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Impact face influence on low velocity impact performance of interply laminated plates

机译:冲击面对夹层板低速冲击性能的影响

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Fibre Metal Laminate (FML), a metal sandwiched hybrid composite material is well-known for its enhanced impact properties and better damage tolerance and it has been successfully implemented in diverse engineering applications in aviation industry. With heterogeneous constituents, the stacking sequence of FML is believe to play a critical role to govern its overall energy absorption capability by means of controlling delamination of metal composite interface and plastic deformation of metal layers. As a precursor, low velocity impact experiments were conducted on interply configured transparent plastic plates in order to extract the significance of stacking sequence and realize the characteristics of each layer through naked eye which is not possible in FML due to opacity of metal layer. The stack configuration constitute hard acrylic (brittle) and soft polycarbonate (ductile) plates analogous to composite (brittle) and metal (ductile) layers on FML laminate and the impact event is performed on either hard or soft facing sides separately. Hard side samples resemble more protective than soft side impact sample, with large peak resistant force and expose smaller damage growth in all experimented cases.
机译:纤维金属层压板(FML)是一种金属夹层杂化复合材料,以其增强的冲击性能和更好的抗损伤性而闻名,已成功地应用于航空业的各种工程应用中。对于异质成分,FML的堆叠顺序被认为通过控制金属复合材料界面的分层和金属层的塑性变形,在控制其整体能量吸收能力方面起着至关重要的作用。作为先驱,在中间配置的透明塑料板上进行了低速冲击实验,以提取堆叠顺序的重要性并通过肉眼实现每一层的特性,这在FML中由于金属层的不透明性是不可能的。堆叠结构构成硬质丙烯酸(脆性)板和软质聚碳酸酯(延性)板,类似于FML层压板上的复合层(脆性)和金属(延性)层,并且在硬质或软质表面分别进行冲击。硬质侧面样品比软质侧面碰撞样品更具保护性,在所有实验情况下均具有较大的峰值抗力,并暴露出较小的损伤增长。

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