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首页> 外文期刊>Finite Elements in Analysis and Design >A high-performance multiscale space-time approach to high cycle fatigue simulation based on hybrid CPU/GPU computing
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A high-performance multiscale space-time approach to high cycle fatigue simulation based on hybrid CPU/GPU computing

机译:基于混合CPU / GPU计算的高循环疲劳仿真的高性能多尺度时空方法

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摘要

A multiscale space/time computational framework for high cycle fatigue (HCF) life predictions is established by integrating the extended space-time finite element method (XTFEM) with a multiscale progressive damage model. While the robustness of the multiscale space/time method has been previously demonstrated, the associated high computational cost remains a critical barrier for practical applications. In this work, a novel hybrid iterative/direct linear system solver is first proposed with a unique preconditioner. Computational efficiency is further improved by taking advantage of the high-performance computing platform featuring hierarchy of the distributed- and the shared-memory parallelisms using CPUs and GPUs. Robustness of the accelerated framework is demonstrated through benchmark problems. It is shown that the serial version of the hybrid solver is at least 1-2 orders of magnitude faster in computing time and cheaper in memory consumption than the conventional sparse direct or iterative solver, while the parallel version efficiently handles XTFEM stiffness matrix equations with over 100 million unknowns using 64 CPU cores. Optimal speedups are achieved in the parallel implementations of the multiscale progressive damage model using either CPUs or GPUs. HCF simulations on 3D specimens are performed to quantify key effects due to mean stress and multiaxial load conditions.
机译:通过将扩展的时效时间有限元方法(XTFEM)与多尺度逐行损伤模型集成,建立了高循环疲劳(HCF)寿命预测的多尺度空间/时间计算框架。虽然先前已经证明了多尺度空间/时间方法的稳健性,但是相关的高计算成本仍然是实际应用的关键障碍。在这项工作中,首先用独特的预处理器提出一种新型混合迭代/直接线性系统求解器。通过利用具有CPU和GPU的分布式和共享内存并行性的层次结构的高性能计算平台,进一步提高了计算效率。通过基准问题证明加速框架的稳健性。结果表明,混合求解器的串行版本在计算时间内至少1-2个级,内存消耗比传统的稀疏直接或迭代求解器更便宜,而并行版本有效地处理XTFEM刚度矩阵方程使用64个CPU核心100万个未知数。使用CPU或GPU的多尺度逐行损坏模型的并行实现实现了最佳加速。进行3D样本的HCF模拟以量化由于平均应力和多轴载荷条件而定量的关键效果。

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