Faculty of Science, Zagazig University, Zagazig, Egypt.
Sci Rep. 2023 Jun 29;13(1):10518. doi: 10.1038/s41598-023-37615-x.
This paper investigates the possibility to extend the cycle length of boiling water reactor bundles to 15 years of operation with three different burnable poisons; gadolinium, erbium, and boron carbide. This can be carried out by mixing highly enriched UO fuel (15-19.9% U-235) with high concentrations of Gadolinium oxide (3-14% GdO) or Erbium oxide (2-4% ErO).The boron carbide BC was modeled as (AlO-BC) rods in the bundle guide tubes. MCNPX code 2.7 was used to evaluate infinite multiplication factor (K-inf), power distribution, peaking factor, void reactivity coefficient, fuel cycle length, depletion of U-235, and fissile inventory ratio for the three designs at 40% void. The MCNPX simulation showed that introducing gadolinium rods at the bundle periphery has the advantage of lowering reactivity swing throughout the exposure range. The uniform distribution of erbium in all fuel rods contributed to the flattening of peaking factor at all the burnup stages. For the BC design, the author found that the assembly with BC-Al performs best in terms of reactivity flattening when five of the BC-ALO rods are positioned in the central region of the assembly. Furthermore, the fuel temperature coefficient is more negative for gadolinium design at all burnup stages. On the other hand, the boron model delivers the lowest control rod worth. Finally, the moderator temperature coefficient is more negative for erbium and WABA designs due to the enhanced thermal neutrons capture by the effect of the strategic arrangement of WABA rods and the uniform distribution of erbium.
本文探讨了通过混合高浓缩 UO 燃料(15-19.9% U-235)与高浓度氧化钆(3-14% GdO)或氧化铒(2-4% ErO),将沸水堆组件的运行周期延长至 15 年的可能性。在燃料棒的包壳内插入碳化硼(BC)棒,可实现这一目标。在 40%空泡率下,使用 MCNPX 代码 2.7 评估了无限增殖因子(K-inf)、功率分布、峰化因子、空泡反应性系数、燃料循环长度、U-235 消耗和易裂变核素库存比。MCNPX 模拟结果表明,在组件周边引入钆棒具有降低整个辐照范围内反应性摆动的优势。所有燃料棒中均匀分布的铒有助于在所有燃耗阶段降低峰化因子。对于 BC 设计,作者发现当 5 根 BC-ALO 棒位于组件中心区域时,BC-AL 组件的反应性平坦度最佳。此外,在所有燃耗阶段,钆设计的燃料温度系数更负。另一方面,硼模型的控制棒价值最低。最后,由于 WABA 棒的战略布置和铒的均匀分布增强了热中子俘获,铒和 WABA 设计的慢化剂温度系数更负。