Optimal Powder Deposition Process to Develop a New Direct-Write Additive Manufacturing System

被引:0
|
作者
Haseung Chung
Nanum Lee
Jeonghan Ko
Taebong Lee
Pil-Ho Lee
Jin Young Choi
机构
[1] Michigan State University,Department of Mechanical Engineering
[2] Ajou University,Department of Industrial Engineering
[3] The University of Michigan,Department of Industrial and Operations Engineering
[4] Hongik University,Department of Mechanical and System Design Engineering
[5] Korea Institute of Machinery & Materials,Department of 3D Printing
来源
International Journal of Precision Engineering and Manufacturing | 2019年 / 20卷
关键词
Additive manufacturing; Direct-write; Functionally graded materials; Powder deposition; Statistical analysis; Process optimization;
D O I
暂无
中图分类号
学科分类号
摘要
In functionally graded materials (FGM), material property gradually changes within a product. To manufacture FGM by additive manufacturing (AM) using polymer powders, precise deposition of different powder materials is crucial. The powder deposition, however, is challenging, because process control and material choices are complicated. This paper presents a newly developed laser-based AM system using the direct deposit of poly-lactic acid powders on the target surface. This direct-writing AM system can facilitate material change even within a layer for superior material property variation. This study characterizes the optimal process conditions for deposition consistency by statistical methods. This study also identifies suitable statistical models by examining the model characteristics such as lack-of-fit and curvature. In addition, this study finds an appropriate statistical method to handle process abnormality such as no powder flow. Through these analyses, this study characterizes the optimal combination of process conditions and material choices for stable powder deposition, and verifies the best conditions for the new AM system. This study will help develop a new AM system with the optimal deposition for each material composition to produce novel material structure for FGM.
引用
收藏
页码:1057 / 1067
页数:10
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