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Numerical investigation of cavitation-vortex interaction in a mixed-flow waterjet pump

机译:混流喷水泵中空化-涡流相互作用的数值研究

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Turbulent cavitating flows in a mixed-flow waterjet pump were numerically investigated using the k-omega SST turbulence model and the mass transfer cavitation model based on the Rayleigh-Plesset equation to provide a comprehensive understanding of the cavitation-vortex interaction mechanism. The predicted hydraulic performance, as well as the cavitation performance, exhibits a reasonable agreement with the experimental results. The vorticity distributions under three operation conditions were illustrated together. Based on the illustration, cavitation development enhances vorticity production and flow unsteadiness in a mixed-flow waterjet pump. Vortices are basically located at the cavity interface, particularly at the downstream interface, during cavitation. Further analyses using the relative vorticity transport equation in cavitating turbulent flows indicate that vortex dilation and baroclinic torque exhibit a steep jump as cavitation occurs. In addition, vortex stretching contributes mainly to large-scale vortex generation.
机译:利用k-omega SST湍流模型和基于Rayleigh-Plesset方程的传质空化模型,对混流喷水泵中的湍流空化流进行了数值研究,以全面理解空化-涡旋相互作用的机理。预测的水力性能以及气蚀性能与实验结果显示出合理的一致性。一起说明了三种工作条件下的涡度分布。根据图示,在混合流喷水泵中,气蚀的发展增强了涡流的产生和流动的不稳定。在空化过程中,涡流基本上位于空腔界面处,特别是在下游界面处。在空化湍流中使用相对涡度输运方程进行的进一步分析表明,随着空化的发生,涡旋膨胀和斜压扭矩会出现急剧的跳跃。另外,涡旋拉伸主要有助于大规模涡旋的产生。

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