Investigation on dissimilar underwater friction stir lap welding of 6061-T6 aluminum alloy to pure copper

Jingqing Zhang, Yifu Shen, Xin Yao, Haisheng Xu, Bo Li
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引用次数: 120

Abstract

Friction stir welding (classical FSW) is considered to offer advantages over the traditional fusion welding techniques in terms of dissimilar welding. However, some challenges still exist in the dissimilar friction stir lap welding of the aluminum/copper (Al/Cu) metallic couple, among which the formation of the Al–Cu intermetallic compounds is the major problem. In the present research, due to the fact that the formation and growth of the intermetallic are significantly controlled by the thermal history, the underwater friction stir welding (underwater FSW) was employed for fabricating the weld, and the weld obtained by underwater FSW (underwater weld) was analyzed via comparing with the weld obtained under same parameters by classical FSW (classical weld). In order to investigate the effect of the external water on the thermal history, the K-type thermocouple was utilized to measure the weld temperature, and it is found that the water could decrease the peak temperature and shorten the thermal cycle time. The XRD results illustrate that the interface of the welds mainly consist of the Al–Cu intermetallic compounds such as CuAl2 and Cu9Al4 together with some amounts of Al and Cu, and it is also found that the amount of the intermetallic in the underwater weld is obvious less than in the classical weld. The SEM images and the EDS line scan results also illustrate that the Al–Cu diffusion interlayer at the Al–Cu interface of the underwater weld was obviously thinner than that of the classical weld.

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6061-T6铝合金与纯铜异种水下搅拌摩擦搭接焊的研究
搅拌摩擦焊(经典FSW)被认为在异种焊接方面比传统的熔焊技术具有优势。然而,在铝/铜(Al/Cu)金属偶的异种搅拌摩擦搭接焊中仍然存在一些挑战,其中Al–Cu金属间化合物的形成是主要问题。在本研究中,由于金属间化合物的形成和生长受到热历史的显著控制,因此采用了水下搅拌摩擦焊(水下FSW)来制造焊缝,并通过与经典FSW(classical weld)在相同参数下获得的焊缝的比较,对水下FSW(underwater weld)获得的焊缝进行了分析。为了研究外部水对热历史的影响,使用K型热电偶测量焊缝温度,发现水可以降低峰值温度,缩短热循环时间。XRD结果表明,焊缝界面主要由CuAl2和Cu9Al4等Al–Cu金属间化合物以及一定量的Al和Cu组成,水下焊缝中金属间化合物的含量明显低于传统焊缝。SEM图像和EDS线扫描结果还表明,水下焊缝Al–Cu界面处的Al–Cu扩散夹层明显比传统焊缝薄。
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期刊介绍: Materials and Design is a multidisciplinary journal that publishes original research reports, review articles, and express communications. It covers a wide range of topics including the structure and properties of inorganic and organic materials, advancements in synthesis, processing, characterization, and testing, as well as the design of materials and engineering systems, and their applications in technology. The journal aims to integrate various disciplines such as materials science, engineering, physics, and chemistry. By exploring themes from materials to design, it seeks to uncover connections between natural and artificial materials, and between experimental findings and theoretical models. Manuscripts submitted to Materials and Design are expected to offer elements of discovery and surprise, contributing to new insights into the architecture and function of matter.
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