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Core-shell rubber nanoparticle reinforcement and processing of high toughness fast-curing epoxy composites

机译:核壳橡胶纳米粒子增强和高韧性快速固化环氧复合材料的加工

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摘要

To simultaneously address the lower toughness and the build-up of internal heat for fast-curing epoxy matrices, the influence of nominal 100 nm and 300 nm core-shell rubber (CSR) particles on the properties and rheo-kinetics were studied. The fracture energy was enhanced by a factor of 14.5, up to 2572 ± 84 J m−2 with 14.5 wt% of the nominal 300 nm diameter CSR particles, with evidence of cavitation and plastic void growth of the rubber core combined with shear band yielding of the epoxy matrix. These toughening mechanisms were modelled with an approximately linear increase up to 10 wt% for both particle types. At higher concentrations, deviation between the measured and modelled data was observed due to insufficient epoxy to dissipate additional energy. The CSR particles were not filtered out or damaged during the manufacturing of composites and reduced the total heat of reaction with a linear correlation, demonstrating a multi-functionality of simultaneous toughening and reduction of the exothermic peak.
机译:为了同时解决快速固化环氧基质的较低韧性和内部热量的增加,研究了标称100 nm和300 nm核壳橡胶(CSR)颗粒对性能和流变动力学的影响。断裂能提高了14.5倍,最高可达2572±84 J m−2,直径为300 nm的CSR标称颗粒的14.5 wt%,具有橡胶空化和塑性空洞生长以及剪切带产生的证据环氧基质。对这些增韧机理进行了建模,两种颗粒类型的线性增幅均高达10%。在较高浓度下,由于环氧树脂不足以耗散额外的能量,因此观察到的测量数据和模型数据之间存在偏差。在复合材料的制造过程中,CSR颗粒没有被滤出或损坏,并且以线性相关性降低了反应的总热量,证明了同时增韧和降低放热峰的多功能性。

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