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Tensile behaviour of titanium-based carbon-fibre/epoxy laminate

机译:钛基碳纤维/环氧树脂层的拉伸行为

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Titanium-based carbon-fibre/epoxy laminates (TI-CF FMLs) are a type of fibre metal laminates (FMLs) formed by stacking thin layers of titanium alloy and carbon-fibre/epoxy laminates to combine the advantages of both constituent materials. Applications in various advanced fields, like aerospace, automotive, infrastructure and marine engineering industries, require such lightweight material with high strength/ stiffness and with the capability of absorbing sufficient energy subject to tension. In this study, the tensile behaviour of TI-CF FMLs was investigated under quasi-static loading. A comprehensive experimental study was conducted on twelve different configurations of FMLs as well as their constituent materials (i.e., Ti-6Al-4V, AA 2024-T3, and carbon-fibre/epoxy laminates). The stress-strain curves of the TI-CF FMLs were obtained and characterised into three stages. For comparison, the specific tensile properties of the materials were analysed. Moreover, the specific energy absorption reflecting the energy absorption capacity of the materials was also evaluated. The effects of the types and volume fractions of metal, and the orientations of fibre on the specific tensile performance of TI-CF FMLs were investigated through a parametric study, bringing more insights into the design of TI-CF FMLs under tension. Based on the obtained results, TI-CF FMLs with higher fraction of 0 degrees fibres and with metals featuring better specific strength/stiffness seemed to have enhanced specific tensile performance and improved specific energy absorption before failure. (C) 2021 Elsevier Ltd. All rights reserved.
机译:基于钛的碳纤维/环氧树脂层压材料(Ti-CF FML)是一种通过堆叠薄层合金和碳纤维/环氧树脂层叠层而形成的纤维金属层压板(FML),以将两个组成材料的优点结合在一起。各种先进领域的应用,如航空航天,汽车,基础设施和海洋工程行业,需要具有高强度/刚度的轻质材料,并且具有吸收足够的能量受到张力的能力。在该研究中,在准静态载荷下研究了Ti-CF FML的拉伸行为。在12种不同的FML配置中进行了全面的实验研究以及它们的组成材料(即Ti-6Al-4V,AA 2024-T3和碳纤维/环氧树脂层压物)。获得Ti-CF FML的应力 - 应变曲线,并表征为三个阶段。为了比较,分析了材料的特定拉伸性能。此外,还评估了反映了材料的能量吸收能力的特定能量吸收。通过参数研究研究了金属类型和体积分数的影响,以及纤维对Ti-CF FMLS的特异性拉伸性能的效果,对张力下的Ti-CF FMLS设计具有更多的见解。基于所得结果,具有较高纤维纤维的Ti-CF FMLS和具有更好的特定强度/刚度的金属似乎具有增强的特异性拉伸性能,并且在发生故障之前改善了特殊的能量吸收。 (c)2021 elestvier有限公司保留所有权利。

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