A call to arms for task parallelism in multi-scale materials modeling

被引:25
|
作者
Barton, Nathan R. [1 ]
Bernier, Joel V. [1 ]
Knap, Jaroslaw [2 ]
Sunwoo, Anne J. [1 ]
Cerreta, Ellen K. [3 ]
Turner, Todd J. [4 ]
机构
[1] Lawrence Livermore Natl Lab, Livermore, CA 94550 USA
[2] USA, Res Lab, Aberdeen Proving Ground, MD 21005 USA
[3] Los Alamos Natl Lab, Los Alamos, NM 87545 USA
[4] USAF, Res Lab, Wright Patterson AFB, OH 45433 USA
关键词
solids; materials science; multiscale; plasticity; parallelization; finite element methods; POLYCRYSTAL PLASTICITY; DEFORMATION-BEHAVIOR; CRYSTAL PLASTICITY; TEXTURE; MICROSTRUCTURE; ARCHITECTURE; ORIENTATION; PREDICTION; ALGORITHM; EVOLUTION;
D O I
10.1002/nme.3071
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Simulations based on multi-scale material models enabled by adaptive sampling have demonstrated speedup factors exceeding an order of magnitude. The use of these methods in parallel computing is hampered by dynamic load imbalance, with load imbalance measurably reducing the achieved speedup. Here we discuss these issues in the context of task parallelism, showing results achieved to date and discussing possibilities for further improvement. In some cases, the task parallelism methods employed to date are able to restore much of the potential wall-clock speedup. The specific application highlighted here focuses on the connection between microstructure and material performance using a polycrystal plasticity-based multi-scale method. However, the parallel load balancing issues are germane to a broad class of multi-scale problems. Copyright (C) 2011 John Wiley & Sons, Ltd.
引用
收藏
页码:744 / 764
页数:21
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