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Interlaminar Fracture Toughness Behavior of Electron-Beam Cured Carbon-Fiber Reinforced Epoxy-Resin Composites

机译:电子束固化碳纤维增强环氧树脂复合材料的层间断裂韧性行为

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摘要

The work describes the preparation and physical-mechanical characterization of unidirectional CFRP panels manufactured by an electron beam curing technique. Delamination fracture toughness in Mode I and II is investigated in order to evaluate the influence of fiber-matrix adhesion strength, matrix toughness and matrix crosslinking density as determined by the radiation curing process. A matrix system comprising a DGEBA epoxy monomer and an initiator of cationic polymerization have been used, with one batch of resin mixed with a PES monomer in order to enhance matrix toughness. Curing was achieved with a pulsed 10 MeV Electron Beam accelerator. Thermally cured composite systems have also been manufactured and tested for comparison. Results from double cantilever beam and end notched flexure delamination tests have been analyzed and correlated with results from short beam shear, dynamic mechanical thermal analysis tests and SEM micrographs of delaminated surfaces.
机译:该工作描述了通过电子束固化技术制造的单向CFRP面板的制备和物理力学特性。为了评估纤维-基体粘合强度,基体韧性和基体交联密度(通过辐射固化工艺确定)的影响,研究了模式I和II中的分层断裂韧性。已经使用了包含DGEBA环氧单体和阳离子聚合引发剂的基质体系,其中一批树脂与PES单体混合以增强基质韧性。用脉冲的10 MeV电子束加速器实现固化。还已经制造了热固化的复合材料系统,并进行了测试以进行比较。分析了双悬臂梁和端部切口挠曲脱层测试的结果,并将其与短梁剪切,动态机械热分析测试和分层表面的SEM显微照片的结果相关联。

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