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On the corrosion of additively manufactured aluminium alloy AA2024 prepared by selective laser melting

机译:选择性激光熔化制备增材制造的AA2024铝合金的腐蚀

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摘要

The microstructure, and electrochemical properties of additively manufactured Al-alloy AA2024 (AM2024, Al Cu-Mg) produced by selective laser melting are reported. In-depth microstructural characterisation was conducted to compare the resultant microstructure, including phase identification, size and distribution, against the wrought counterpart AA2024-T3. The prospect of producing net shape Al-alloys via additive manufacturing (AM) has the potential to provide cost effective and high specific strength components. It was revealed that the dominant second phase formed in AM2024 was Al2Cu (theta-phase), in contrast to the typical Al2CuMg (S-phase) observed in AA2024-T3. The AM2024 also revealed a refined microstructure, with an average constituent particle size 1 mu m. Thermodynamic calculations revealed that the preferential formation of theta-phase was influenced by the Si content of AM2024 (0.78 wt. %). Atomic emission spectroelectrochemistry (AESEC) measurements revealed a lower Al dissolution rate (5 times) in the case of AM2024. Anodic polarisation revealed that AM2024 was capable of forming an appreciable surface oxide relative to AA2024-T3. The findings herein demonstrate the possibilities of AM as applied to a high strength Al-alloy.
机译:报告了通过选择性激光熔融生产的增材制造的铝合金AA2024(AM2024,Al Cu-Mg)的微观结构和电化学性能。进行了深入的微结构表征,以将所得的微结构(包括相识别,尺寸和分布)与锻造的AA2024-T3进行比较。通过增材制造(AM)生产净形铝合金的前景有望提供具有成本效益的高比强度组件。揭示了与在AA2024-T3中观察到的典型Al2CuMg(S相)相反,AM2024中形成的主要第二相是Al2Cu(θ相)。 AM2024还显示出精细的微观结构,平均成分粒径小于1微米。热力学计算表明,θ相的优先形成受到AM2024的Si含量(0.78wt。%)的影响。原子发射光谱电化学(AESEC)测量表明,AM2024的铝溶解速率较低(5倍)。阳极极化表明,AM2024能够形成相对于A2022-T3明显的表面氧化物。本文的发现证明了将AM应用于高强度铝合金的可能性。

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