Analysis of laser welding on dissimilar materials with the influence of adding interlayer

材料科学 金属间化合物 焊接 残余应力 箔法 脆性 复合材料 微观结构 搭接接头 冶金 接头(建筑物) 压力(语言学) 激光束焊接 结构工程 合金 哲学 工程类 语言学
作者
Ali N. Saleh,M. Mohsin Raza,Yi-Cheng Lin,Yu‐Lung Lo
出处
期刊:Journal of materials research and technology [Elsevier BV]
卷期号:26: 2103-2121 被引量:12
标识
DOI:10.1016/j.jmrt.2023.08.011
摘要

The laser welding of dissimilar materials presents several challenges in practical applications, including instability in the molten pool, formation of intermetallic compounds (IMCs), and cracking due to differential thermal stresses. In this study, we investigated the impact of incorporating a nickel (Ni) foil as an intermediate layer on lap joints of dissimilar materials (SS304 and Al6061) welded using the continuous laser welding (CLW) technique. The thermomechanical simulation accurately predicted the width and depth of SS304-Ni-Al6061 joints, with deviations of merely 3.92% and 19.04% from experimental results, respectively. Residual stress analysis revealed that the addition of a nickel foil reduced residual stress in the heat-affected zone (HAZ) and improved joint fatigue life. Furthermore, the incorporation of 0.1 and 0.2 mm Ni foils enhanced joint strength and effectively suppressed the formation of brittle intermetallic compounds, resulting in a remarkable maximum lap shear force of up to 1026 N. The simulation results for the shear load-displacement curve displayed excellent agreement with experimental data, with a deviation of only 6%. Notably, joints with the Ni foil demonstrated a greater ability to prevent crack formation caused by thermal expansion mismatch compared to joints without the Ni foil. The Ni interlayer served as a diffusion barrier and stress buffer, promoting a more uniform microstructure and reducing the likelihood of crack formation in bonded materials. Overall, this study comprehensively understands the impact of incorporating a nickel interlayer on laser-welded lap joints of dissimilar materials. The findings offer valuable insights for practical applications, enabling improved joint strength, reliability, and crack resistance in laser welding dissimilar materials.
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