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NUMERIC STUDY OF VOID DRIFT UNDER PWR CONDITIONS WITH CFD APPROACH

机译:CFD方法在压水条件下空洞漂移的数值研究

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This paper is devoted to the numerical study of void drift under PWR conditions with help of two-phase CFD approach. Void drift model available in state-of-the-art subchannel codes, for instance MATRA, is based on the equal-volume-exchange turbulent mixing incorporating void drift concept proposed by Lahey and Moody(hence referred to as the EVVD model). However, turbulent mixing and void drift are not clearly separated in the widely adopted EVVD approach. The same effective mixing velocity is applied to the two mixing effects that are induced by different physical mechanisms. In the present paper, two-phase CFD approach was employed to improve void drift modeling for subchannel analysis. We proposed a new phenomenological two-phase interchannel mixing model, with which the effect of void drift can be separated from CFD simulation results. Based on systematic CFD simulations covering typical PWR conditions, correlations were proposed to describe both void fraction distribution at equilibrium state and effective mixing velocity due to void drift. Finally, the proposed void drift model was implemented in MATRA for validation calculation with selected test cases of a rod bundle benchmark.
机译:本文致力于借助两阶段CFD方法在压水堆条件下进行空隙漂移的数值研究。最新的子信道代码中可用的空隙漂移模型(例如MATRA)基于结合了Lahey和Moody提出的空隙漂移概念的等体积交换湍流混合(因此称为EVVD模型)。但是,在广泛采用的EVVD方法中,湍流混合和空隙漂移并没有明确分开。将相同的有效混合速度应用于由不同物理机制引起的两种混合效果。在本文中,两阶段CFD方法被用来改善空隙漂移建模的子通道分析。我们提出了一个新的现象学两相通道间混合模型,通过该模型可以将空隙漂移的影响与CFD仿真结果分开。基于涵盖典型压水堆条件的系统CFD模拟,提出了相关性以描述平衡状态下的空隙率分布和由于空隙漂移而产生的有效混合速度。最后,提出的空隙漂移模型在MATRA中实现,用于对选定的棒束基准测试案例进行验证计算。

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