锁孔
振荡(细胞信号)
材料科学
激光器
多物理
同步加速器
不稳定性
光学
选择性激光熔化
焊接
机械
物理
复合材料
化学
热力学
有限元法
生物化学
作者
Ziheng Wu,Guannan Tang,Samuel J. Clark,Andrey Meshkov,Subhrajit Roychowdhury,Benjamin Gould,Victor Ostroverkhov,Thomas Adcock,Steven J. Duclos,Kamel Fezzaa,Christopher Immer,Anthony D. Rollett
标识
DOI:10.1038/s43246-023-00332-z
摘要
Abstract The metal additive manufacturing industry is actively developing instruments and strategies to enable higher productivity, optimal build quality, and controllable as-built microstructure. A beam controlling technique, laser oscillation has shown potential in all these aspects in laser welding; however, few attempts have been made to understand the underlying physics of the oscillating keyholes/melt pools which are the prerequisites for these strategies to become a useful tool for laser-based additive manufacturing processes. Here, to address this gap, we utilized a synchrotron-based X-ray operando technique to image the dynamic keyhole oscillation in Ti-6Al-4V using a miniature powder bed fusion setup. We found good agreement between the experimental observations and simulations performed with a validated Lattice Boltzmann multiphysics model. The study revealed the continuous and periodic fluctuations in the characteristic keyhole parameters that are unique to the oscillating laser beam processing and responsible for the chevron pattern formation at solidification. In particular, despite the intrinsic longer-range fluctuation, the oscillating technique displayed potential for reducing keyhole instability, mitigating porosity formation, and altering surface topology. These insights on the oscillating keyhole dynamics can be useful for the future development and application of this technique.
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