Jiang Yue, Xu Jiazhong, Liu Meijun, Fu Tianyu
School of Mechanical Power Engineering, Harbin University of Science and Technology, Harbin 150080, China.
School of Automation, Harbin University of Science and Technology, Harbin 150080, China.
Polymers (Basel). 2024 May 9;16(10):1328. doi: 10.3390/polym16101328.
During the infusion process of a glass-fiber-reinforced thermosetting composite hose, the viscosity of its resin matrix undergoes temporal variations. Consequently, if the impact of resin viscosity changes over time on the internal resin fluidity is not considered during the infusion process, this may result in the incomplete impregnation of the hose, characterized by the presence of numerous voids. This phenomenon adversely affects the quality of the pipe's curing and forming process. Therefore, based on the characteristic variations in resin viscosity, this paper considers the changes in fluidity caused by the resin's temporal evolution within the material. We establish a finite element simulation model to calculate and analyze the overall infusion effects of resin viscosity changes during the hose infusion process. Furthermore, based on the predicted analysis, a variable parameter infusion strategy is proposed to increase resin impregnation in the hose, thereby reducing internal void content and subsequently improving the quality of material curing and forming.
在玻璃纤维增强热固性复合软管的灌注过程中,其树脂基体的粘度会随时间变化。因此,如果在灌注过程中不考虑树脂粘度随时间变化对内部树脂流动性的影响,这可能会导致软管浸渍不完全,表现为存在大量空隙。这种现象会对管材的固化和成型过程质量产生不利影响。因此,基于树脂粘度的特性变化,本文考虑了材料内部树脂随时间演变引起的流动性变化。我们建立了一个有限元模拟模型,以计算和分析软管灌注过程中树脂粘度变化的整体灌注效果。此外,基于预测分析,提出了一种可变参数灌注策略,以增加树脂在软管中的浸渍,从而减少内部空隙含量,进而提高材料固化和成型的质量。