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Experimental Characterization of Shape Memory Polymer Enhanced Thermoplastic Self-Healing Carbon/Epoxy Composites

机译:形状记忆聚合物增强的热塑性自修复碳/环氧树脂复合材料的实验表征

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Self-healing composites are polymeric composite materials that have embedded healant polymers, which can heal the micro and macroscopic damages by autonomous fashion or through external intervention. For external intervention type of self-healing reported to date, it was either unaddressed or achieved manually. In this study, in-situ, biomimetic, close then heal type of self-healing was implemented to heal delamination damage in carbon fiber reinforced polymer (CFRP) matrix composite. In the studied self-healing scheme, a blend of thermoplastic polyurethane based shape memory polymer (SMP) and polycaprolactone (PCL) was utilized with the thermosetting epoxy as the healant, while the in-situ triggering (heating) was implemented by the macro fiber composite (MFC). The SMP and PCL mixture exhibits a combination of shape memory (SM) assisted healing response, where SMP assisted in closing the cracks upon heating above (80°C) its glass transition temperature (Tg) (55°C) while PCL chains tackify the cracked surfaces by melt (melting temperature, Tm=55~58°C) diffusion to the free surface and ultimately across the area of damage during the same heating. We found that the optimum thermal actuation time via localized heating through the MFC is 30 minutes. The localized MFC actuated healing showed a significant improvement in healing efficiency, which is determined based on the Mode-Ⅰ interlaminar fracture toughness. Specimens with MFC actuated healing showed almost complete healing, as healing efficiency relative to virgin fracture toughness of up to 146.42% was obtained. Fractography analysis was carried out to characterize the fracture recovery pattern of CFRP composite by optical microscope. The change in material properties of the thermosetting epoxy due to the addition of the thermoplastic healants was also investigated via Fourier transform infrared (FTIR) spectra and Differential scanning calorimetry (DSC).
机译:自修复复合材料是具有嵌入的修复聚合物的聚合复合材料,可以通过自主方式或通过外部干预来修复微观和宏观损伤。对于迄今为止报道的外部干预类型的自我修复,它要么未解决,要么手动实现。在这项研究中,就地,仿生,接近然后愈合的自我修复类型被实施来修复碳纤维增强聚合物(CFRP)基复合材料中的分层损伤。在研究的自修复方案中,热塑性聚氨酯基形状记忆聚合物(SMP)和聚己内酯(PCL)的混合物被用作热固性环氧树脂作为修复剂,而原位触发(加热)则由大纤维实现复合(MFC)。 SMP和PCL混合物表现出形状记忆(SM)辅助的愈合反应的组合,其中SMP在加热到高于(80°C)其玻璃化转变温度(Tg)(55°C)时有助于闭合裂纹,而PCL链增粘熔体(熔化温度,Tm = 55〜58°C)将裂纹表面扩散到自由表面,并最终在同一加热过程中越过损伤区域。我们发现通过MFC进行局部加热的最佳热启动时间为30分钟。 MFC驱动的局部愈合表现出显着的愈合效率提高,这是根据Mode-I层间断裂韧性确定的。具有MFC驱动的愈合的标本显示出几乎完全的愈合,因为相对于原始断裂韧性获得的愈合效率高达146.42%。通过光学显微镜进行分形分析以表征CFRP复合材料的断裂恢复模式。还通过傅立叶变换红外(FTIR)光谱和差示扫描量热法(DSC)研究了由于添加了热塑性固化剂而引起的热固性环氧树脂材料性能的变化。

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