A novel approach for full-core mesh generation to enable high-fidelity thermal-hydraulic simulation of nuclear reactor engineering

IF 2.1 3区 工程技术 Q1 NUCLEAR SCIENCE & TECHNOLOGY Nuclear Engineering and Design Pub Date : 2025-01-01 Epub Date: 2024-11-28 DOI:10.1016/j.nucengdes.2024.113684
Xue Miao, Lingyu Dong, Zhaoshun Wang, Lei Zhang, Jialei Wang, Shihe Wang, Yunhan Zhang, Hongzhen Zhang, Fangxiao Zhang, Changjun Hu
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Abstract

Thermal-hydraulic analysis is crucial in reactor engineering. High-fidelity simulations, utilizing advanced computing techniques and supercomputing resources, are highly regarded. High-quality fluid mesh models are essential for complex reactors’ high-fidelity simulations. Using existing tools for model construction has limitations in quality control, performance, user dependency, file generation, and visualization. Estimating time and memory consumption for full-core meshing is also not possible. A R-IMG approach is designed, it effortlessly creates mesh models for intricate flow field, demonstrating exceptional modeling performance, robustness, scalability, and reduced user dependency, while its flexible file manner effectively addresses challenges in generating and visualizing large-scale mesh files. Extensive testing validates R-IMG’s effectiveness and reliability in meshing the reactor’s flow field. It efficiently generates high-quality meshes for the complex flow field in the entire fuel region of CEFR, completing the process within 7 h and 10GB of memory. The resulting model has around 14 billion cells and an average quality of 0.7. R-IMG achieves a maximum parallel scale of 3200 processes for file generation, with approximately 90% parallel efficiency. These results demonstrate that R-IMG outperforms existing tools in core meshing and shows significant potential for full-core meshing. Successful visualization of models and benchmark tests provide evidence for models’ correctness.
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一种实现核反应堆工程高保真热工模拟的全堆芯网格生成新方法
热水力分析在反应堆工程中具有重要意义。高保真仿真,利用先进的计算技术和超级计算资源,受到高度重视。高质量的流体网格模型对于复杂反应器的高保真仿真是必不可少的。使用现有的工具进行模型构建在质量控制、性能、用户依赖性、文件生成和可视化方面存在限制。估计全核网格的时间和内存消耗也是不可能的。设计了R-IMG方法,它毫不费力地为复杂的流场创建网格模型,展示了卓越的建模性能,鲁棒性,可扩展性,并减少了用户依赖性,而其灵活的文件方式有效地解决了生成和可视化大规模网格文件的挑战。大量的试验验证了R-IMG在反应器流场网格划分中的有效性和可靠性。高效生成CEFR整个燃料区复杂流场的高质量网格,在7小时内完成,占用10GB内存。得到的模型大约有140亿个细胞,平均质量为0.7。R-IMG实现了3200个文件生成进程的最大并行规模,并行效率约为90%。这些结果表明,R-IMG在核心网格划分方面优于现有工具,并显示出全核心网格划分的巨大潜力。模型的成功可视化和基准测试为模型的正确性提供了证据。
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来源期刊
Nuclear Engineering and Design
Nuclear Engineering and Design 工程技术-核科学技术
CiteScore
3.40
自引率
11.80%
发文量
377
审稿时长
5 months
期刊介绍: Nuclear Engineering and Design covers the wide range of disciplines involved in the engineering, design, safety and construction of nuclear fission reactors. The Editors welcome papers both on applied and innovative aspects and developments in nuclear science and technology. Fundamentals of Reactor Design include: • Thermal-Hydraulics and Core Physics • Safety Analysis, Risk Assessment (PSA) • Structural and Mechanical Engineering • Materials Science • Fuel Behavior and Design • Structural Plant Design • Engineering of Reactor Components • Experiments Aspects beyond fundamentals of Reactor Design covered: • Accident Mitigation Measures • Reactor Control Systems • Licensing Issues • Safeguard Engineering • Economy of Plants • Reprocessing / Waste Disposal • Applications of Nuclear Energy • Maintenance • Decommissioning Papers on new reactor ideas and developments (Generation IV reactors) such as inherently safe modular HTRs, High Performance LWRs/HWRs and LMFBs/GFR will be considered; Actinide Burners, Accelerator Driven Systems, Energy Amplifiers and other special designs of power and research reactors and their applications are also encouraged.
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