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A Multiscale/Cohesive Zone Model for Composite Laminate Impact Damage

机译:复合层压板撞击损伤的多尺度/凝聚区模型

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Interface damage mechanics, or cohesive zone models, have been developed over the last decade as a method of modeling crack growth in a material or debonding between two different materials. These methods have alleviated many of the numerical problems inherent in crack modeling, including the large length scale difference between crack fronts and crack areas, stress singularities, and the adaptation of crack propagation criteria to non-linear materials. Cohesive zone models can also predict crack initiation at any number of predetermined possible crack locations. However, researchers have also found that numerical instabilities in the solutions emerge if the finite element mesh is too coarse relative to the crack process radius. Consequently, these have been practical only for very small structures, on the order of tens of millimeters, without the use of supercomputers. We will show that changing the order of numerical integration of the interface properties independently from their spatial discretization solves this convergence problem and in most cases decreases the total computation time, allowing for simulations of much larger structures. We will also show how these results are incorporated into our multilength scale model for predicting impact damage in laminated composite plates.
机译:界面损坏力学或粘性区域模型在过去的十年中已经开发出一种在两种不同材料之间建模的裂纹增长或剥离的方法。这些方法减轻了裂缝建模中固有的许多数值问题,包括裂缝前沿和裂缝区域,应力奇点和裂缝传播标准对非线性材料的大长度差异。凝聚区模型还可以在任何数量的预定可能的裂缝位置预测破裂启动。然而,研究人员还发现,如果有限元网格相对于裂缝过程半径太粗糙,则解决方案中的数值不稳定性出现。因此,这些仅用于非常小的结构,大约几十毫米的结构,而不使用超级计算机。我们将显示改变接口属性的数值集成顺序,独立地从其空间离散化解决了这种收敛问题,并且在大多数情况下,在大多数情况下降低总计算时间,允许模拟更大的结构。我们还将展示这些结果如何纳入我们的多重规模模型,以预测层压复合板中的冲击损伤。

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