新型热管堆芯多目标优化设计的数据驱动多物理场耦合分析方法

IF 7.2 2区 物理与天体物理 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Zhenlan Wang, Junli Gou, Dingyu Jiang, Di Yun
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引用次数: 0

摘要

热管冷却反应堆已经发展了60多年,主要利用陶瓷燃料,如UO2和UN。然而,陶瓷燃料的固有特性限制了热管堆芯功率密度的提高。为了应对这一挑战,本研究提出了一种U-50Zr金属燃料热管堆芯的创新概念设计。在解决热管堆芯多目标、多参数、多物理场耦合设计难题时,引入一种基于数据驱动的多物理场耦合和多目标优化分析的高效设计与优化方法至关重要。为此,利用Matlab、OpenMC和COMSOL开发了三维多物理场耦合分析代码。为了提高计算效率,建立了神经网络代理模型来代替原始代码。此外,利用NSGA-II获得堆芯优化设计方案,以提高堆芯功率密度和降低燃料富集度为目标。最后,在Pareto锋的结果中,对两种不同的堆芯设计方案进行了详细的多物理场耦合分析,分别以低燃料富集度和高功率密度为特征。高功率密度的设计方案具有较低的峰值温度和较低的峰值应力。相比之下,低富集的设计方案提供了更均匀的功率分布和更大的备用反应性。两种设计方案都满足了10年生命周期的运行要求,温度和应力保持在安全范围内。这证明了所提出的设计方法和分析代码的有效性。该研究为U-50Zr金属燃料热管堆芯的设计和多目标优化提供了参考,为今后的瞬态优化工作奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A data-driven multi-physics coupling analysis method for multi-objective optimization design of an innovative heat pipe reactor core
Heat pipe cooled reactors have been developed more than 60 years, primarily utilizing ceramic fuels such as UO2 and UN. However, the inherent characteristics of ceramic fuels impose limitations on the power density improvement of the heat pipe reactor core. In response to this challenge, an innovative conceptual design of a heat pipe reactor core with U-50Zr metallic fuel is proposed in this study. When addressing the multi-objective, multi-parameter and multi-physics coupling design challenges of heat pipe reactor cores, it is essential to introduce an efficient design and optimization method based on data-driven multi-physics coupling and multi-objective optimization analysis. Therefore, a three-dimensional multi-physics coupling analysis code is developed employing Matlab, OpenMC, and COMSOL. To enhance computational efficiency, the neural network surrogate models are established to replace the original code. Additionally, NSGA-II is utilized to obtain the optimal core design schemes, focusing on the objectives of higher power density of the core and lower fuel enrichment. Finally, in the results of the Pareto front, the detailed multi-physics coupling analyses are studied on two different core design schemes characterized by lower fuel enrichment and higher power density of the core, respectively. The design scheme with high power density features lower peak temperatures and lower peak stresses. In contrast, the design scheme with low enrichment provides a more uniform power distribution and greater backup reactivity. Both design schemes satisfy the operational requirements for a ten-year lifecycle, with temperatures and stresses remaining within the safety limits. This demonstrates the effectiveness of the proposed design approach and the analytical code. This study provides a reference for the design and multi-objective optimization of the heat pipe reactor core with U-50Zr metallic fuel and establishes a foundation for future transient optimization efforts.
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来源期刊
Computer Physics Communications
Computer Physics Communications 物理-计算机:跨学科应用
CiteScore
12.10
自引率
3.20%
发文量
287
审稿时长
5.3 months
期刊介绍: The focus of CPC is on contemporary computational methods and techniques and their implementation, the effectiveness of which will normally be evidenced by the author(s) within the context of a substantive problem in physics. Within this setting CPC publishes two types of paper. Computer Programs in Physics (CPiP) These papers describe significant computer programs to be archived in the CPC Program Library which is held in the Mendeley Data repository. The submitted software must be covered by an approved open source licence. Papers and associated computer programs that address a problem of contemporary interest in physics that cannot be solved by current software are particularly encouraged. Computational Physics Papers (CP) These are research papers in, but are not limited to, the following themes across computational physics and related disciplines. mathematical and numerical methods and algorithms; computational models including those associated with the design, control and analysis of experiments; and algebraic computation. Each will normally include software implementation and performance details. The software implementation should, ideally, be available via GitHub, Zenodo or an institutional repository.In addition, research papers on the impact of advanced computer architecture and special purpose computers on computing in the physical sciences and software topics related to, and of importance in, the physical sciences may be considered.
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