Liu Jin-Feng, Zhou Ying-Guo, Chen Shu-Jin, Ren Shao-Qiang, Zou Jun
School of Materials Science and Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, China.
Aromatics Department, Zhejiang Petrochemical Co., Ltd., Zhoushan 316021, China.
Polymers (Basel). 2023 Aug 3;15(15):3288. doi: 10.3390/polym15153288.
The friction stir welding (FSW) of thermoplastic polymers is gradually receiving attention because of its advantages including high efficiency and pollution-free manufacturing. The extrusion-based additive manufacturing (EAM) of polymers has also become one of the main processing methods for thermoplastic parts. In this paper, a hybrid manufacturing method for the FSW process and EAM technology is proposed and explored. The effects of the FSW process using two different welding tools on the mechanical behaviors of 3D printing polymer parts were compared and investigated and the corresponding mechanism was analyzed. The results show that the appropriate welding tool is beneficial for eliminating the anisotropy and decreasing the porosity of 3D-printed parts. Therefore, the improving effects of the FSW process on the mechanical behaviors of the EAM parts are verified. The mechanism was attributed to the high-speed rotation of the welding tool with the appropriate shape, which can promote the flow of polymer melt in the welding region, leading to the formation of dense structures caused by the entanglement of the molecular chains. This study may provide some assistance in modern industrial manufacturing for the processing of large custom components.
热塑性聚合物的搅拌摩擦焊(FSW)因其具有高效、无污染制造等优点而逐渐受到关注。聚合物的挤出基增材制造(EAM)也已成为热塑性零件的主要加工方法之一。本文提出并探索了一种将FSW工艺与EAM技术相结合的混合制造方法。比较并研究了使用两种不同焊接工具的FSW工艺对3D打印聚合物零件力学性能的影响,并分析了相应的机理。结果表明,合适的焊接工具有利于消除3D打印零件的各向异性并降低孔隙率。因此,验证了FSW工艺对EAM零件力学性能的改善作用。其机理归因于具有合适形状的焊接工具的高速旋转,这可以促进聚合物熔体在焊接区域的流动,导致分子链缠结形成致密结构。该研究可为大型定制部件的加工提供一些现代工业制造方面的帮助。