The George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.
Renewable Bioproduct Institute, Georgia Institute of Technology, Atlanta, GA, 30332, USA.
Macromol Rapid Commun. 2018 Apr;39(7):e1700809. doi: 10.1002/marc.201700809. Epub 2018 Jan 31.
Design and direct fabrication of high-performance thermosets and composites via 3D printing are highly desirable in engineering applications. Most 3D printed thermosetting polymers to date suffer from poor mechanical properties and low printing speed. Here, a novel ink for high-speed 3D printing of high-performance epoxy thermosets via a two-stage curing approach is presented. The ink containing photocurable resin and thermally curable epoxy resin is used for the digital light processing (DLP) 3D printing. After printing, the part is thermally cured at elevated temperature to yield an interpenetrating polymer network epoxy composite, whose mechanical properties are comparable to engineering epoxy. The printing speed is accelerated by the continuous liquid interface production assisted DLP 3D printing method, achieving a printing speed as high as 216 mm h . It is also demonstrated that 3D printing structural electronics can be achieved by combining the 3D printed epoxy composites with infilled silver ink in the hollow channels. The new 3D printing method via two-stage curing combines the attributes of outstanding printing speed, high resolution, low volume shrinkage, and excellent mechanical properties, and provides a new avenue to fabricate 3D thermosetting composites with excellent mechanical properties and high efficiency toward high-performance and functional applications.
通过 3D 打印设计和直接制造高性能热固性塑料和复合材料在工程应用中是非常理想的。迄今为止,大多数 3D 打印热固性聚合物的机械性能较差,打印速度也较低。在这里,提出了一种通过两阶段固化方法用于高速 3D 打印高性能环氧热固性塑料的新型油墨。该油墨含有光固化树脂和热固性环氧树脂,用于数字光处理(DLP)3D 打印。打印后,将零件在高温下进行热固化,得到互穿聚合物网络环氧树脂复合材料,其机械性能可与工程环氧树脂相媲美。连续液界生产辅助 DLP 3D 打印方法加速了打印速度,实现了高达 216mm/h 的打印速度。还证明了通过在中空通道中填充银油墨与 3D 打印的环氧树脂复合材料相结合,可以实现 3D 打印结构电子。通过两阶段固化的新 3D 打印方法结合了出色的打印速度、高分辨率、低体积收缩和优异的机械性能等属性,为制造具有出色机械性能和高效率的高性能和功能应用的 3D 热固性复合材料提供了新途径。