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Multi-stage mechanical behavior and failure mechanism analysis of CFRP/Al single-lap bolted joints with different seawater ageing conditions

机译:不同海水老化条件下CFRP / Al单搭钉螺栓连接的多阶段力学行为及破坏机理分析

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摘要

This paper aims to investigate the mechanical response behavior of CFRP/Al single-lap bolted joints in marine environment. The joints with four interference fit sizes (0%, 0.42%, 2.14% and 3.02%) were prepared, and fully and half immersed in 3.5% sodium chloride solution with a controlled temperature of 30 degrees C for four months. Single-lap bearing tests were carried out to evaluate the mechanical behavior and failure mode of the CFRP/Al bolted joints after seawater ageing. Scanning electron microscope (SEM) was used to analyze the environmental damage and failure mechanism of structures. The results show that the critical load-bearing capacity and the maximum friction force at the overlap gradually decreased with the increasing of ageing time, and it was more serious in half immersion ageing environment compared with full immersion. The interference fit significantly improved the mechanical properties of joints, especially for 2.14% interference fit. Environmental damage such as pitting, delamination and fiber-matrix interface debonding was all aggravated with the increasing ageing time but suppressed by interference fit. In addition, the failure modes of structures were bearing failure and shear-out failure of CFRP, and the failure mechanism was delamination for unaged structures, the interlayer shear damage for aged structures.
机译:本文旨在研究CFRP / Al单圈螺栓连接接头在海洋环境中的力学响应行为。准备具有四个过盈配合尺寸(0%,0.42%,2.14%和3.02%)的接头,并将其完全和一半浸入在30%的受控温度的3.5%氯化钠溶液中四个月。进行单圈轴承测试以评估海水老化后CFRP / Al螺栓连接的力学性能和破坏模式。用扫描电子显微镜(SEM)分析了结构的环境破坏和破坏机理。结果表明,随着时效时间的增加,临界重载能力和交叠处的最大摩擦力逐渐减小,在半浸式时效环境中,全浸式时效更为严重。过盈配合显着改善了接头的机械性能,尤其是对于2.14%的过盈配合。随着老化时间的增加,诸如点蚀,分层和纤维-基体界面剥离的环境破坏都加剧了,但通过过盈配合得到了抑制。此外,结构的破坏模式为CFRP的承载破坏和剪切破坏,破坏机理为未老化结构分层,老化结构的层间剪切损伤。

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