基于节块展开法的球床式高温气冷堆堆芯导热计算方法

Thermal Conductivity Calculation of Pebble-bed High-temperature Gas-cooled Reactor Based on Nodal Expansion Method

  • 摘要: 球床式高温气冷堆(PB-HTGR)由于其具有多孔介质特征的堆芯结构特点,其热工水力计算与压水堆不同,燃料温度计算须进行全堆芯-燃料球-TRISO颗粒的多尺度计算。本文将用于求解中子扩散方程的节块展开法(NEM)用于PB-HTGR的全堆芯固体导热计算,并开发了相应程序TH-NEM,实现了高温气冷堆球床固体温度场的求解。同时,使用双二次多项式进行温度重构计算,以获得准确的节块角点温度。利用TH-NEM分别对纯固体模型、多孔介质模型与高温气冷堆示范工程(HTR-PM)模型进行数值模拟,计算结果与参考值符合良好。相比于细网方法,本文方法在保证计算精度的条件下获得了更高的计算效率,初步证明该方法能够用于PB-HTGR的热工计算分析。

     

    Abstract: Thermal-hydraulic calculations for pebble-bed high-temperature gas-cooled reactor (PB-HTGR) differ significantly from those of pressurized water reactor (PWR), due to factors such as large computational scales, significant temperature variations, and cylindrical geometry. PB-HTGR features a porous-medium core structure, and the fuel temperature calculations require a multi-scale approach, covering the entire core, fuel pebbles, and TRISO particles. This study aims to address the limitations of existing thermal-hydraulic analysis programs, improve computational efficiency for PB-HTGR simulations. Compared to the fine mesh finite volume method, the nodal methods allow the use of larger mesh sizes and has higher computational efficiency. The nodal expansion method (NEM), as a type of nodal method, is typically used for solving neutron diffusion equations. Based on the formal consistency between the neutron diffusion equation and the thermal conductivity equation, this study applied NEM to calculate the full-core thermal conduction of the PB-HTGR. The Legendre polynomial was used to perform second-order expansion on the temperature in all directions, and the nodal temperature was iteratively solved. Based on the above method, a corresponding computational program, TH-NEM, was developed to solve the solid temperature field in PB-HTGR. Additionally, a bi-quadratic polynomial reconstruction method was employed to calculate the node temperature, which was mapped from the average temperature of each mesh, facilitating the coupling of TH-NEM programs with other programs. Numerical simulations were performed for pure solid model, porous media model, and the HTR-PM model. The numerical simulations using TH-NEM show good agreement with reference values for all models tested. Compared with the fine mesh method, TH-NEM achieves higher computational efficiency under the condition of ensuring the computational accuracy. The preliminary results demonstrate that TH-NEM can be used for solid heat conduction calculations in PB-HTGR. The method provides an efficient approach for thermal analysis while maintaining accuracy, making it suitable for large-scale core simulations.

     

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