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Cure behavior and mechanical properties of structural self-healing epoxy resins

机译:结构自修复环氧树脂的固化行为和力学性能

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Advances in the growing use of polymer composites in aerospace applications explore the possibility in the development of smart materials capable of self-repair. In this article, we have formulated and characterized a multifunctional autonomically healing composite inspired by the design of White et al. Microcapsules containing dicyclopentadiene (DCPD) and powders of Grubbs first generation catalyst were embedded in an epoxy formulation and both the epoxy precursor and the composite were cured up to the temperature of 120 °C that preserves the activity of the catalyst. The results on the cure behavior of an epoxy matrix for self-healing material and the influence of the components related to self-healing function on the dynamic-mechanical properties are investigated. The presence of catalyst powder causes a slight decrease in the elastic modulus value with respect to the epoxy matrix. At variance, a large recovery in this parameter is gained for the self-healing specimen, proving that well-distributed microcapsules contribute to improve the mechanical properties.
机译:聚合物复合材料在航空航天领域的日益广泛使用的进展探索了开发具有自我修复能力的智能材料的可能性。在本文中,我们根据White等人的设计启发,配制并表征了一种多功能的自愈复合材料。将包含二环戊二烯(DCPD)的微胶囊和Grubbs第一代催化剂的粉末包埋在环氧配方中,并将环氧前体和复合材料固化至120°C,以保持催化剂的活性。研究了用于自修复材料的环氧树脂基质的固化行为以及与自修复功能有关的组分对动态力学性能的影响。催化剂粉末的存在导致相对于环氧基质的弹性模量值略有降低。在不同的情况下,对于自愈样品,该参数获得了较大的恢复,证明了分布良好的微胶囊有助于改善机械性能。

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