PARVMEC:一种高效、可扩展的变分矩平衡码实现

S. Seal, S. Hirshman, A. Wingen, R. Wilcox, M. Cianciosa, E. Unterberg
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引用次数: 8

摘要

将磁约束等离子体维持在稳定平衡状态的能力,对于托卡马克和仿星器等核聚变装置的最佳运行和成本效益至关重要。变分矩平衡码(VMEC)是核聚变科学家用于计算磁流体动力学(MHD)平衡和研究受限构型三维等离子体物理的事实上的串行应用程序。现代聚变能实验具有更大的系统规模和更多的交互实验工作流程,两者都要求更快的计算工作负载分析周转时间,这强调了顺序VMEC的能力。在本文中,我们提出了PARVMEC,一个高效的并行版本的顺序,能够扩展到数千个处理器在分布式内存机器上。PARVMEC是一个非线性代码,具有多个数值物理模块,每个模块都有自己的计算复杂性。以Cray XC30超级计算机1024核的扩展结果为支撑,给出了详细的加速分析。根据PARVMEC执行模式的不同,有一到两个数量级的加速改进。PARVMEC首次为聚变科学家提供了最先进的能力,可以在前所未有的规模上对磁约束等离子体进行快速、高保真度的分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PARVMEC: An Efficient, Scalable Implementation of the Variational Moments Equilibrium Code
The ability to sustain magnetically confined plasma in a state of stable equilibrium is crucial for optimal and cost-effective operations of fusion devices like tokamaks and stellarators. The Variational Moments Equilibrium Code (VMEC) is the de-facto serial application used by fusion scientists to compute magnetohydrodynamics (MHD) equilibria and study the physics of three dimensional plasmas in confined configurations. Modern fusion energy experiments have larger system scales with more interactive experimental workflows, both demanding faster analysis turnaround times on computational workloads that are stressing the capabilities of sequential VMEC. In this paper, we present PARVMEC, an efficient, parallel version of its sequential counterpart, capable of scaling to thousands of processors on distributed memory machines. PARVMEC is a non-linear code, with multiple numerical physics modules, each with its own computational complexity. A detailed speedup analysis supported by scaling results on 1,024 cores of a Cray XC30 supercomputer is presented. Depending on the mode of PARVMEC execution, speedup improvements of one to two orders of magnitude are reported. PARVMEC equips fusion scientists for the first time with a state-of-the-art capability for rapid, high fidelity analyses of magnetically confined plasmas at unprecedented scales.
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