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STUDY ON PRESSURE PULSATION IN THE VOLUTE OF A CENTRIFUGAL PUMP BY LARGE EDDY SIMULATION

机译:大型涡芯模拟中离心泵蜗壳压力脉动的研究

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Pressure pulsation caused by unsteady flow plays one of the most important roles in the stable operation of centrifugal pumps. Numerical simulation method of LES (Large Eddy Simulation) with WALE model has been used to calculate the unsteady flow in IS150-125-250 centrifugal pump passages. Three groups monitoring points distributed on 8 cross sections in different radial, circumferential, axial directions were set. And pressure pulsation in volute with different flow rates, radial distance, circumferential angles and axial distance was studied. Changing of the maximal pressure pulsation amplitude on monitoring points has been obtained by time and frequency domain analysis. The research demonstrated the maximum amplitude of pressure pulsation is located at the volute tongue, and its magnitude changes with flow rates at each monitoring point. The dominant frequency of pressure pulsation in the volute is equal to the blade passing frequency and the subdominant frequencies are also related to the blade passing frequency. The periodicities of circumferential pressure pulsations at different monitoring points in the volute are similar. More deviation of design flow rate results in larger pressure pulsation amplitude. Increasing radius will weaken pressure pulsation amplitude while closing to the wall of volute can strengthen the pressure pulsation. The research of pressure pulsation in volute will show great help in hydraulic design of centrifugal pump to realize longer component life, less vibration and more stable operation.
机译:不稳定流动引起的压力脉动在离心泵的稳定运行中起到最重要的作用之一。 WALE模型的LES(大涡模拟)的数值模拟方法已被用来计算IS150-125-250离心泵通道的非定常流。设定了三组在不同径向,圆周,轴向上的8个横截面上分布的监测点。研究了具有不同流速,径向距离,周向角度和轴向距离的蜗壳的压力脉动。通过时间和频域分析获得了监测点上的最大压力脉动幅度的变化。研究表明,压力脉动的最大幅度位于蜗壳上,其幅度随着每个监测点的流速而变化。蜗壳中的压力脉动的主导频率等于叶片通过频率,并且底域频率也与叶片通过频率有关。蜗壳中不同监测点处的周向压力脉动的周期性是相似的。设计流速的更多偏差导致较大的压力脉动幅度。增加半径将削弱压力脉动幅度,同时闭合到蜗壳的壁可以增强压力脉动。蜗壳压力脉动的研究将在离心泵的液压设计中显示出很大的帮助,实现更长的部件寿命,较少振动和更稳定的操作。

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