Part Load Instability and Rotating Stall in a Multistage Low Specific Speed Pump

E. Vermunt, K. Bruurs, M. V. D. Schoot, B. Esch
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引用次数: 1

Abstract

A new diffuser design is developed for a low specific speed, multistage pump. In this design the diffuser and the de-swirl vanes are integrated into single vanes. This creates diffuser channels that extend from behind the impeller exit through the cross-over, up to the eye of the next stage impeller. Experiments show the occurrence of a saddle type instability in the head curve. At a critical flow rate of close to 50% of the flow rate at Best Efficiency Point (BEP), the head drops by 7% of the head at BEP. In this study Computational Fluid Dynamics (CFD) are used in an effort to understand the underlying flow phenomena. The head curve that is obtained with the transient CFD simulations contains a saddle type instability at a flow rate that is approximately the same as in the experiments, but with a lower magnitude. At flow rates higher than the critical flow rate, the predicted head and power are in very good agreement with the experimental data. At flow rates lower than the critical flow rate, the head and power are slightly over-predicted. An analysis of the pressure distribution in the pump reveals that the head loss at different flow rates in the diffuser shows a discontinuity at the critical flow rate. Since both the impeller head and the head loss in the vaneless gap increase continuously for decreasing flow rate, this is an indication that the cause of the head instability lies in the diffuser. Moreover, a strong increase in the variability of head and power at flow rates below the critical flow suggests that the phenomenon is unsteady. Flow patterns in the impeller and in the diffuser, as calculated by CFD, show a high degree of periodicity and are very similar for flow rates down to the critical flow rate. However, for lower flow rates the flow pattern changes completely. A single rotating stall cell is observed that causes two or three neighboring diffuser channels to stall, leading to a significantly lower flow rate or even a reversed flow. This stall pattern rotates in the direction of impeller rotation at a very low frequency of approximately 3.3% of the impeller rotation frequency.
多级低比转速泵的局部负荷失稳与旋转失速
针对低比速多级泵,设计了一种新的扩压器。在本设计中,扩压叶片和去旋叶片被整合为一个叶片。这就产生了扩散通道,从叶轮出口的后面通过交叉延伸到下一级叶轮的眼睛。实验表明,在头部曲线上出现鞍型失稳。当临界流量接近最佳效率点(BEP)流量的50%时,水头下降7%。在本研究中,计算流体动力学(CFD)被用于理解潜在的流动现象。瞬态CFD模拟得到的水头曲线包含与实验流速近似相同的鞍型不稳定性,但量级较低。当流量大于临界流量时,预测的水头和功率与实验数据吻合较好。当流量低于临界流量时,水头和功率略被高估。对泵内压力分布的分析表明,不同流量下扩压器内的扬程损失在临界流量下呈不连续现象。由于随着流量的减小,叶轮扬程和无叶间隙扬程损失不断增大,说明扬程失稳的原因在于扩压器。此外,在流量低于临界流量时,水头和功率变异性的强烈增加表明这种现象是不稳定的。通过CFD计算,叶轮和扩压器内的流动形态具有高度的周期性,且在低于临界流量的情况下非常相似。然而,当流量较低时,流型完全改变。观察到单个旋转失速单元会导致两个或三个相邻的扩散器通道失速,导致流量显著降低甚至反向流动。这种失速模式沿叶轮旋转方向旋转,频率非常低,约为叶轮旋转频率的3.3%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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