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Assessment of the CUPID Code for Bubbly Flows in Horizontal Pipes

机译:水平管道中气泡流的CUPID代码评估

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Two-phase flow in a horizontal pipe has a pronounced feature; that is, two-phase-flow parameters are highly nonsymmetric because gravity is perpendicular to the mean flow direction. Thus, three-dimensional analysis is necessary for the accurate prediction of two-phase flow in a horizontal pipe, such as the hot leg and cold leg of a pressurized water reactor and the pressure tubes in a CANDU reactor In this study, we simulated bubbly flows in horizontal pipes using the CUPID code, which adopts a two-fluid, three-field model for two-phase flow In the preliminary calculations, it was found that the particle-averaged two-fluid momentum equation, rather than the standard two-fluid momentum equation, predicts a physically reasonable slip ratio and nondrag forces, except turbulent dispersion forces have negligible effects on the radial void distribution when the particle-averaged two-fluid momentum equation is used. Based on the results, we selected the physical models and computational mesh for subsequent code assessment using various bubbly flow experiments in horizontal pipes. The turbulent dispersion force model was improved to take into account the large void fraction change at the top. The results of the code assessment show good predictions for the axial pressure drop, liquid velocity, and turbulent kinetic energy profile and predict reasonably well the effects of j(i) and j(g) on two-phase-flow parameters. However, additional studies are needed for more accurate prediction of the nonsymmetric distribution of gas velocity and turbulent kinetic energy.
机译:水平管中的两相流具有明显的特征。也就是说,两相流参数高度不对称,因为重力垂直于平均流向。因此,三维分析对于准确预测水平管中的两相流是必要的,例如压水堆的热段和冷段以及CANDU反应堆中的压力管。在此研究中,我们模拟了气泡使用CUPID代码在水平管道中流动,该代码采用两流体三场模型进行两相流动。在初步计算中,发现粒子平均的两流体动量方程式,而不是标准的两流体动量方程式。流体动量方程可预测物理上合理的滑移率和非拖曳力,但使用颗粒平均二流体动量方程时,湍流分散力对径向空隙分布的影响可忽略不计。根据结果​​,我们选择了物理模型和计算网格,以便使用水平管道中的各种气泡流动实验进行后续代码评估。改进了湍流分散力模型,以考虑顶部的大空隙率变化。代码评估的结果显示出对轴向压降,液体速度和湍动能分布的良好预测,并合理地预测了j(i)和j(g)对两相流参数的影响。但是,需要进行更多的研究才能更准确地预测气体速度和湍动能的不对称分布。

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