Corrosion-Fatigue Performance of 3D-Printed (L-PBF) AlSi10Mg

被引:1
|
作者
Linder, Clara [1 ]
Vucko, Flavien [2 ]
Ma, Taoran [3 ]
Proper, Sebastian [3 ]
Dartfeldt, Erik [4 ]
机构
[1] RISE, Corros Vehicle & Surface Protect, Isafjordsgatan 28, S-16440 Kista, Sweden
[2] French Corros Inst RISE, 220 Rue Pierre Rivoalon, F-29200 Brest, France
[3] RISE, Mfg Proc, Addit Mfg, Argongatan 30, S-43153 Molndal, Sweden
[4] RISE, Chem & Appl Mech, Mech Res & Innovat, Gibraltargatan 35, S-41279 Gothenburg, Sweden
关键词
atmospheric corrosion; fatigue; additive manufacturing; 3D printing; aluminum alloys; AlSi10Mg; HEAT-TREATMENT; SURFACE-ROUGHNESS; PITTING CORROSION; BEHAVIOR; ALLOY; MICROSTRUCTURE;
D O I
10.3390/ma16175964
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Additive manufacturing (AM) allows for optimized part design, reducing weight compared to conventional manufacturing. However, the microstructure, surface state, distribution, and size of internal defects (e.g., porosities) are very closely related to the AM fabrication process and post-treatment operations. All these parameters can have a strong impact on the corrosion and fatigue performance of the final component. Thus, the fatigue-corrosion behavior of the 3D-printed (L-PBF) AlSi10Mg aluminum alloy has been investigated. The influence of load sequence (sequential vs. combined) was explored using Wohler diagrams. Surface roughness and defects in AM materials were examined, and surface treatment was applied to improve surface quality. The machined specimens showed the highest fatigue properties regardless of load sequence by improving both the roughness and removing the contour layer containing the highest density of defect. The impact of corrosion was more pronounced for as-printed specimens as slightly deeper pits were formed, which lowered the fatigue-corrosion life. As discussed, the corrosion, fatigue and fatigue-corrosion mechanisms were strongly related to the local microstructure and existing defects in the AM sample.
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页数:13
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