搅拌摩擦焊
材料科学
物流
冶金
动态再结晶
焊接
微观结构
再结晶(地质)
金属间化合物
超塑性
粒度
熔焊
铝化钛
合金
复合材料
热加工
生态学
古生物学
生物
作者
Alexander Kalinenko,Pavel Dolzhenko,Sergey Malopheyev,Ivan Shishov,В. В. Мишин,S. Mironov,Rustam Kaibyshev
出处
期刊:Metals
[Multidisciplinary Digital Publishing Institute]
日期:2023-07-27
卷期号:13 (8): 1342-1342
被引量:7
摘要
This work is part of a wide-ranging study aiming to enhance the technology of dissimilar friction-stir welding of aluminum and titanium. In the previous study, a new approach was proposed that provided an exceptionally narrow intermetallic layer. However, an essential disadvantage of this technique was the significant material softening in the aluminum part. Hence, the present work was undertaken in order to obtain insight into microstructural processes and material flow in the aluminum part. To this end, the stop-action technique was applied. It was found that the microstructural evolution included several stages. Specifically, the initial material underwent the discontinuous static recrystallization in the heat-affected zone. With the approach of the rotating tool, the recrystallized grains experienced continuous dynamic recrystallization, which resulted in grain refinement. The subsequent transportation of material around the rotating tool provided no significant alterations in microstructure. This “superplastic-like” character of material flow was attributed to a dynamic balance between grain refinement and grain coarsening. It was also found that the stirred material experienced a secondary deformation induced by the rotating tool shoulder far behind the welding tool. The concomitant microstructural changes were most pronounced at the upper weld surface and gave rise to a fine-grained layer.
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