋转的不稳定涡旋形成。另外,在OP#6,分别检测到f_n为跑步者A和跑步者B的主导频率的40%和50%。另外,这两个低频信号在无叶片空间中沿着环的传播证明了旋转失速的存在。

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