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A hybrid, massively parallel implementation of a genetic algorithm for optimization of the impact performance of a metal/ polymer composite plate

机译:遗传算法的混合,大规模并行实现,用于优化金属/聚合物复合板的冲击性能

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摘要

A hybrid parallelization method composed of a coarse-grained genetic algorithm (GA) and fine-grained objective function evaluations is implemented on a heterogeneous computational resource consisting of 16 IBM Blue Gene/P racks, a single x86 cluster node and a high-performance file system. The GA iterator is coupled with a finite-element (FE) analysis code developed in house to facilitate computational steering in order to calculate the optimal impact velocities of a projectile colliding with a polyurea/structural steel composite plate. The FE code is capable of capturing adiabatic shear bands and strain localization, which are typically observed in high-velocity impact applications, and it includes several constitutive models of plasticity, viscoelasticity and viscoplasticity for metals and soft materials, which allow simulation of ductile fracture by void growth. A strong scaling study of the FE code was conducted to determine the optimum number of processes run in parallel. The relative efficiency of the hybrid, multi-level parallelization method is studied in order to determine the parameters for the parallelization. Optimal impact velocities of the projectile calculated using the proposed approach, are reported.
机译:在由16个IBM Blue Gene / P机架,一个x86集群节点和一个高性能文件组成的异构计算资源上,实现了一种由粗粒度遗传算法(GA)和细粒度目标函数评估组成的混合并行化方法。系统。 GA迭代器与内部开发的有限元(FE)分析代码相结合,以促进计算转向,从而计算与聚脲/结构钢复合板相撞的弹丸的最佳撞击速度。 FE代码能够捕获绝热剪切带和应变局部化,这在高速冲击应用中通常会观察到,它包含金属和软材料的几个塑性,粘弹性和粘塑性本构模型,从而可以通过模拟来模拟延性断裂。无效的增长。对FE代码进行了强大的扩展研究,以确定并行运行的最佳进程数。研究了混合多级并行化方法的相对效率,以确定并行化的参数。报告了使用所提出的方法计算出的弹丸的最佳撞击速度。

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