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基于数据驱动的移动式微型核反应堆屏蔽智能优化设计研究

  • Kaihui Lei
  • , Hongchun Wu
  • , Qingming He
  • , Yi Cao
  • , Xiaojing Li
  • , Guoming Liu
  • Xi'an Jiaotong University
  • China Nuclear Power Engineering Co. Ltd.

科研成果: 期刊稿件文章同行评审

3 引用 (Scopus)

摘要

In order to expedite the design process of lightweight reactor shielding, a multiobjective intelligent optimization algorithm coupled with the data-driven surrogate model is employed to optimize the operational shielding of a land-based micro-mobile reactor based on multiple constraints and engineering preferences. We initially construct the dataset by sampling advanced shielding material and geometry’s parameters in the variable-scale optimization space and train the surrogate model (SN-MscaleDNN), which consists of the multi-frequency scale neural network called MscaleDNN and the GPU-parallel 1-D neutron-photon coupling transport SN solver, to achieve stable, accurate, and efficient dose rate prediction. This model is then integrated with the NSGA-II genetic algorithm, incorporating penalty functions and engineering preference models, to achieve the final shielding optimization that satisfies multiple constraints such as safety, manufacturing, and mechanical limitations. The results confirm the surrogate model's ability to accurately predict dose rates of one shielding scheme at a millisecond level with its generalization error under 10%. Furthermore, the coupled optimization algorithm enables the efficient search for more shielding schemes that meet engineering constraints and preferences, thereby offering novel insights into the lightweight shielding optimization of micro-mobile reactors in a variable-scale space.

投稿的翻译标题Research on Data-driven Intelligent Optimization Design of Micro-mobile Nuclear Reactor Shielding
源语言繁体中文
页(从-至)193-201
页数9
期刊Hedongli Gongcheng/Nuclear Power Engineering
46
2
DOI
出版状态已出版 - 4月 2025

关键词

  • Data-driven
  • Micro-mobile nuclear reactor
  • Multi-objective optimization
  • Neural network
  • Shielding optimization design
  • Surrogate model

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