在数千个处理器上使用自适应网格细化的高性能反应性流体流动模拟

A. Calder, B. C. Curtis, L. Dursi, B. Fryxell, G. Henry, P. MacNeice, K. Olson, P. Ricker, R. Rosner, F. Timmes, H. Tufo, J. W. Turan, M. Zingale
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引用次数: 65

摘要

本文给出了在迄今为止研究的最大域和最佳空间分辨率下,超新星核燃烧锋的模拟和性能结果。这些模拟是在桑迪亚国家实验室的英特尔ascii - red机器上使用FLASH进行的,FLASH是芝加哥大学天体物理热核闪光中心开发的一种代码。FLASH是一种模块化、自适应网格、并行模拟代码,能够处理天体物理环境中的可压缩、反应性流体流动。FLASH主要使用Fortran 90编写,使用消息传递接口库进行处理器间通信和可移植性,并使用PARAMESH包来管理块结构的自适应网格,该网格仅在需要分辨率的地方放置块,并轻松跟踪快速变化的流特征,例如爆炸前沿。我们描述了关键算法及其实现,以及在6420个64位算术的ascii - red处理器上实现238 GFLOPS的持续性能所需的优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-Performance Reactive Fluid Flow Simulations Using Adaptive Mesh Refinement on Thousands of Processors
We present simulations and performance results of nuclear burning fronts in super- novae on the largest domain and at the finest spatial resolution studied to date. These simulations were performed on the Intel ASCI-Red machine at Sandia National Laboratories using FLASH, a code developed at the Center for Astrophysical Thermonuclear Flashes at the University of Chicago. FLASH is a modular, adaptive mesh, parallel simulation code capable of handling compressible, reactive fluid flows in astrophysical environments. FLASH is written primarily in Fortran 90, uses the Message-Passing Interface library for inter-processor communication and portability, and employs the PARAMESH package to manage a block-structured adaptive mesh that places blocks only where resolution is required and tracks rapidly changing flow features, such as detonation fronts, with ease. We describe the key algorithms and their implementation as well as the optimizations required to achieve sustained performance of 238 GFLOPS on 6420 processors of ASCI-Red in 64 bit arithmetic.
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