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首页> 外文期刊>The Journal of Adhesion >Static strength and fatigue life of optimized hybrid single lap aluminum-CFRP structural joints
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Static strength and fatigue life of optimized hybrid single lap aluminum-CFRP structural joints

机译:优化杂交单圈铝-CFRP结构关节静力强度寿命

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摘要

Hybrid bolted/bonded joints are used to assemble structural components, commonly made by carbon fiber reinforced plastics (CFRP), with aluminum frames. Hence, they have become common solutions in a number of modern structural applications in the industrial fields, as well as civil constructions. Unfortunately, due to the lack of understanding of the relationships between the multiple parameters of influence that characterize their mechanical performance, only limited improvement have been achieved so far over classical bonding approaches, in terms of static and fatigue strength. As a result, further studies are needed in order to better exploit the potential of hybrid bolted/bonded joints and identify optimum joint configurations. This paper describes an optimization procedure of the joints, achieved through a systematic experimental analysis of hybrid single lap aluminum-CFRP structural joints. This, analyzing the effect of overlap length, stiffness imbalance, adhesive curing as well as of size, positioning and preload of the bolt, results in a significant rise of the strength, especially in presence of high cycles fatigue loading. Also, micrographic analysis and related numerical simulations have allowed to gain a better insight into the damage mechanisms occurring during the in-service tensile loading, corroborating the highest mechanical performance of the angle-ply lay-up proposed for the CFRP adherent.
机译:混合螺栓/粘合接头用于组装结构部件,通常由碳纤维增强塑料(CFRP)与铝框架制成。因此,它们已成为工业领域的许多现代结构应用中的常见解决方案,以及民用结构。遗憾的是,由于缺乏对其机械性能的影响的多个参数之间的关系之间的关系,因此在静态和疲劳强度方面,到目前为止,迄今为止已经实现了有限的改进。结果,需要进一步的研究,以便更好地利用混合螺栓/粘合接头的电位并确定最佳关节配置。本文介绍了关节的优化过程,通过混合单圈铝-CFRP结构关节的系统实验分析来实现。这样,分析重叠长度,刚度不平衡,粘合剂固化以及螺栓的尺寸,定位和预载的效果,导致强度的显着升高,特别是在高循环疲劳负载的存在下。此外,显微图像分析和相关的数值模拟已经允许更好地了解在适用于抗拉载荷期间发生的损伤机制,证实了CFRP粘附所提出的角度铺设的最高力学性能。

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