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Microstructural characterization of Inconel 718 alloy after pulsed laser surface treatment at different powers

DOI:10.1016/S1003-6326(18)64794-6 期刊:Transactions of Nonferrous Metals Society of China 出版年份:2018 更新时间:2025-09-16 10:30:52
摘要: An annealed Inconel 718 alloy was surface-treated by pulsed laser at three different powers (100, 50 and 25 W). Microstructural changes induced by the laser treatments were characterized by use of electron backscatter diffraction and electron channeling contrast imaging techniques. Results show that both annealing twins and strengthening precipitates profusely existing in the as-received specimen are dissolved at elevated temperatures during the laser irradiation. Meanwhile, in the melting zone (MZ), densities of low angle boundaries (LABs) are greatly increased with a large number of Laves phases preferentially distributed along such LABs. For different specimens, widths and depths of their MZs are found to be gradually reduced with decreasing the laser powers. Orientation analyses reveal that the columnar grains in the MZ of the 100 W specimen could inherit orientations existing in the matrix while lower laser powers promote the formation of more nuclei with scattered orientations to grow to be granular grains in the MZ. Hardness tests reveal that the MZs of all laser-treated specimens are softer than the matrix probably due to both precipitate dissolution and grain coarsening.
作者: Lin-jiang CHAI,Shan-shan YUAN,Wei-jiu HUANG,Xu-sheng YANG,Fang-jun WANG,Dong-zhe WANG,Jun-jun WANG
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Investigating the effects of pulsed laser surface treatment at different powers on the microstructural characteristics and hardness of Inconel 718 alloy.

The study concludes that pulsed laser surface treatment at different powers significantly alters the microstructure of Inconel 718 alloy, including the dissolution of annealing twins and strengthening precipitates, increased densities of low angle boundaries, and changes in grain morphology. The hardness of the laser-treated zones decreases due to precipitate dissolution and grain coarsening. The findings contribute to understanding the effects of laser surface treatments on nickel-based superalloys.

The study focuses on microstructural changes and hardness variations induced by laser surface treatment but does not explore the mechanical properties under operational conditions or the long-term stability of the treated surfaces.

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