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首页> 外文期刊>Polymer Composites >Interphase engineering in carbon fiber/epoxy composites: Rate sensitivity of interfacial shear strength and interfacial fracture toughness
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Interphase engineering in carbon fiber/epoxy composites: Rate sensitivity of interfacial shear strength and interfacial fracture toughness

机译:碳纤维/环氧复合材料中的相互作用:界面剪切强度和界面裂缝韧性的速率敏感性

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摘要

Designing the interface in polymer composites is fundamentally a challenging task. Here, we demonstrate a strategy to engineer the interphase microstructure in carbon fiber/epoxy composites (CFRPs) using carbon nanotubes (CNTs). The incorporation of CNT modifies the interfacial mechanics and interfacial chemistry in conventional CFRPs by creating concentrated, dispersed and mixed type interphase. Therefore, a detailed study is warranted to establish the interfacial microstructure-property relationship in CNT modified CFRPs. Experimental results show that the relative improvement in interfacial shear strength (IFSS) and interfacial fracture toughness (G(ic)) depends on the microstructure of interphase. It is shown that simultaneous improvement in IFSS and G(ic) is possible with certain types of microstructural designs. Moreover, it is observed that IFSS and G(ic) are not constant material parameters but both of them show a power-law type dependence on the applied loading rate. The range of rate sensitivity parameters as a function of interphase type suggests that while concentrated and mixed interphase is more suited to maintain the interfacial integrity, dispersed interphase is beneficial for energy dissipating applications of CFRPs. In addition, IFSS and G(ic) exhibit negative rate sensitivity for certain cases. Finally, it is shown that interphase designing using CNT is an excellent tool to accurately tailor the average interfacial properties of CFRP in a broad range of 16-79 MPa and 100-453 J m(-2) for IFSS and G(ic), respectively.
机译:在聚合物复合材料中设计界面基本上是一个具有挑战性的任务。在这里,我们展示了使用碳纳米管(CNT)在碳纤维/环氧复合材料(CFRP)中的间间微结构的策略。 CNT的掺入通过产生浓缩,分散和混合型相互作用来改变常规CFRP中的界面力学和界面化学。因此,有必要进行详细研究以建立CNT改性CFRP中的界面微观结构性关系。实验结果表明,界面剪切强度(IFSS)和界面断裂韧性(G(IC))的相对改善取决于相互作用的微观结构。结果表明,具有某些类型的微观结构设计,可以同时改进IFSS和G(IC)。此外,观察到IFS和G(IC)不是恒定的材料参数,但它们两者都显示了对所施加的负载率的幂律依赖性。速率灵敏度参数的范围作为相互作用类型的函数表明,在浓缩和混合间间相互作用的同时更适合维持界面完整性,分散的间差异是有利于CFRP的能量耗散应用。此外,IFSS和G(IC)对于某些情况表现出负速率敏感性。最后,显示使用CNT的间间设计是一种优异的工具,可以精确地定制CFRP的平均界面特性,用于IFSS和G(IC),分别。

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