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首页> 外文期刊>The Journal of Strain Analysis for Engineering Design >The high-velocity impact response of thermoplastic-matrix fibre-metal laminates
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The high-velocity impact response of thermoplastic-matrix fibre-metal laminates

机译:热塑性基体纤维金属层压板的高速冲击响应

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The high-velocity impact response of fibre metal laminates based on a woven polypropylene fibre reinforced polypropylene, termed a self-reinforced polypropylene, and a glass reinforced polypropylene has been investigated. Two types of aluminium alloy were considered, these being the 2024-O and 2024-T3 alloys. Tests on these composite-metal hybrids were undertaken using a gas gun over a wide range of incident impact energies. In this study, attention focused specifically on the perforation threshold. Following impact, the fracture mechanisms in the two types of fibre metal laminates were elucidated by sectioning and polishing samples through the point of impact and also by measuring the residual deformation of the hybrid plates. Cross-sections of the failed samples highlighted significant plasticity within the volume of these hybrid materials, indicating that considerable energy had been absorbed in plastically deforming the aluminium and composite plies. The impact resistances of the various laminates were compared by determining their specific perforation energies. Here, it was shown that fibre metal laminates based on the glass reinforced polypropylene composite offer a slightly higher perforation resistance than the self-reinforced polypropylene fibre metal laminates. Also, the fibre metal laminates based on the stronger 2024-T3 alloy out-performed their 2024-O counterparts. Finally, the perforation resistances of the fibre metal laminates were predicted using the previously reported Reid-Wen impact perforation model. Good agreement was observed between this impact model and the measured experimental data.
机译:已研究了基于编织聚丙烯纤维增强聚丙烯(称为自增强聚丙烯)和玻璃增强聚丙烯的纤维金属层压板的高速冲击响应。考虑了两种类型的铝合金,它们是2024-O和2024-T3合金。使用气枪对这些复合金属混合动力汽车进行了广泛的入射冲击能测试。在这项研究中,注意力特别集中在穿孔阈值上。撞击后,通过对试样进行切分和抛光以了解其撞击机理,并测量混合板的残余变形,从而阐明了两种纤维金属层压板的断裂机理。失败样品的横截面突出表明这些杂化材料的体积具有显着的可塑性,表明在铝和复合材料层的塑性变形中已吸收了大量能量。通过确定其特定的穿孔能,比较了各种层压材料的耐冲击性。在此表明,基于玻璃纤维增​​强的聚丙烯复合材料的纤维金属层压板比自增强的聚丙烯纤维金属层压板具有更高的抗穿孔性。同样,基于更坚固的2024-T3合金的纤维金属层压板的性能优于其2024-O同类产品。最后,使用先前报道的里德温冲击穿孔模型预测了纤维金属层压板的穿孔阻力。在该冲击模型和测得的实验数据之间观察到良好的一致性。

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