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Computational Fluid Dynamics Investigation of Supercritical Water Flow and Heat Transfer in a Rod Bundle With Grid Spacers

机译:网格间隔杆棒束中超临界水流动和传热的计算流体动力学研究

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This paper presents a steady-state computational fluid dynamics approach to supercritical water flow and heat transfer in a rod bundle with grid spacers. The current model was developed using the ANSYS Workbench 15.0 software (CFX solver) and was first applied to supercritical water flow and heat transfer in circular tubes. The predicted wall temperature was in good agreement with the measured data. Next, a similar approach was used to investigate three-dimensional (3D) vertical upward flow of water at supercritical pressure of about 25 MPa in a rod bundle with grid spacers. This work aimed at understanding thermo- and hydrodynamic behavior of fluid flow in a complex geometry at specified boundary conditions. The modeled geometry consisted of a 1.5-m heated section in the rod bundle, a 0.2-m nonheated inlet section, and five grid spacers. The computational mesh was prepared using two cell types. The sections of the rods with spacers were meshed using tetrahedral cells due to the complex geometry of the spacer, whereas sections without spacers were meshed with hexahedral cells resulting in a total of 28 million cells. Three different sets of experimental conditions were investigated in this study: a nonheated case and two heated cases. The nonheated case, A1, is calculated to extract the pressure drop across the rod bundle. For cases B1 and B2, a heat flux is applied on the surface of the rods causing a rise in fluid temperature along the bundle. While the temperature of the fluid increases along with the flow, heat deterioration effects can be present near the heated surface. Outputs from both B cases are temperatures at preselected locations on the rods surfaces.
机译:本文提出了一种稳态计算流体动力学方法,用于在具有网格间隔器的棒束中超临界水的流动和传热。当前模型是使用ANSYS Workbench 15.0软件(CFX求解器)开发的,并且首先应用于超临界水流和圆管中的热传递。预测的壁温与实测数据高度吻合。接下来,使用类似的方法研究带有网格间隔器的棒束中超临界压力(约25 MPa)下水的三维(3D)垂直向上流动。这项工作旨在了解在指定边界条件下复杂几何形状中流体流动的热力学和流体力学行为。建模的几何形状包括棒束中的1.5 m加热段,0.2 m的非加热入口段和五个栅格隔板。使用两种像元类型准备了计算网格。由于间隔子的复杂几何形状,带有间隔子的棒的截面使用四面体网格进行划分,而没有间隔子的部分与六面体网格进行划分,总共生成2800万个单元。在本研究中,研究了三种不同的实验条件:一个非加热情况和两个加热情况。计算未加热的情况A1,以提取跨过棒束的压降。对于情况B1和B2,将热通量施加在杆的表面上,从而导致沿束的流体温度升高。当流体的温度随流动而升高时,在加热表面附近可能会出现热劣化效应。两种B情况的输出都是棒表面上预先选定的位置处的温度。

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