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Delamination propagation analyses of spar wingskin joints made with curved laminated FRP composite panels

机译:弧形层压玻璃钢复合板制成的翼梁侧翼节点的分层扩展分析

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摘要

Initiation and propagation of inter-laminar delamination in adhesive bonded spar wingskin joint (SWJ) made with laminated fibre-reinforced plastic (FRP) composite curved panels have been studied employing three-dimensional finite element analyses. In-plane and out-of-plane normal and shear stress distributions are seen to be highly three-dimensional in nature. Tsai-Wu coupled stress failure criteria have been employed to identify critical locations of onset of delamination-induced damage. This occurs underneath the toe-end of the spar overlap and at the inter-laminar surface between the first and second plies of the curved FRP wingskin panel. Significant edge effects on the joint strength have been observed due to the curvature geometry of the composite wingskin panels. Non-linear finite element analyses have been carried out for study of delamination propagation using contact and multi point constraint (MPC) elements. The use of contact elements prevents inter-penetration of delaminated surfaces. Whereas, sequential release of MPC elements facilitates computation of opening, sliding and cross-sliding modes of delamination-induced strain energy release rates (SERR) by using virtual crack closure technique. Variation in delamination lengths significantly effects the variation of peel and inter-laminar shear stresses and different modes of SERRs. Variations on the two delamination fronts are seen to be quite different indicating dis-similar propagation rates. The Mode I SERR (G(I)) predominantly governs the delamination propagation in the SWJ.
机译:利用三维有限元分析,研究了层压纤维增强塑料(FRP)复合弯曲面板制成的粘结翼梁翼皮接头(SWJ)中层间分层的萌生和传播。平面内和平面外的法向和切应力分布在本质上被认为是高度三维的。 Tsai-Wu耦合应力破坏准则已被用来识别分层诱发损伤发作的关键位置。这发生在翼梁交叠的趾端下方和弯曲的FRP侧翼板的第一层和第二层之间的层间表面处。由于复合机翼面板的曲率几何形状,已经观察到了对接缝强度的明显边缘影响。已经进行了非线性有限元分析,以研究使用接触和多点约束(MPC)元素的分层传播。接触元件的使用防止了分层表面的相互渗透。而MPC元素的顺序释放通过使用虚拟裂纹闭合技术,可以方便地计算分层诱发的应变能释放速率(SERR)的打开,滑动和横向滑动模式。分层长度的变化会显着影响剥离强度和层间剪切应力的变化以及SERR的不同模式。在两个分层前沿的变化被认为是完全不同的,表明不同的传播速率。模式I SERR(G(I))主要控制SWJ中的分层传播。

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