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ASSESSMENT OF RANS BASED CFD METHODOLOGY USING JAEA FUEL ASSEMBLY EXPERIMENT

机译:基于JaEA燃料组件实验的基于RANS的CFD方法学评估

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This paper presents an assessment results for the developed RANS (Reynolds Averaged Navier-Stokes simulation) based CFD (Computational Fluid Dynamics) methodology applicable to real scale 217-pin wire wrapped fuel assembly of the KAERI (Korea Atomic Energy Research Institute) PGSFR (Prototype Gen-Ⅳ Sodium-cooled Fast Reactor). Complicated and vortical flow phenomena in the wire-wrapped fuel bundles were captured by a shear stress transport (SST) turbulence model, and by a vortex structure identification technique based on the critical point theory. The CFD results show good agreement with the JAEA experiment with the 127-pin wire-wrapped fuel assembly. The JAEA experiment study was implemented using water for validating pressure drop formulas in ASFRE code. The edge vortex structures are longitudinally developed, and have a higher axial velocity than corner vortex structures and wakes nearby pins and wires. The wire spacers locally induce a tangential flow by up to about 16 % of the axial velocity. The tangential flow in the corner and edge sub-channels is much stronger than that in the interior subchannels. The large-scale edge vortex structures have higher turbulence intensity and lower vorticity than the small-scale wakes. The corner vortex structures have lower turbulence intensity and vorticity than the small-scale wakes. The driving forces in the X-, Y-, and Z-directions are not only dependent on the axial velocity, but also significantly dependent on the angular position between the wire-spacer and rod, and the relative position between the wire-spacer and duct wall.
机译:本文介绍了基于RANS(雷诺平均Navier-Stokes模拟)的CFD(计算流体动力学)方法论的评估结果,该方法适用于KAERI(韩国原子能研究所)PGSFR(原型)的实际比例217针金属丝包裹的燃料组件第四代钠冷快堆)通过剪切应力传输(SST)湍流模型和基于临界点理论的涡旋结构识别技术,捕获了包裹金属丝的燃料束中的复杂涡流现象。 CFD结果显示与JAEA用127针绕线式燃料组件进行的实验吻合良好。 JAEA实验研究是用水验证ASFRE代码中的压降公式进行的。边缘涡流结构是纵向展开的,并且比角涡流结构具有更高的轴向速度,并唤醒附近的销和线。钢丝隔片局部引起切向流,其轴向速度高达轴向速度的16%。拐角和边缘子通道中的切向流比内部子通道中的切向流要强得多。大型边缘涡旋结构比小型尾流具有更高的湍流强度和更低的涡度。角涡结构比小尾流具有较低的湍流强度和涡度。 X,Y和Z方向上的驱动力不仅取决于轴向速度,而且还极大地取决于线规与杆之间的角位置以及线规与杆之间的相对位置。管壁。

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