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Accelerating computational analyses of low velocity impact and compression after impact of laminated composite materials

机译:加速层压复合材料冲击后低速冲击和压缩的计算分析

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Computational time can be significantly reduced in the analysis of low velocity impact (LVI) and compression after impact (CAI) response of composite materials with the method proposed in this paper. Because of the complexity of the problem and the necessity to capture the damage details with sufficient fidelity, existing computational models usually take days to run even on high performance computing (HPC) clusters. A framework to reduce computational time by adopting a smart mesh paradigm, an efficient modeling strategy, and a damage state transferring algorithm between the LVI and CAI meshes is proposed. The model is validated against the LVI and CAI experimental results of a [45/ - 45/0/45/ - 45/90/45/ - 45/45/ -45](s) T800s/3900-2B laminate with impact energy below the barely visible impact damage (BVID) limit. Compared to prior computational models, the computational time of the new approach leads to a 67% reduction, while correctly capturing damage patterns and accurately predicting compressive strength after impact.
机译:在复合材料与本文提出的方法的情况下,可以显着降低计算时间,并在复合材料的冲击后的压缩(CAI)响应。由于问题的复杂性和捕获损坏细节的功能,即使在高性能计算(HPC)集群上,现有的计算模型通常需要几天运行。提出了一种通过采用智能网格范例,高效建模策略和LVI和CAI网格之间的损坏状态传输算法来减少计算时间的框架。该模型针对LVI和CAI实验结果验证[45 / - 45 / 0/45 / - 45/90/45 / - 45 / -45 / -45](S)T800S / 3900-2B层压板,具有冲击能量低于几乎可见的冲击损伤(BVID)限制。与现有的计算模型相比,新方法的计算时间降低了67%,同时正确地捕获损坏模式,并准确地预测冲击后的抗压强度。

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