开放式激光粉末床聚变中惰性横流的实验分析及空间分量影响

IF 3.3 Q2 ENGINEERING, MANUFACTURING
M. B. Kjer, Zhihao Pan, V. K. Nadimpalli, D. B. Pedersen
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引用次数: 0

摘要

基于激光的粉末床融合是一种增材制造工艺,在该工艺中,高功率激光逐层熔化金属粉末薄层,以产生三维物体。惰性气体必须去除激光加工过程中形成的工艺副产物,以确保工艺稳定一致。工艺副产品包括等离子体羽流和飞溅颗粒。NC传感器龙门架安装在定制的开放式结构激光粉末床融合系统内,以实验方式表征整个加工区域的气体速度。将流动图与制造的样品进行比较,分析相对密度和熔池,寻求局部气体流动条件与成分之间的潜在相关性。结果表明,低气体流速与孔隙率增加之间存在相关性,导致零件质量降低。构建板上的局部流动条件也直接影响组件,突出了优化气流子系统的重要性。实验流量分析方法能够优化气流入口几何形状,并且数据可以用于校准过程的计算建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Analysis and Spatial Component Impact of the Inert Cross Flow in Open-Architecture Laser Powder Bed Fusion
Laser-based powder bed fusion is an additive manufacturing process in which a high-power laser melts a thin layer of metal powder layer by layer to yield a three-dimensional object. An inert gas must remove process byproducts formed during laser processing to ensure a stable and consistent process. The process byproducts include a plasma plume and spatter particles. An NC sensor gantry is installed inside a bespoke open-architecture laser-based powder bed fusion system to experimentally characterize the gas velocity throughout the processing area. The flow maps are compared to manufactured samples, where the relative density and melt pools are analyzed, seeking a potential correlation between local gas flow conditions and the components. The results show a correlation between low gas flow velocities and increased porosity, leading to lower part quality. Local flow conditions across the build plate also directly impact components, highlighting the importance of optimizing the gas flow subsystem. The experimental flow analysis method enables optimization of the gas flow inlet geometry, and the data may be used to calibrate the computational modeling of the process.
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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