用于先进设计的超大规模多物理场核反应堆模拟

Elia Merzari, Steven Hamilton, Thomas Evans, M. Min, Paul F. Fischer, S. Kerkemeier, Jun Fang, Paul Romano, Yu-Hsiang Lan, Malachi Phillips, E. Biondo, K. Royston, Tim Warburton, Noel Chalmers, T. Rathnayake
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引用次数: 0

摘要

ENRICO 是在美国能源部超大规模计算项目 (ECP) 框架下开发的一个耦合应用程序,旨在对先进核反应堆进行建模。它将辐射传输与热和流体模拟结合在一起,包括高保真、高分辨率蒙特卡洛代码 Shift 和计算流体动力学代码 NekRS。NekRS 是一种高性能的开源代码,用于模拟不可压缩和低马赫流体流动、传热和燃烧,尤其侧重于复杂域中的湍流。它基于快速收敛的高阶谱元离散,具有最小数值耗散和分散的特点。基于快速 OCCA 的内核库 libParanumal 建立了最先进的多级预处理、高效的高阶时间分割方法和运行时自适应通信策略,从而为当前和未来的高性能计算平台提供了可扩展性和可移植性。在前沿领域,Nek5000/RS 最近实现了前所未有的里程碑,突破了 10 亿个谱元和 3,500 亿个自由度。Shift 在全核心核反应堆模拟中展示了每秒传输 10 亿个以上粒子的能力,这些模拟在 Frontier 上具有完整的随温度变化的连续能物理特性。Shift 在 Frontier 的 8192 个节点上实现了 97.8%的弱扩展效率,并在 214 896 个燃料针区计算出了 6 个反应,统计误差低于 1%,这在蒙特卡罗传输应用中尚属首次。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exascale Multiphysics Nuclear Reactor Simulations for Advanced Designs
ENRICO is a coupled application developed under the U.S. Department of Energy's Exascale Computing Project (ECP) targeting the modeling of advanced nuclear reactors. It couples radiation transport with heat and fluid simulation, including the high-fidelity, highresolution Monte-Carlo code Shift and the Computational fluid dynamics code NekRS. NekRS is a highly-performant open-source code for simulation of incompressible and low-Mach fluid flow, heat transfer, and combustion with a particular focus on turbulent flows in complex domains. It is based on rapidly convergent high-order spectral element discretizations that feature minimal numerical dissipation and dispersion. State-of-the-art multilevel preconditioners, efficient high-order time-splitting methods, and runtime-adaptive communication strategies are built on a fast OCCA-based kernel library, libParanumal, to provide scalability and portability across the spectrum of current and future high-performance computing platforms. On Frontier, Nek5000/RS has recently achieved an unprecedented milestone in breaching over 1 billion spectral elements and 350 billion degrees of freedom. Shift has demonstrated the capability to transport upwards of 1 billion particles per second in full core nuclear reactor simulations featuring complete temperature-dependent, continuous-energy physics on Frontier. Shift achieved a weak-scaling efficiency of 97.8% on 8192 nodes of Frontier and calculated 6 reactions in 214,896 fuel pin regions below 1% statistical error yielding first-of-a-kind resolution for a Monte Carlo transport application.
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