材料科学
挤压
3D打印
爆炸物
3d打印
复合材料
复合数
表面粗糙度
起爆
表面光洁度
墨水池
生物医学工程
医学
化学
有机化学
作者
Huzeng Zong,Peng Zhang,Jing-xiao Yao,Gazi Hao,Suwei Wang,Guangpu Zhang,Hao Ren,Lei Xiao,Wei Jiang
出处
期刊:3D printing and additive manufacturing
[Mary Ann Liebert, Inc.]
日期:2023-06-26
卷期号:11 (3): e1394-e1406
标识
DOI:10.1089/3dp.2022.0245
摘要
In recent years, the application of 3D printing technology in the energetic materials field has proved its ability to innovate traditional charging methods and fabricate complex structures to improve combustion/detonation performance. The melt extrusion technology is the most promising way to fabricate complex structures and multiple components of melt-cast explosives. In this study, a paraffine-based composite was used to substitute melt-cast explosives, and a Design of Experiments approach based on central composite design was adopted to investigate the influence of layer thickness, percent infill, extrusion temperature, and printing velocity on the roughness of printed samples. The results showed that layer thickness and printing velocity could significantly influence the roughness of printed specimens, and no obvious voids or cracks inside the specimens can be detected in computed tomography. In addition, a composite-shaped grain was successfully fabricated via the EAM-D-1 printer, which proved the feasibility of 3D printing melt-cast explosives with complex structures. This work will greatly help to achieve 3D printing melt-cast explosives with complex structures and higher accuracy.
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