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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Vacuum laser powder bed fusion-track consolidation, powder denudation, and future potential
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Vacuum laser powder bed fusion-track consolidation, powder denudation, and future potential

机译:真空激光粉床融合轨道固结,粉末剥落和未来潜力

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Defects in parts processed by laser powder bed fusion (LPBF) are often triggered by laser/plasma plume interference and spattering. The implementation of a LPBF process in vacuum has been suggested to possibly reduce these effects. Within this study, the effects of process pressure variations between 1 mbar and atmospheric pressure on the generation of single tracks and on the surrounding layer of loose powder particles were studied for CP titanium grade 2 and the Maraging steel 1.2709. Below 10 mbar no single tracks could be generated and the powder layer adjacent to the track was effectively denuded. It was found that the essential mechanism for incorporating powder into the melt pool begins to work at process pressures above 10 mbar and its effectiveness increases with increasing pressure. The amount of powder incorporated into the melt pool depends on the material and the scanning conditions. With identical scanning conditions, this amount of powder is significantly larger for titanium than for steel. For process pressures above 200 mbar, no significant change in the amount of spattering could be found. In this pressure range improved process stability could be possible due to a reduced laser/plasma interaction and an increased laser penetration depth.
机译:由激光粉末融合(LPBF)处理的部件的缺陷通常通过激光/等离子体羽流干扰和喷溅触发。已经提出了在真空中实施LPBF过程,以减少这些效果。在该研究中,研究了1毫巴和大气压之间的过程压力变化对单轨道的产生和宽松粉末颗粒的周围层的影响,对CP钛等级2和Maraging Steel 1.2709研究了散裂粉末颗粒的周围的散热层。在10毫巴以下,没有单轨道可以产生,并且有效地剥离与轨道相邻的粉末层。结果发现,将粉末掺入熔池池中的基本机制在10毫巴的过程压力下开始工作,其有效性随着压力的增加而增加。掺入熔池池中的粉末的量取决于材料和扫描条件。通过相同的扫描条件,钛的粉末对于钛的粉末显着较大。对于200毫巴的工艺压力,可以找到溅射量的显着变化。在该压力范围内,由于激光/等离子体相互作用降低和激光穿透深度增加,可以提高工艺稳定性。

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