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Numerical Calculation of Energy Performance and Transient Characteristics of Centrifugal Pump under Gas-Liquid Two-Phase Condition

机译:气液两相条件下离心泵能量性能和瞬态特性的数值计算

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摘要

The unstable operation of a centrifugal pump under the gas-liquid two-phase condition seriously affects its performance and reliability. In order to study the gas phase distribution and the unsteady force in an impeller, based on the Euler-Euler heterogeneous flow model, the steady and unsteady numerical calculations of the gas-liquid two-phase full flow field in a centrifugal pump was carried out, and the simulation results were compared with the test data. The results show that the test results are in good agreement with the simulation data, which proves the accuracy of the numerical calculation method. The energy performance curve of the model pump decreases with the increase of the gas content, which illustrates a serious impact on the performance under the part-load operating condition. The results reveal that the high-efficiency-operating range become narrow, as the gas content increases. The gas phase is mainly distributed on the suction surface of the impeller blades. When the gas content reaches a certain value, the gas phase separation occurs. As the inlet gas content increases, the radial force on the impeller blades decreases. The pattern of the pressure pulsation is similar to that under pure water and low gas content conditions, and the number of peaks during the pulsation is equal to the number of the impeller blades. After the gas content reaches a certain value, the pressure fluctuates disorderly and the magnitude and the direction of radial force change frequently, which are detrimental to the operation stability of the pump. The intensity of the pressure pulsations in the impeller flow channel continues to increase in the direction of the flow under pure water conditions. The pressure pulsation intensities at the blade inlet and the volute tongue become more severe with the increase of the gas content.
机译:离心泵在气液两相条件下的离心泵不稳定的操作严重影响其性能和可靠性。为了研究叶轮中的气相分布和叶轮中的不稳定力,基于欧拉 - 欧拉异构流模型,进行了离心泵中的气液两相全流场的稳定和不稳定的数值计算,并将仿真结果与测试数据进行比较。结果表明,测试结果与模拟数据吻合良好,这证明了数值计算方法的准确性。模型泵的能量性能曲线随着气体含量的增加而降低,这表示对部件负荷操作条件下的性能的严重影响。结果表明,随着气体含量的增加,高效工作范围变窄。气相主要分布在叶轮叶片的吸入表面上。当气体含量达到一定值时,发生气相分离。随着入口气体含量的增加,叶轮叶片上的径向力降低。压力脉动的图案类似于纯水和低气体含量条件下的模式,并且脉动期间的峰值的数量等于叶轮叶片的数量。在气体含量达到一定的值之后,压力波动且径向力的大小经常变化,这对泵的操作稳定性是有害的。叶轮流动通道中的压力脉动的强度继续在纯净水条件下的流动方向上升。随着气体含量的增加,叶片入口和蜗壳舌处的压力脉动强度变得更加严重。

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