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Cohesive zone modeling for mode I facesheet to core delamination of sandwich panels accounting for fiber bridging

机译:I型面板到夹心板芯分层的粘合区域建模,这说明了光纤桥接

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AbstractA new cohesive zone traction-separation law, which includes the effects of fiber bridging, has been developed, implemented with a finite element (FE) model, and applied to simulate the delamination between the facesheet and core of a composite honeycomb sandwich panel. The proposed traction-separation law includes a standard initial cohesive component, which accounts for the initial interfacial stiffness and energy release rate, along with a new component to account for the fiber bridging contribution to the delamination process. Single Cantilever Beam tests on aluminum honeycomb sandwich panels with carbon fiber reinforced polymer facesheets were used to characterize and evaluate the new formulation and its finite element implementation. These tests, designed to evaluate the mode I toughness of the facesheet to core interface, exhibited significant fiber bridging and large crack process zones, giving rise to a concave downward/concave upward pre-peak shape in the load–displacement curve. Unlike standard cohesive formulations, the proposed formulation captures this observed shape, and its results have been shown to be in excellent quantitative agreement with experimental load–displacement results, representative of a payload fairing structure, as well as local strain fields measured with digital image correlation.
机译: 摘要 已开发了一种新的内聚区牵引力分离法则,其中包括光纤桥接的影响,并通过有限元(FE )模型,并用于模拟复合蜂窝夹芯板的面板和内芯之间的分层。拟议的牵引分离定律包括一个标准的初始内聚力分量,该分量考虑了初始界面刚度和能量释放速率,以及一个新的分量以考虑纤维桥接对分层过程的影响。在铝蜂窝复合板和碳纤维增强聚合物面板上进行单悬臂梁测试,以表征和评估新配方及其有限元实现。这些旨在评估面板到芯界面的I型韧性的测试显示出明显的纤维桥接和较大的裂纹加工区,从而在载荷-位移曲线中产生了向下凹/向上凹的峰前形状。与标准的粘性配方不同,建议的配方捕获了这种观察到的形状,并且其结果与实验载荷-位移结果(有效载荷整流罩结构的代表)以及通过数字图像相关性测得的局部应变场具有良好的定量一致性。 。

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