Belter Joseph T, Dollar Aaron M
Department of Mechanical Engineering and Material Science, Yale University, New Haven, Connecticut, United States of America.
PLoS One. 2015 Apr 16;10(4):e0122915. doi: 10.1371/journal.pone.0122915. eCollection 2015.
In this paper, we present a technique for increasing the strength of thermoplastic fused deposition manufactured printed parts while retaining the benefits of the process such as ease, speed of implementation, and complex part geometries. By carefully placing voids in the printed parts and filling them with high-strength resins, we can improve the overall part strength and stiffness by up to 45% and 25%, respectively. We discuss the process parameters necessary to use this strengthening technique and the theoretically possible strength improvements to bending beam members. We then show three-point bend testing data comparing solid printed ABS samples with those strengthened through the fill compositing process, as well as examples of 3D printed parts used in real-world applications.
在本文中,我们提出了一种提高热塑性熔融沉积制造的打印部件强度的技术,同时保留该工艺的优点,如操作简便、实施速度快以及能够制造复杂的部件几何形状。通过在打印部件中精心设置空隙并填充高强度树脂,我们可以分别将部件的整体强度和刚度提高多达45%和25%。我们讨论了使用这种强化技术所需的工艺参数以及对弯曲梁构件理论上可能的强度提升。然后,我们展示了三点弯曲测试数据,比较了实心打印的ABS样品与通过填充复合工艺强化的样品,以及在实际应用中使用的3D打印部件示例。