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首页> 外文期刊>Composites Science and Technology >Nanofibre bridging as a toughening mechanism in carbon/epoxy composite laminates interleaved with electrospun polyamide nanofibrous veils
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Nanofibre bridging as a toughening mechanism in carbon/epoxy composite laminates interleaved with electrospun polyamide nanofibrous veils

机译:纳米纤维桥接作为碳/环氧树脂复合层合物与电纺聚酰胺纳米纤维面纱交错的增韧机理

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Electrospun thermoplastic nanofibres have a large potential for the interlaminar toughening of composite laminates. They can easily be placed in resin rich interlayers between reinforcing plies prior to laminate production and require no dispersion into the matrix resin. Although there are many expected benefits, the research on composite laminates enhanced with electrospun thermoplastic nanofibres is still very limited and a thorough understanding of the toughening mechanism is still missing. This article provides thorough insights into the micromechanisms that lead to the interlaminar toughening of carbon/epoxy composite laminates interleaved with electrospun polyamide nanofibrous veils. The main mechanism leading to a higher interlaminar fracture toughness, both under Mode I and Mode II loading conditions, was the bridging of (micro)cracks by PA nanofibres. The effectiveness of the nanofibre bridging toughening mechanism is dependent on a good load transfer to the nanofibres. Crack propagation under Mode II loading conditions resulted in much higher improvements than under Mode I loading due to an optimal loading of the nanofibres along their fibre direction in the plane of the nanofibrous veil. In Mode I crack propagation, however, the loading of the nanofibres is less optimal and was shown to be dependent on both the primary reinforcement fabric architecture, as well as on the presence of a carbon fibre bridging zone. (C) 2015 Elsevier Ltd. All rights reserved.
机译:电纺热塑性纳米纤维对于复合材料层压板的层间增韧具有很大的潜力。在层压材料生产之前,可以轻松地将它们放置在增强层之间的富含树脂的中间层中,并且无需分散到基体树脂中。尽管有许多预期的好处,但对用电纺热塑性纳米纤维增强的复合材料层压板的研究仍然非常有限,并且仍缺乏对增韧机理的透彻了解。本文深入探讨了微观机制,这些机制可导致碳/环氧树脂复合层合物与电纺聚酰胺纳米纤维面纱交错层间增韧。在模式I和模式II加载条件下,导致较高的层间断裂韧性的主要机理是PA纳米纤维桥接(微)裂纹。纳米纤维桥联增韧机制的有效性取决于向纳米纤维的良好负载转移。在模式II加载条件下的裂纹扩展比在模式I加载下的裂纹改进要高得多,这是因为纳米纤维沿着纳米纤维面纱平面中的纤维方向进行了最佳加载。然而,在模式I裂纹扩展中,纳米纤维的负载次优,并且显示出它既取决于主要的增强织物结构,又取决于碳纤维桥接区的存在。 (C)2015 Elsevier Ltd.保留所有权利。

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