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Parallel Computing of Multi-scale Finite Element Sheet Forming Analyses Based on Crystallographic Homogenization Method

机译:基于晶体均质法的多尺度有限元纸张形成分析的平行计算

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Since the multi-scale finite element analysis (FEA) requires large computation time, development of the parallel computing technique for the multi-scale analysis is inevitable. A parallel elastic/crystalline viscoplastic FEA code based on a crystallographic homogenization method has been developed using PC cluster. The homogenization scheme is introduced to compute macro-continuum plastic deformations and material properties by considering a polycrystal texture. Since the dynamic explicit method is applied to this method, the analysis using micro crystal structures computes the homogenized stresses in parallel based on domain partitioning of macro-continuum without solving simultaneous linear equations. The micro-structure is defined by the Scanning Electron Microscope (SEM) and the Electron Back Scan Diffraction (EBSD) measurement based crystal orientations. In order to improve parallel performance of elastoplasticity analysis, which dynamically and partially increases computational costs during the analysis, a dynamic workload balancing technique is introduced to the parallel analysis. The technique, which is an automatic task distribution method, is realized by adaptation of subdomain size for macro-continuum to maintain the computational load balancing among cluster nodes. The analysis code is applied to estimate the polycrystalline sheet metal formability.
机译:由于多尺度有限元分析(FEA)需要大的计算时间,因此对多尺度分析的并行计算技术的开发是不可避免的。使用PC簇开发了一种基于晶体均质化方法的平行弹性/结晶粘液FEA码。引入均质化方案以通过考虑多晶纹理来计算宏观连续塑性变形和材料特性。由于将动态显式方法应用于该方法,因此使用微晶结构的分析基于宏 - 连续体的域分区来并行地计算均质应力,而不求解同时线性方程。微结构由扫描电子显微镜(SEM)和电子背扫描衍射(EBSD)的基于晶体取向限定。为了改善弹性塑性分析的平行性能,它在分析期间动态地提高计算成本,引入了动态工作负载平衡技术。并行分析。作为自动任务分配方法的技术是通过适应宏连续统计的子域大小来实现,以维持群集节点之间的计算负载平衡。应用分析码来估计多晶钣金可成形性。

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