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Development of a BWR loading pattern design system based on modified genetic algorithms and knowledge

机译:基于改进遗传算法和知识的BWR加载模式设计系统的开发

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摘要

An optimization system based on Genetic Algorithms (GAs), in combination with expert knowledge coded in heuristics rules, was developed for the design of optimized boiling water reactor (BWR) fuel loading patterns. The system was coded in a computer program named Loading Pattern Optimization System based on Genetic Algorithms, in which the optimization code uses GAs to seJect candidate solutions, and the core simulator code CM-PRESTO to evaluate them. A multi-objective function was built to maximize the cycle energy length while satisfying power and reactivity constraints used as BWR design parameters. Heuristic rules were applied to satisfy standard fuel management recommendations as the Control Cell Core and Low Leakage loading strategies, and octant symmetry. To test the system performance, an optimized cycle was designed and compared against an actual operating cycle of Laguna Verde Nuclear Power Plant, Unit I.
机译:开发了基于遗传算法(GA)并结合启发式规则编码的专家知识的优化系统,用于优化沸水堆(BWR)燃料装载模式的设计。该系统使用基于遗传算法的名为“加载模式优化系统”的计算机程序进行编码,其中,优化代码使用GA来选择候选解决方案,而核心模拟器代码CM-PRESTO对其进行评估。建立了一个多目标函数,以最大化循环能量长度,同时满足用作BWR设计参数的功率和反应性约束。应用启发式规则来满足标准燃料管理建议,例如“控制单元核心”和“低泄漏”加载策略以及八分圆对称性。为了测试系统性能,设计了一个优化的周期,并将其与拉古纳·佛得角核电厂第一单元的实际运行周期进行了比较。

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