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Buckling and postbuckling behaviour of glare\ud laminates containing splices and doublers. Part 2:\ud Numerical modelling

机译:眩光的屈曲和屈曲后的行为\ ud 包含接头和倍增器的层压板。第2部分:\ ud 数值模拟

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摘要

A 3D finite element model using cohesive elements and continuum (bulk) material damage models was developed to examine the progressive damage and failure behaviour of Glare® Fibre Metal Laminate (FML) specimens subjected to in plane compressive loading. The specimens contained internal ‘splice’ and ‘doubler’ features and were either pristine or contained simulated manufacturing defects in the form of artificial delaminations. The initiation and growth of delaminations at the inter-laminar interfaces, damage in the glass fibre reinforced polymer (GFRP) plies, ductile damage in the resin pockets (FM94 epoxy) and the onset of plasticity in the metal layers were examined. Geometric imperfections and load eccentricity were incorporated in an explicit dynamic nonlinear analysis implemented in the software Abaqus/Explicit. A series of buckling tests on specimens with and without artificial delaminations were conducted for validation, which are described in detail in a companion paper. Tests were monitored using Digital Image Cor- relation (DIC) for visualisation of full-field displacements and strains whilst Acoustic Emission (AE) monitoring enabled detection and localisation of the onset and progression of damage. Results for ‘Glare 4B’ specimens incorpo- rating longitudinal and transverse delaminations into both splice and doubler geometries are presented. These results revealed that in order for the finite element analyses to be validated, all the damage and plasticity mechanisms described above need to be accounted for, as well as load eccentricity and geometry imperfections.
机译:开发了一个使用内聚元素和连续(散装)材料损伤模型的3D有限元模型,以检查Glare®纤维金属层压板(FML)试样在平面压缩载荷下的渐进式损伤和破坏行为。这些标本包含内部的“拼接”和“双重”特征,要么是原始的,要么包含人造分层形式的模拟制造缺陷。检查了层间界面处分层的引发和增长,玻璃纤维增​​强聚合物(GFRP)层中的损坏,树脂袋(FM94环氧树脂)中的延性损坏以及金属层中的塑性开始。在Abaqus / Explicit软件中实施的显式动态非线性分析中,纳入了几何缺陷和载荷偏心率。对带有或不带有人工分层的标本进行了一系列屈曲测试,以进行验证,这在随附的论文中进行了详细描述。使用数字图像关联(DIC)监视测试,以显示全场位移和应变,同时通过声发射(AE)监视,可以检测和确定损伤的发生和发展。给出了“ Glare 4B”样品的结果,该样品将纵向和横向分层合并到拼接和倍增几何中。这些结果表明,为了验证有限元分析,必须考虑到上述所有损坏和可塑性机制,以及载荷偏心率和几何缺陷。

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