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Comparison and uncertainty quantification of two-fluid models for bubbly flows with NEPTUNE_CFD and STAR-CCM +

机译:NEPTUNE_CFD和STAR-CCM +气泡流两种流体模型的比较和不确定性量化

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摘要

The nuclear industry is interested in better understanding the behavior of turbulent boiling flows and in using modern computational tools for the design and analysis of advanced fuels and reactors and for simulation and study of mitigation strategies in accident scenarios. Such interests serve as drivers for the advancement of the 3-dimensional multiphase Computational Fluid Dynamics approach. A pair of parallel efforts have been underway in Europe and in the United States, the NEPTUNE and CASL programs respectively, that aim at delivering advanced simulation tools that will enable improved safety and economy of operations of the reactor fleet. Results from a collaboration between these two efforts, aimed at advancing the understanding of multiphase closures for pressurized water reactor (PWR) application, are presented. Particular attention is paid to assessment and analysis of the different physical models implemented in the CFD tools respectively used in the NEPTUNE and the CASL programs, for application to turbulent two-phase bubbly flows. The experiments conducted by Liu and Bankoff (Liu, 1989; Liu and Bankoff, 1993a,b) are selected for benchmarking, and predictions from NEPTUNE_CFD and STAR-CCM+ codes are presented for a broad range of flow conditions and with void fractions varying between 0 and 50%. Comparison of the CFD simulations and experimental measurements reveals that a similar level of accuracy is achieved in the two codes. The differences in both sets of closure models are analyzed, and their capability to capture the main features of the flow over a wide range of experimental conditions are discussed. Finally, a parametric sensitivity study for the set of closures used in STAR-CCM+ is included to serve as a preview of how uncertainty quantification methods can provide insights into interactions between closures of different phenomena. In conclusion, it is seen that, the multi-CFD-code approach and uncertainty analysis of a set of closures in a particular CFD code, are both of great value in assessing the limitations and the level of maturity of multiphase hydrodynamic closures, and can serve as aids in further improving them.
机译:核工业有兴趣更好地了解湍流沸腾的行为,并希望将现代计算工具用于高级燃料和反应堆的设计和分析,以及在事故场景中模拟和研究缓解策略。这种兴趣是推动三维多相计算流体动力学方法发展的动力。在欧洲和美国,分别进行了NEPTUNE和CASL计划的平行努力,旨在提供先进的仿真工具,以提高反应堆船队的运行安全性和经济性。提出了这两项努力之间的合作结果,旨在加深对压水堆(PWR)应用的多相封闭的理解。尤其要注意评估和分析在NEPTUNE和CASL程序中分别使用的CFD工具中实现的不同物理模型,以应用于湍流两相气泡流。选择由Liu和Bankoff进行的实验(Liu,1989; Liu和Bankoff,1993a,b)作为基准,并给出了NEPTUNE_CFD和STAR-CCM +代码的预测,适用于广泛的流动条件,且空隙率介于0之间和50%。 CFD仿真和实验测量结果的比较表明,在两个代码中达到了相似的精度水平。分析了两组封闭模型的差异,并讨论了它们在广泛的实验条件下捕获流量主要特征的能力。最后,还包括对STAR-CCM +中使用的一组封闭件的参数敏感性研究,以预览不确定性量化方法如何提供洞​​察力,以了解不同现象的封闭件之间的相互作用。总之,可以看出,多CFD代码方法和特定CFD代码中一组密封件的不确定性分析在评估多相流体动力密封件的局限性和成熟度方面均具有重要价值,并且可以有助于进一步改进它们。

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