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Mode I fracture toughness and fractographic investigation of carbon fibre composites with liquid Methylmethacrylate thermoplastic matrix

机译:液态甲基丙烯酸甲酯热塑性基体的碳纤维复合材料的I型断裂韧性和分形学研究

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Laminated polymer composites are extensively used in various applications ranging from aerospace to automotive, building to marine and offshore, and much more. These composites possess higher mechanical properties in their in-plane directions, but lower interlaminar properties. Especially, low interlaminar fracture toughness (ILFT) makes them susceptible to delamination. In the current research, a novel thermoplastic-based thin-ply composite system is conceptualized and manufactured with an aim to improve the through-the-thickness properties and which can be a competitive solution to traditional epoxy-based composites as well as other class of thermoplastic composites. The detailed experimental investigation on determining the Mode I ILFT properties of these thin ply carbon fibre thermoplastic composites, along with thin ply thermoset composites for benchmarking, is carried out. Quasi-isotropic composite laminates were manufactured using a room temperature cure epoxy, and the novel reactive Methylmethacrylate (MMA) liquid thermoplastic resin. The thin ply/liquid MMA composites have shown 30% and 72% higher Mode I ILFT properties compared to the thick ply/liquid MMA and thin ply/Epoxy composites respectively. Surface morphological studies were conducted to understand and differentiate damage mechanisms in these composites. From the comprehended damage mechanisms, it was deduced that strong fibre-matrix interface, plastic deformation as well as features like ductile drawings in liquid MMA composites make them more resistant to crack propagation. (C) 2017 Elsevier Ltd. All rights reserved.
机译:层压聚合物复合材料广泛用于从航空航天到汽车,建筑,海洋和近海等各种应用。这些复合材料在其面内方向上具有较高的机械性能,但层间性能较低。特别是,较低的层间断裂韧性(ILFT)使它们易于分层。在当前的研究中,一种新颖的基于热塑性的薄层复合材料系统被概念化并制造出来,目的是提高其整体厚度,并且可以作为传统的基于环氧的复合材料以及其他类别的复合材料的竞争解决方案。热塑性复合材料。进行了详细的实验研究,以确定这些薄层碳纤维热塑性复合材料以及用于基准测试的薄层热固性复合材料的I型ILFT性能。使用室温固化环氧树脂和新型反应性甲基丙烯酸甲酯(MMA)液态热塑性树脂制造准各向同性复合层压板。薄层/液体MMA复合材料分别比厚层/液体MMA和薄层/环氧复合材料分别高出30%和72%。进行了表面形态学研究,以了解和区分这些复合材料的破坏机理。从理解的破坏机理可以推断出,强大的纤维-基体界面,塑性变形以及液态MMA复合材料中的延展性等特征使其具有更高的抗裂纹扩展能力。 (C)2017 Elsevier Ltd.保留所有权利。

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