Wang Yesong, Liu Jiang, Yu Yipeng, Zhang Qing, Li Hongfu, Shi Guokun
School of Mechanical Engineering, University of Science and Technology Beijing, Beijing 100083, China.
School of Mechanical Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, China.
Polymers (Basel). 2022 Jul 3;14(13):2730. doi: 10.3390/polym14132730.
The rapid development of additive manufacturing technology (AM) is revolutionizing the traditional continuous fiber-reinforced polymer (CFRP) manufacturing process. The combination of FDM technology and CFRP technology gave birth to continuous fiber reinforced thermoplastic composites (CFRTPC) 3D printing technology. Parts with complex structure and excellent performance can be fabricated by this technology. However, the current research on CFRTPC printing mainly focuses on printing equipment, materials, and the improvement of mechanical properties. In this paper, the CFRTPC 3D printing track errors are investigated during the printing process, and it is found that the polytetrafluoroetylene (PTFE) tube in the nozzle of the printer head is often blocked. Through detailed analysis, a line-following mathematical model reflecting the deviations of the CFRTPC printing track is established. According to the characteristics of the fiber and its track during actual laying, a modified line-following model, without the minimum curvature point, is further proposed. Based on this model, the actual printing track for the theoretical path is simulated, the process tests are carried out on the printing track at different corner angles, and the relevant rules between the parameters of the model and different corner angles are obtained. The mathematical model is verified by experiments, and the clogging problem of the printer head caused by the fiber track error is solved, which provides theoretical support for the rational design of the fiber track in CFRTPC printing.
增材制造技术(AM)的快速发展正在彻底改变传统的连续纤维增强聚合物(CFRP)制造工艺。熔融沉积成型(FDM)技术与CFRP技术的结合催生了连续纤维增强热塑性复合材料(CFRTPC)3D打印技术。利用该技术可以制造出结构复杂且性能优异的零件。然而,目前关于CFRTPC打印的研究主要集中在打印设备、材料以及力学性能的提升方面。本文对CFRTPC 3D打印过程中的轨迹误差进行了研究,发现打印头喷嘴中的聚四氟乙烯(PTFE)管经常堵塞。通过详细分析,建立了反映CFRTPC打印轨迹偏差的循线数学模型。根据纤维及其在实际铺设过程中的轨迹特点,进一步提出了一种无最小曲率点的改进循线模型。基于该模型,对理论路径的实际打印轨迹进行了模拟,在不同转角处对打印轨迹进行了工艺试验,得到了模型参数与不同转角之间的相关规律。通过实验验证了该数学模型,解决了纤维轨迹误差导致的打印头堵塞问题,为CFRTPC打印中纤维轨迹的合理设计提供了理论支持。