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A study of dynamic pull-through failure of composite bolted joints using the stacked-shell finite element approach

机译:复合材料螺栓连接的动态拉拔破坏的叠层有限元研究

摘要

Pull-through failure of bolted joints in composites is due to the relatively low through-thickness properties of laminated materials. Recently it has been identified that pull-through failure also plays an important role in the ultimate bearing load and total energy absorption of bolted joints, especially under dynamic conditions. It has been previously found that bolted joints loaded in bearing exhibit rate sensitivity whereas bolts loaded in pull-through experience very little sensitivity, for nearly identical joint configurations. The primary focus of this paper was to use explicit finite element simulation of pull-through failure to shed light on discrepancies between experimentally observed rate sensitivity for seemingly similar tests. The paper uses the stacked-shell modelling approach to efficiently model the interaction of delamination and ply failure under the complex dynamic load state.The results of the simulation indicated that the properties of the interface susceptible to loading rate sensitivity, Mode I and II strain energy release rates (SERR), did not have a great effect on the overall joint response; despite the prevalence of delamination during the failure process. A weak relationship between Mode II SERR and joint response was discovered which was consistent with experimental observations.
机译:复合材料中螺栓连接的拉拔失效是由于层压材料的相对较低的穿透厚度特性造成的。最近,人们已经确定,穿通失效在螺栓连接的最终轴承载荷和总能量吸收中也起着重要作用,尤其是在动态条件下。先前已经发现,对于几乎相同的接头构造,轴承中加载的螺栓接头表现出速率敏感性,而拉拔法中加载的螺栓几乎没有敏感性。本文的主要重点是使用显式有限元模拟的穿通失效,以阐明看似相似的试验在实验观察到的速率敏感性之间的差异。本文使用叠层壳模型方法对复杂的动态载荷状态下的分层和层板破坏的相互作用进行了有效的建模。仿真结果表明,界面特性易受载荷率敏感性,I和II型应变能的影响。释放速率(SERR)对整体关节反应没有很大影响;尽管在故障过程中普遍发生分层。发现II型SERR与关节反应之间存在弱关系,这与实验观察一致。

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