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Numerical Prediction of Unsteady Pressure Field Within the Whole Flow Passage of a Radial Single-Blade Pump

机译:径向单叶片泵全流道内非定常压力场的数值预测

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In this paper, the periodically unsteady pressure field caused by rotor-stator interaction has been investigated numerically by computational fluid dynamics (CFD) calculation to evaluate the transient pressure variation in a single-blade pump for multiconditions. Side chamber flow effect is also considered for the simulation to accurately predict the flow in a whole-flow passage. The strength of the pressure fluctuation is analyzed quantitatively by defining the standard deviation of the pressure fluctuation of a revolution period. The analysis of the results shows that higher pressure fluctuation magnitudes can be observed near the blade pressure side and high gradients of fluctuation magnitudes can be obtained at the trailing edge near the pressure side of the blade. An asymmetrical distribution of fluctuation magnitudes in the volute domain can be clearly obtained. On the cylindrical surface around the impeller outlet, although the absolute pressure value is higher for the Q = 11 l/s condition, the magnitude distribution of fluctuations is lower, and a relatively symmetrical fluctuation distribution is obtained for the Q = 22 l/s condition when clearly asymmetrical distributions of fluctuation magnitude can be observed for the design point and for large flow rates. Obvious periodicity can be observed for the pressure fluctuation magnitude distribution on the circumference with different radii in the volute domain, and some subpeaks and subvalleys can be found. The effects of unsteady flow in the side chambers on the entire passage flow cannot be neglected for accurately predicting the inner flow of the pump. The results of unsteady pressure fluctuation magnitude can be used to guide the optimum design of the single-blade pump to decrease the hydrodynamic unbalance and to obtain more stable performance of the pump.
机译:本文通过计算流体力学(CFD)计算对转子-定子相互作用引起的周期性非恒定压力场进行了数值研究,以评估多工况单叶片泵的瞬态压力变化。在模拟中还考虑了侧室流动效应,以准确预测全流道中的流量。通过定义旋转周期的压力波动的标准偏差来定量分析压力波动的强度。结果分析表明,在叶片压力侧附近可以观察到较高的压力波动幅度,并且在叶片压力侧附近的后缘可以获得较高的波动幅度梯度。可以清楚地获得蜗壳域中波动幅度的不对称分布。在叶轮出口周围的圆柱表面上,尽管在Q = 11 l / s的条件下绝对压力值较高,但波动幅度的分布较低,并且在Q = 22 l / s的情况下可获得相对对称的波动分布在设计点和大流量时,可以观察到明显的不对称波动幅度分布情况。蜗壳域内不同半径的圆周上压力波动幅度分布具有明显的周期性,并且可以发现一些亚峰和亚谷。为了准确地预测泵的内部流量,不能忽略侧室中不稳定流量对整个通道流量的影响。非稳态压力波动幅度的结果可用于指导单叶片泵的优化设计,以减少流体动力不平衡并获得更稳定的泵性能。

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