同步加速器
马朗戈尼效应
溶解
材料科学
激光器
激光功率缩放
阴影照相术
润湿
原位
沉积(地质)
化学物理
光学
机械
化学工程
复合材料
化学
地质学
物理
工程类
有机化学
古生物学
沉积物
对流
作者
Chu Lun Alex Leung,Sebastian Marussi,Robert Atwood,Michael Towrie,Philip J. Withers,Peter Lee
标识
DOI:10.1038/s41467-018-03734-7
摘要
Abstract The laser–matter interaction and solidification phenomena associated with laser additive manufacturing (LAM) remain unclear, slowing its process development and optimisation. Here, through in situ and operando high-speed synchrotron X-ray imaging, we reveal the underlying physical phenomena during the deposition of the first and second layer melt tracks. We show that the laser-induced gas/vapour jet promotes the formation of melt tracks and denuded zones via spattering (at a velocity of 1 m s −1 ). We also uncover mechanisms of pore migration by Marangoni-driven flow (recirculating at a velocity of 0.4 m s −1 ), pore dissolution and dispersion by laser re-melting. We develop a mechanism map for predicting the evolution of melt features, changes in melt track morphology from a continuous hemi-cylindrical track to disconnected beads with decreasing linear energy density and improved molten pool wetting with increasing laser power. Our results clarify aspects of the physics behind LAM, which are critical for its development.
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