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Isogeometric Analysis of Damage and Residual-Strength in Aerospace Composite Structures Subjected to Low-Velocity Impact

机译:低速冲击的航空复合结构中损伤和残余强度的异步分析

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multi-layered shell modelling approach is developed in the framework of the Isogeometric Analysis (IGA), based on a higher-order accurate and higher-order continuous Non-Uniform Rational B-Splines (NURBS), which allows us to adopt a computationally efficient rotation-free shell formulation. The proposed model is capable of predicting the interlaminar damage modes such as delamination, and the intralaminar damage modes such as matrix cracking due to transverse shear stress and fiber breaking. The IGA shell layers, which represent a single lamina or a groups of lamina, are connected through cohesive interfaces governed by local traction-separation laws. The intralaminar elasto-plastic damage response and the in-plane damage modes related to tension, compression and shear, are evaluated layer by layer at the level of each ply. Two numerical examples are shown. The End-Notched Flexure (ENF) test is first presented as a benchmark case to validate the cohesive-interface formulation. Then, a simple low-velocity impact scenario is considered. The smoothness of the NURBS shell discretization is shown to be beneficial for the penalty formulations adopted for both the cohesive interface and contact with the impactor. Also, due to the higheraccuracy geometry and solution representation enabled via NURBS basis functions, it is found that with the proposed IGA approach, issues that typically affect impact problems, such as through-thickness element distortion/inversion which may cause accuracy loss, shortening of time steps, and numerical instability/crashing of the code, are often circumvented.
机译:多层壳建模方法是在异步测定分析(IGA)的框架中开发的,基于高阶准确和高阶连续的非均匀理性B样条(NURBS),这使我们能够采用计算效率自由旋转壳配方。所提出的模型能够预测由于横向剪切应力和纤维破坏引起的interAminar损伤模式,例如分层,诸如矩阵裂缝等intorAminar损伤模式。代表单个椎板或一组椎板的IgA壳层通过由当地牵引分离法定治的粘性接口连接。与张力,压缩和剪切有关的腔内弹塑性损伤响应和面内损伤模式在每个层的水平下通过层进行层。显示了两个数值例子。首先将结束偏移弯曲(ENF)测试作为基准案例,以验证凝聚界面配方。然后,考虑简单的低速影响情景。 NURBS外壳离散化的平滑度被证明对粘性界面采用的罚款和与撞击器接触是有益的。另外,由于通过NURBS基本功能启用了更高的几何和解决方案表示,发现具有所提出的IGA方法,通常影响影响问题的问题,例如可能导致精度损失的通孔元件失真/反转,缩短时间步骤,以及代码的数值不稳定性/崩溃通常是避难的。

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