5052铝合金与碳纤维增强聚醚醚酮复合材料的搅拌摩擦点焊

Honggang Dong, Zuyang Tang, Peng Li, Baosheng Wu, X. Hao, Chaoqun Ma
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引用次数: 30

摘要

摘要铝合金与碳纤维增强塑料复合结构可以将两者的优点结合起来。为了研究这两种轻质材料的可焊性,采用搅拌摩擦点焊制备了5052铝合金(AA5052)与碳纤维增强聚醚醚酮复合材料(CF-PEEK)的复合接头。方差分析结果表明,停留时间和下降速度是最显著的影响因素。通过对焊接参数的优化,最终拉伸剪切载荷达到2690±64 N(停留时间为8 s,冲击速度为10 mm/min)。界面可分为针影响区、肩影响区、树脂粘接区和树脂集中区。由于树脂集中区由于分层而不能提供界面结合,因此肩影响区和针影响区是决定力学性能的区域。粘接机理包括三部分:再固化树脂提供的粘接,铝合金进入CF-PEEK的宏观机械联锁,以及树脂在表面狭缝处被紧紧困住的微观机械联锁,碳纤维被包围在AA5052中。阐明了AA5052/CF-PEEK复合接头的界面特性,为提高复合接头的力学性能提供了途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Friction Stir Spot Welding of 5052 Aluminum Alloy to Carbon Fiber Reinforced Polyether Ether Ketone Composites
Abstract The hybrid structure composed of aluminum alloy and carbon fiber reinforced plastics could combine their advantages. In order to investigate the weldability of these two lightweight materials, the hybrid joints of 5052 aluminum alloy (AA5052) and carbon fiber reinforced polyether ether ketone composites (CF-PEEK) were fabricated by friction stir spot welding. The variance analysis revealed that the dwell time and plunge speed were the most significant factors. By optimizing the welding parameters, the ultimate tensile shear load reached 2690±64 N (the dwell time: 8 s, the plunge speed: 10 mm/min). The interface could be divided into pin-affected zone, shoulder-affected zone, resin adhesive zone and resin concentrated zone. Since resin concentrated zone could not provide interfacial bonding due to delamination, the shoulder-affected zone and pin-affected zone were decisive regions for mechanical properties. The bonding mechanism included three parts: adhesive bonding provided by re-solidified resin, macro-mechanical interlocking of aluminum alloy that entered CF-PEEK, and micro-mechanical interlocking of resin that was tightly trapped at surface slits as well as the carbon fibers beset into AA5052. This work clarifies the interfacial characteristics of AA5052/CF-PEEK hybrid joints and provides an approach to improve the mechanical properties.
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