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首页> 外文期刊>Progress in Nuclear Energy >Small modular reactor full scope core optimization using Cuckoo Optimization Algorithm
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Small modular reactor full scope core optimization using Cuckoo Optimization Algorithm

机译:使用杜鹃优化算法的小型模块化反应堆全范围堆芯优化

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摘要

Small Modular Reactors (SMRs) with their excellent safety and economic features will be in high demand in the near future. Most SMR designs have longer burn-up cycle length with more fuel enrichment and smaller core size in comparison to the large conventional nuclear reactors. The small size of these reactors causes more neutron leakage (less core radius results in a higher area to volume ratio and more relative leakage). This feature of SMRs causes high values of maximum Power Peaking Factors (PPFs) through the core, so optimizing the safety parameters is of high necessity. Also, long burn-up cycle length needs a high initial excess reactivity, which results into use of some materials and methods to control this high excess reactivity. One of these methods is using a high number of Integral Fuel Burnable Absorber (IFBA) rods. In the present designs of IFBA rods, usually some amounts of fuel with lower enrichment are used at the top and bottom parts of the IFBA rods (known as cutback fuel) to flatten the axial PPFs. The small size of the SMRs (using a lower number of FAs) helps to have much less possible radial loading patterns (in comparison to the large reactors) and provides the possibility to optimize the axial variations in amounts of cutback fuel in IFBA rods simultaneously. Accordingly, the best axial and radial loading pattern according to the objective functions could be achieved. At the present work, the main goal is to optimize radial core loading pattern and axial variations of cutback fuel lengths at the IFBA rods of an SMR simultaneously using a multi-objective neutronic and thermal-hydraulic fitness function. The multi-objective fitness function includes burn-up cycle length, Minimum Departure from Nucleate Boiling (MDNBR), maximum and average radial and axial PPFs during the entire cycle lengths. The Cuckoo Optimization Algorithm (COA) as a new robust metaheuristic algorithm with high convergence speed and global optima achievement has been used. For the thermo-neutronic calculation, DRPACO package consists of the coupling system of DRAGON/PARCS/COBRA codes have been used. Finally, the results of SMR core axial and radial loading pattern optimization using COA presents a core configuration with improvement in the core safety and economic parameters in comparison to the reference SMR core.
机译:具有出色的安全性和经济性的小型模块化反应堆(SMR)在不久的将来将有很高的需求。与大型常规核反应堆相比,大多数SMR设计具有更长的燃尽周期长度,更多的燃料富集和更小的堆芯尺寸。这些反应堆的小尺寸导致更多的中子泄漏(较小的堆芯半径会导致更高的面积体积比和更多的相对泄漏)。 SMR的此功能会导致通过核心产生最大的最大功率峰值因数(PPF),因此,优化安全参数非常必要。而且,长的燃尽循环长度需要高的初始过量反应性,这导致使用一些材料和方法来控制这种高过量反应性。这些方法之一是使用大量的整体燃料可燃吸收器(IFBA)杆。在目前的IFBA杆设计中,通常在IFBA杆的顶部和底部使用一定量的低浓度燃料(称为削减燃料)来压平轴向PPF。 SMR的小尺寸(使用较少数量的FA)有助于减小径向负载模式(与大型反应堆相比),并且可以同时优化IFBA杆中削减燃料量的轴向变化。因此,可以实现根据目标功能的最佳轴向和径向载荷模式。在当前的工作中,主要目标是利用多目标中子和热液适应度函数同时优化SMR IFBA杆的径向堆芯装载模式和减少燃料长度的轴向变化。多目标适应度函数包括燃尽周期长度,最小核沸腾偏差(MDNBR),在整个周期长度内的最大和平均径向和轴向PPF。布谷鸟优化算法(COA)作为一种新的鲁棒的元启发式算法,具有较高的收敛速度和全局最优解。对于热中子计算,使用了DRPACO软件包,该软件包由DRAGON / PARCS / COBRA代码的耦合系统组成。最后,与参考SMR磁芯相比,使用COA进行SMR磁芯轴向和径向载荷模式优化的结果提出了一种磁芯配置,其磁芯安全性和经济性参数得到了改善。

著录项

  • 来源
    《Progress in Nuclear Energy》 |2020年第4期|103271.1-103271.14|共14页
  • 作者

  • 作者单位

    Amirkabir Univ Technol Dept Energy Engn & Phys Tehran Polytech Tehran Iran|Univ Pisa GRNSPG DESTEC Pisa Italy;

    Amirkabir Univ Technol Dept Energy Engn & Phys Tehran Polytech Tehran Iran;

    Fed Univ ABC CECS Santo Andre SP Brazil;

    Univ Pisa GRNSPG DESTEC Pisa Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Small modular reactor; Neutronic calculation; Thermal-hydraulic calculation; Cuckoo Optimization Algorithm;

    机译:小型模块化反应堆;中子学计算;热工水力计算;布谷鸟优化算法;

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