Leng Jing, Guo Tianzi, Yang Meng, Guo Zeshi, Fang Zhengqin, Liu Zhipeng, Li Dandan, Sun Dazhi
Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, China.
Materials (Basel). 2020 Jan 2;13(1):187. doi: 10.3390/ma13010187.
As a graphite derivative, graphite fluoride (GrF) has a remarkable fracture toughness improvement effect on epoxy materials. The fracture toughness variation of the epoxy could exert an influence on the low velocity impact resistance of the corresponding carbon fiber reinforced polymer (CFRP) composite. Therefore, the dependence of the low velocity impact resistance of the incorporated CFRP on the GrF content is worth analyzing. Here, different contents of GrF were applied to incorporate CFRP laminates and planned to find the optimal GrF content, in turn leading to the best impact resistance. Using a drop-weight impact test, the load vs. time curves and load vs. displacement curves were obtained. The incipient damage loads and maximum loads of various GrF contents of the samples were compared carefully. The absorbed energies during the impact process were calculated. The trend of absorbed energy decreased up to the 1 wt% sample, then increased significantly with the rise of GrF content. This deflection behavior can be explained by the combination of crack pinning, crack deflection and crack propagation, due to the rise in GrF content. Through the ultrasonic C-scan evaluation, the delamination areas of different GrF content of samples were measured. The trend of delamination area variation was accordant with the trend of absorbed energy variation. This presents a demonstration of the correlation between the absorbed energy and the damage level. The SEM images of the fracture surfaces were analyzed for the deflection behavior of the fracture toughness with various GrF contents. The plot of residual compression strength versus GrF content further indicated the 1 wt% was the optimal content at which the incorporated GrF endowed the most impact-resistant property to the CFRP laminates.
作为一种石墨衍生物,氟化石墨(GrF)对环氧材料具有显著的断裂韧性改善效果。环氧材料的断裂韧性变化会对相应的碳纤维增强聚合物(CFRP)复合材料的低速抗冲击性产生影响。因此,研究含GrF的CFRP的低速抗冲击性对GrF含量的依赖性具有重要意义。在此,将不同含量的GrF应用于CFRP层压板中,旨在找到最佳的GrF含量,从而实现最佳的抗冲击性能。通过落锤冲击试验,获得了载荷-时间曲线和载荷-位移曲线。仔细比较了不同GrF含量样品的初始损伤载荷和最大载荷。计算了冲击过程中的吸收能量。吸收能量的趋势在1 wt%的样品之前呈下降趋势,然后随着GrF含量的增加而显著增加。由于GrF含量的增加,这种挠曲行为可以通过裂纹钉扎、裂纹偏转和裂纹扩展的组合来解释。通过超声C扫描评估,测量了不同GrF含量样品的分层面积。分层面积变化趋势与吸收能量变化趋势一致。这证明了吸收能量与损伤程度之间的相关性。分析了不同GrF含量样品断口表面的扫描电子显微镜(SEM)图像,以研究断裂韧性的挠曲行为。残余抗压强度与GrF含量的关系图进一步表明,1 wt%是最佳含量,在此含量下,掺入的GrF赋予CFRP层压板最高的抗冲击性能。