Mantelli Andrea, Romani Alessia, Suriano Raffaella, Diani Marco, Colledani Marcello, Sarlin Essi, Turri Stefano, Levi Marinella
Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
Department of Mechanical Engineering, Politecnico di Milano, Via La Masa 1, 20156 Milano, Italy.
Polymers (Basel). 2021 Feb 27;13(5):726. doi: 10.3390/polym13050726.
Despite the growing global interest in 3D printed carbon fiber reinforced polymers, most of the applications are still limited to high-performance sectors due to the low effectiveness-cost ratio of virgin carbon fibers. However, the use of recycled carbon fibers in 3D printing is almost unexplored, especially for thermoset-based composites. This paper aims to demonstrate the feasibility of recycled carbon fibers 3D printing via UV-assisted direct ink writing. Pyrolyzed recycled carbon fibers with a sizing treatment were firstly shredded to be used as a reinforcement of a thermally and photo-curable acrylic resin. UV-differential scanning calorimetry analyses were then performed to define the material crosslinking of the 3D printable ink. Because of the poor UV reactivity of the resin loaded with carbon fibers, a rheology modifier was added to guarantee shape retention after 3D printing. Thanks to a customized 3D printer based on a commercial apparatus, a batch of specimens was successfully 3D printed. According to the tensile tests and Scanning Electron Microscopy analysis, the material shows good mechanical properties and the absence of layer marks related to the 3D printing. These results will, therefore, pave the way for the use of 3D printed recycled carbon fiber reinforced polymers in new fields of application.
尽管全球对3D打印碳纤维增强聚合物的兴趣日益浓厚,但由于原始碳纤维的性价比低,其大多数应用仍局限于高性能领域。然而,3D打印中回收碳纤维的使用几乎未被探索,尤其是对于热固性基复合材料。本文旨在证明通过紫外线辅助直接墨水书写进行回收碳纤维3D打印的可行性。首先将经过上浆处理的热解回收碳纤维切碎,用作热固化和光固化丙烯酸树脂的增强材料。然后进行紫外差示扫描量热分析,以确定3D可打印油墨的材料交联情况。由于含碳纤维的树脂紫外线反应性较差,添加了流变改性剂以确保3D打印后形状保持。借助基于商用设备定制的3D打印机,成功3D打印了一批试样。根据拉伸试验和扫描电子显微镜分析,该材料显示出良好的机械性能且不存在与3D打印相关的层痕。因此,这些结果将为3D打印回收碳纤维增强聚合物在新应用领域的使用铺平道路。