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首页> 外文期刊>Annals of nuclear energy >Numerical investigation of an advanced U-RANS based pressure fluctuation model to simulate non-linear vibrations of nuclear fuel rods due to turbulent parallel-flow
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Numerical investigation of an advanced U-RANS based pressure fluctuation model to simulate non-linear vibrations of nuclear fuel rods due to turbulent parallel-flow

机译:基于高级U-RANS的压力波动模型的数值研究,以模拟湍流平行流引起的核燃料棒的非线性振动

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Nuclear reactor designs such as PWR and BWR are susceptible to vibrations induced on the nuclear fuel rods due to fast flowing coolants around the rods. The non-linear behaviour of flexible components have always been a challenge to compute especially when dealing with strongly coupled fluid-structure interaction cases as found in the reactors. Simulating such a behaviour involves a two-way coupling of a well resolved turbulent flow Computational Fluid Dynamics (CFD) solver to a Computational Solid Mechanics (CSM) solver. The use of a high fidelity CFD solver to resolve turbulent flows in an FSI (Fluid-Structure Interaction) simulation is computationally expensive ergo is not practical in for industrial purposes. To address this issue, a different approach is discussed in this article to simulate turbulence induced vibrations through the use of U-RANS models. The method is based on computing the modeled turbulent pressure and velocity fluctuations from values obtained by solving U-RANS (Unsteady-Reynolds Averaged Navier Stokes) equations. The calculated turbulent fluctuating field is combined with mean values to compute an instantaneous turbulent pressure field to apply an external pressure and shear force on the structure and vice-verse until convergence is achieved. This method can be used to accurately estimate the behaviour of a flexible structure in a turbulent flow. The article provides a detailed explanation of the model followed by validation with three numerical test cases. The first case involves a CFD simulation where results from the pressure fluctuation model (PFM) is compared to a benchmark DNS (Direct Numerical Simulation) of a turbulent channel flow with friction Reynolds number, Re-tau = 640. Later the PFM is applied to a 2-dimensional strongly-coupled FSI simulation with a flexible steel flap in turbulent water flow to study the feasibility and stability of PFM applied to an FSI problem. Finally, the PFM is used to simulate an experimental case of a brass rod excited by turbulent water performed by Chen and Wambsganns (1972). The results show that the PFM is capable of simulating turbulence induced vibration (TIV) with low-fidelity U-RANS models. (C) 2019 Elsevier Ltd. All rights reserved.
机译:诸如PWR和BWR之类的核反应堆设计由于在核燃料棒周围快速流动的冷却剂而容易受到在核燃料棒上感应的振动的影响。柔性组件的非线性行为一直是计算的挑战,尤其是在处理反应堆中强烈耦合的流体-结构相互作用情况时。模拟这种行为需要将解析良好的湍流计算流体力学(CFD)求解器与计算固体力学(CSM)求解器进行双向耦合。在FSI(流体-结构相互作用)模拟中使用高保真CFD求解器解析湍流是计算上昂贵的,因此在工业上不可行。为了解决这个问题,本文讨论了一种不同的方法,通过使用U-RANS模型来模拟湍流引起的振动。该方法基于从通过求解U-RANS(非稳态-雷诺兹平均Navier斯托克斯)方程式获得的值计算模型化的湍流压力和速度波动。将计算出的湍流波动场与平均值相结合,以计算瞬时湍流压力场,从而在结构上施加外部压力和剪切力,反之亦然,直到实现收敛为止。该方法可用于精确估计湍流中柔性结构的行为。本文提供了该模型的详细说明,然后通过三个数值测试案例进行了验证。第一种情况涉及CFD模拟,其中将压力波动模型(PFM)的结果与具有雷诺数(Re-tau = 640)的湍流通道的基准DNS(直接数值模拟)进行比较。随后,将PFM应用到二维强耦合FSI模拟,在湍流水流中使用柔性钢制襟翼来研究PFM解决FSI问题的可行性和稳定性。最后,PFM用于模拟由Chen和Wambsganns(1972)进行的湍流水激发黄铜棒的实验情况。结果表明,PFM能够利用低保真U-RANS模型模拟湍流引起的振动(TIV)。 (C)2019 Elsevier Ltd.保留所有权利。

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