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Quasi-static strength and fatigue life of hybrid (bonded/bolted) composite single-lap joints

机译:混合(粘结/螺栓)复合单搭接接头的准静态强度和疲劳寿命

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The strength and fatigue life of hybrid (bonded/bolted) joints with carbon-fibre reinforced plastic adherends have been investigated. The effect of adhesive material properties and laminate stacking sequence on the joint structural behaviour and failure modes were determined experimentally. Hybrid joints were shown to have greater strength, stiffness and fatigue life in comparison to adhesive bonded joints. However, the benefits were only observed in joints with lower modulus adhesives which allowed for load sharing between the adhesive and the bolt. Hybrid joints with high modulus adhesives showed no significant improvement in strength although increased fatigue life was observed due to the presence of the bolt. Three distinct stages in the fatigue life of hybrid joints were observed where the adhesive, the bolt and their combination were all contributing to the load transfer. Fatigue crack initiation was found to occur later in the hybrid joints where the bolt transferred a significant portion of the load. The failure mode of the joints was shown to be dependent upon the relation between the hybrid joint strength and the bearing strength of the laminate. Hybrid joints in which the strength greatly exceeded the laminate bearing strength failed catastrophically in net-section mode. In contrast, laminates with higher bearing strength failed in a non-catastrophic bearing mode. Careful comparison of the material bearing strength and adhesive bond strength is necessary to ensure increased joint strength and non-catastrophic failure.
机译:研究了具有碳纤维增强塑料粘附体的混合(粘合/螺栓连接)接头的强度和疲劳寿命。实验确定了粘合剂材料性能和层压板堆叠顺序对接头结构行为和破坏模式的影响。与胶接接头相比,混合接头具有更大的强度,刚度和疲劳寿命。但是,只有在使用较低模量的粘合剂的接头中才能观察到这种好处,该粘合剂允许在粘合剂和螺栓之间分担载荷。尽管由于螺栓的存在而观察到了更长的疲劳寿命,但是具有高模量粘合剂的混合接头的强度没有显着提高。观察到混合接头疲劳寿命的三个不同阶段,其中粘合剂,螺栓和它们的组合都对载荷传递有贡献。发现疲劳裂纹萌生在混合接头的后面,其中螺栓转移了很大一部分载荷。接头的失效模式显示为取决于混合接头强度与层压板的承载强度之间的关系。在净截面模式下,强度大大超过层压板承载强度的混合接头发生了灾难性的故障。相反,具有较高承载强度的层压板在非灾难性承载模式下会失效。必须仔细比较材料的承载强度和粘接强度,以确保增加的接合强度和非灾难性故障。

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