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Computational Fluid Dynamics of Cavitating Flow in Mixed Flow Pump with Closed Type Impeller

机译:闭式叶轮混流泵中空化流的计算流体动力学

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LES(Large Eddy Simulation) with a cavitation model was performed to calculate an unsteady flow for a mixed flow pump with a closed type impeller. First, the comparison between the numerical and experimental results was done to evaluate a computational accuracy. Second, the torque acting on the blade was calculated by simulation to investigate how the cavitation caused the fluctuation of torque. The absolute pressure around the leading edge on the suction side of blade surface had positive impulsive peaks in both the numerical and experimental results. The simulation showed that those peaks were caused by the cavitaion which contracted and vanished around the leading edge. The absolute pressure was predicted by simulation with -10% error. The absolute pressure around the trailing edge on the suction side of blade surface had no impulsive peaks in both the numerical and experimental results, because the absolute pressure was 100 times higher than the saturated vapor pressure. The simulation results showed that the cavitation was generated around the throat, then contracted and finally vanished. The simulated pump had five throats and cavitation behaviors such as contraction and vanishing around five throats were different from each other. For instance, the cavitations around those five throats were not vanished at the same time. When the cavitation was contracted and finally vanished, the absolute pressure on the blade surface was increased. When the cavitation was contracted around the throat located on the pressure side of blade surface, the pressure became high on the pressure side of blade surface. It caused the 1.4 times higher impulsive peak in the torque than the averaged value. On the other hand, when the cavitation was contracted around the throat located on the suction side of blade surface, the pressure became high on the suction side of blade surface. It caused the 0.4 times lower impulsive peak in the torque than the averaged value. The cavitation around the throat caused the large fluctuation in torque acting on the blade.
机译:进行了带有气蚀模型的LES(大涡模拟),以计算带封闭式叶轮的混流泵的非稳态流量。首先,将数值结果与实验结果进行比较以评估计算精度。其次,通过模拟计算作用在叶片上的扭矩,以研究气蚀是如何引起扭矩波动的。在数值和实验结果中,叶片表面吸力侧前缘周围的绝对压力都有正的脉冲峰值。模拟表明,这些峰是由空穴引起的,该空穴在前沿附近收缩并消失。通过模拟预测绝对压力,误差为-10%。叶片表面吸力侧后缘周围的绝对压力在数值和实验结果中均没有脉冲峰,因为绝对压力比饱和蒸气压高100倍。仿真结果表明,空化作用是在喉部周围产生的,然后收缩并消失。模拟泵具有五个喉部,并且在五个喉部周围的空化行为(例如收缩和消失)互不相同。例如,这五个喉咙周围的空化没有同时消失。当气穴收缩并最终消失时,叶片表面的绝对压力增加。当空化在位于叶片表面的压力侧的喉部周围收缩时,叶片表面的压力侧上的压力变高。它导致扭矩的脉冲峰值比平均值高1.4倍。另一方面,当空化在位于叶片表面的吸入侧的喉部周围收缩时,在叶片表面的吸入侧的压力升高。这导致扭矩的脉冲峰值比平均值低0.4倍。喉咙周围的气蚀导致作用在叶片上的扭矩发生较大波动。

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