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Dynamic energy release rate evaluation of rapid crack propagation in discrete element analysis

机译:离散元分析中快速裂纹传播动态能量释放速率评价

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摘要

A numerical procedure for estimating the critical dynamic energy release rate (GI Dc), based on experimental data is proposed. Ageneration phase simulation is conducted where fracture parameters can be determined using an experimentally measured crack propagation history (position of the crack tip as a function of time). The discrete element method is used to simulate the dynamic fracture by implementing a node release technique at the crack tip. The results are compared with analytical data on the dynamic propagation of a crack in a semi infinite plate. It reveals that the node release technique causes dynamic instabilities that can only be corrected by adding numerical damping on the edges of the crack or in the entire sample. On the other hand, the progressive node release technique, based on an elasto-damage zone model does not generate dynamic instabilities. It is shown that for a linear relaxation scheme and a damage zone length equal to themean radius of the discrete elements, results comparable to finite element or analytical methods are obtained in plate structure. The present model offers an alternative to the finite element method to simulate self-similar ormore complex crack growth. It also gives a first proper analysis of the evaluation of the critical dynamic energy release rate in a lattice-discrete model.
机译:提出了一种基于实验数据估算临界动态能量释放率(GI DC)的数值过程。进行迭代阶段模拟,其中可以使用实验测量的裂缝传播历史(作为时间函数的裂缝尖端的位置)来确定裂缝参数。离散元件方法用于通过在裂缝尖端实现节点释放技术来模拟动态裂缝。将结果与分析数据进行比较,关于半无限板中裂缝的动态传播。揭示节点释放技术导致动态不稳定性,只能通过在裂缝边缘或整个样本的边缘上添加数值阻尼来校正。另一方面,基于弹性损伤区域模型的渐进节点释放技术不会产生动态不稳定。结果表明,对于线性松弛方案和等于离散元件的主题半径的损伤区长度,可以在板结构中获得与有限元或分析方法相当的结果。本模型提供了有限元方法来模拟自相似的或摩尔复杂裂纹增长的替代品。它还提供了对晶格离散模型中临界动态能量释放速率的评估的第一种正确分析。

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