Gaussian and circular oscillating laser directed energy deposition of WC/NiCu composites

被引:14
作者
Lei, Jiajun [1 ]
Liu, Guanghua [1 ]
Li, Hongchuan [1 ]
Han, Hongsheng [2 ]
Di, Ruifeng [3 ]
Lei, Jianbo [1 ]
机构
[1] Tiangong Univ, Laser Technol Inst, Tianjin 300387, Peoples R China
[2] Hebei Ruizhao Laser Remfg Technol Co Ltd, Qianxi 064399, Peoples R China
[3] Univ Savoie Mont Blanc, F-73376 Le Bourget Du Lac, France
关键词
Directed energy deposition; Circular oscillating laser; Microstructure; Ceramic particles; MECHANICAL-PROPERTIES; WEAR-RESISTANCE; INCONEL; 718; MICROSTRUCTURE; BEHAVIOR;
D O I
10.1016/j.matchar.2023.113218
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In the realm of laser directed energy deposition (L-DED), the standard procedure typically using a Gaussian laser as the primary energy source. However, this well-established technique also has limitations as it generates considerable temperature gradients and residual stresses throughout the manufacturing process, resulting in notable deformation and cracking. To overcome these limitations, this study advocates for the replacement of the Gaussian laser with a circular oscillating laser. NiCu alloys and 16 wt% WC/NiCu composites were manufactured using the Gaussian laser and the circular oscillating laser deposition equipment. The results of this study reveal that the circular oscillating laser methodology exerts a pronounced agitation effect on the melt pool, thus hin-dering the formation of columnar dendrites and promoting the emergence of more nucleation sites for the growth of equiaxed dendrites. This method effectively refines the grains by reducing the temperature gradient of the melt pool and increasing the cooling rate. The average grain size of NiCu alloy manufactured using the circular oscillating laser is reduced by 19.5% compared to that manufactured using the Gaussian laser. The high tem-perature generated by laser and melt pool caused partial decomposition of WC into W and C, leading to the formation of W2C hard phases between the dendrites. Additionally, the unmelted WC particles were uniformly dispersed throughout the composites, which hindered the growth of columnar dendrites and refined the grains. Compared to the composites manufactured using the Gaussian laser, the composites manufactured using the circular oscillating laser exhibit an average microhardness increase of 15% and 11.1%, and a 76.5% and 22.2% decrease in wear rate, respectively. Composites containing 16 wt% WC manufactured using the Gaussian laser exhibit the best corrosion resistance.
引用
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页数:15
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