Inhibiting weld cracking in high-strength aluminium alloys

Cracking from a fine equiaxed zone (FQZ), often just tens of microns across, plagues the welding of 7000 series aluminum alloys. Using a multiscale correlative methodology, from the millimeter scale to the nanoscale, we shed light on the strengthening mechanisms and the resulting intergranular failu...

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Veröffentlicht in:Nature communications 2022-10, Vol.13 (1), p.5816-5816, Article 5816
Hauptverfasser: Hu, Yanan, Wu, Shengchuan, Guo, Yi, Shen, Zhao, Korsunsky, Alexander M., Yu, Yukuang, Zhang, Xu, Fu, Yanan, Che, Zhigang, Xiao, Tiqiao, Lozano-Perez, Sergio, Yuan, Qingxi, Zhong, Xiangli, Zeng, Xiaoqin, Kang, Guozheng, Withers, Philip J.
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Sprache:eng
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Zusammenfassung:Cracking from a fine equiaxed zone (FQZ), often just tens of microns across, plagues the welding of 7000 series aluminum alloys. Using a multiscale correlative methodology, from the millimeter scale to the nanoscale, we shed light on the strengthening mechanisms and the resulting intergranular failure at the FQZ. We show that intergranular AlCuMg phases give rise to cracking by micro-void nucleation and subsequent link-up due to the plastic incompatibility between the hard phases and soft (low precipitate density) grain interiors in the FQZ. To mitigate this, we propose a hybrid welding strategy exploiting laser beam oscillation and a pulsed magnetic field. This achieves a wavy and interrupted FQZ along with a higher precipitate density, thereby considerably increasing tensile strength over conventionally hybrid welded butt joints, and even friction stir welds. Fusion welding of 7000 series aluminum alloy is plagued by cracking from a fine equiaxed zone (FQZ). Here, the authors quantify key softening mechanisms, show the damage accumulation sequence, and propose a hybrid laser/arc welding strategy to mitigate the FQZ and increase weld strength and toughness.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-022-33188-x