DocumentCode
3238027
Title
High-Performance Reactive Fluid Flow Simulations Using Adaptive Mesh Refinement on Thousands of Processors
Author
Calder, A.C. ; Curts, B.C. ; Dursi, L.J. ; Fryxell, B. ; Henry, G. ; MacNece, P. ; Olson, K. ; Ricker, P. ; Rosner, R. ; Timmes, F.X. ; Tufo, H.M. ; Truran, J.W. ; Zingale, M.
Author_Institution
The University of Chicago
fYear
2000
fDate
04-10 Nov. 2000
Firstpage
56
Lastpage
56
Abstract
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.
Keywords
Adaptive mesh refinement; Arithmetic; Chemical elements; Computational modeling; Equations; Fluid flow; Laboratories; Libraries; Packaging; Spatial resolution;
fLanguage
English
Publisher
ieee
Conference_Titel
Supercomputing, ACM/IEEE 2000 Conference
ISSN
1063-9535
Print_ISBN
0-7803-9802-5
Type
conf
DOI
10.1109/SC.2000.10010
Filename
1592769
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