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Simulation of delamination under impact using a global local method in explicit dynamics

机译:在显式动力学中使用全局局部方法模拟冲击下的分层

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摘要

Despite their interest, multi-scale methods based on domain decomposition are rarely used or even implemented within legacy codes. The reason is that their implementation is very demanding and that the robustness of their performance in industrial applications is questionable. In order to try to overcome these limitations, we recently adapted to the case of explicit dynamics a global local multi-scale method [5]. So far, the method has been implemented in a Matlab code and validated on simple elastic cases. In this paper, we present the implementation of the method in Abaqus/Explicit using its co-Simulation features to couple two separate Abaqus/Explicit analyses, running at different scales. The approach is illustrated in the case of the simulation of delamination under high velocity impact. A key aspect of the method, if compared to the one based on domain decomposition, is the fact that the global model covers the whole structure. This feature has been used to treat contact at the global level only, which greatly simplifies the implementation and enhances the computational performance of the method. The effectiveness of the method has been verified by comparing the results with other approaches already available in Abaqus/Explicit: the tie constraint between different regions of the model and the sub-modeling approach.
机译:尽管有兴趣,但基于域分解的多尺度方法很少在传统代码中使用,甚至没有实现。原因是它们的实现要求很高,并且在工业应用中其性能的鲁棒性值得怀疑。为了试图克服这些局限性,我们最近将全局局部多尺度方法应用于显式动力学的情况[5]。到目前为止,该方法已在Matlab代码中实现,并已在简单的弹性情况下进行了验证。在本文中,我们将使用其联合仿真功能结合不同规模运行的两个单独的Abaqus / Explicit分析,介绍该方法在Abaqus / Explicit中的实现。在高速冲击下的分层模拟中说明了该方法。与基于域分解的方法相比,该方法的一个关键方面是全局模型涵盖了整个结构。此功能仅用于全局范围内的联系,这大大简化了实现并提高了该方法的计算性能。通过将结果与Abaqus / Explicit中已经可用的其他方法进行比较,验证了该方法的有效性:模型不同区域之间的联系约束与子建模方法。

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