Wang Hongyang, Huang Bin, Li Jinzhu, Li Nan, Liu Liming
Key Laboratory of Liaoning Advanced Welding and Joining Technology, School of Material Science and Engineering, Dalian University of Technology, Dalian 116024, China.
Polymers (Basel). 2021 Dec 28;14(1):99. doi: 10.3390/polym14010099.
Welding and riveting hybrid bonding technology was applied to join 6061 aluminum alloy and carbon fiber reinforced plastics (CFRP). The laser-arc hybrid welding process and stepped rivets were used in the experiments to reduce the impact of the poor heat resistance of composites. The effect of hybrid welding arc current on the formation and mechanical properties of 6061 Al/CFRP joints was studied. Tensile shear load up to 4.65 kN was achieved by adjusting process parameters. The welding process and mode of the fracture were analyzed. The hybrid bonded joint obtained consisted of two parts: a welded joint of Al plate and Al rivet, and a bonded interface between Al plate and CFRP plate. The mechanical properties of the hybrid joint were mainly determined by the Al plate/Al rivet welded joint. The results of the study show that there are three interfacial bonding mechanisms between aluminum and CFRP. In addition to mechanical bonding between the Al plate and CFRP plate, there were also metallurgical bonding of Al-Mg intermetallic compounds with resin matrix and chemical reactions of aluminum with resin and carbon fibers at the interface, which could improve the mechanical properties of the joints.
采用焊接与铆接混合连接技术实现6061铝合金与碳纤维增强塑料(CFRP)的连接。实验中采用激光电弧混合焊接工艺和阶梯铆钉,以降低复合材料耐热性差的影响。研究了混合焊接电弧电流对6061 Al/CFRP接头形成及力学性能的影响。通过调整工艺参数,获得了高达4.65 kN的拉伸剪切载荷。分析了焊接过程及断裂模式。所获得的混合连接接头由两部分组成:铝板与铝铆钉的焊接接头以及铝板与CFRP板之间的粘结界面。混合接头的力学性能主要由铝板/铝铆钉焊接接头决定。研究结果表明,铝与CFRP之间存在三种界面结合机制。除了铝板与CFRP板之间的机械结合外,界面处还存在Al-Mg金属间化合物与树脂基体的冶金结合以及铝与树脂和碳纤维的化学反应,这可以提高接头的力学性能。