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不同冲击能量水平下竹/玻璃混杂复合材料低速冲击性能及损伤扩展的实验评估

Experimental Evaluation of Low Velocity Impact Properties and Damage Progression on Bamboo/Glass Hybrid Composites Subjected to Different Impact Energy Levels.

作者信息

Md Shah Ain Umaira, Hameed Sultan Mohamed Thariq, Safri Syafiqah Nur Azrie

机构信息

Laboratory of Biocomposite Technology, Institute of Tropical Forestry and Forest Products (INTROP), UPM Serdang 43400, Selangor Darul Ehsan, Malaysia.

Department of Aerospace Engineering, Faculty of Engineering, Universiti Putra Malaysia, UPM Serdang 43400, Selangor Darul Ehsan, Malaysia.

出版信息

Polymers (Basel). 2020 Jun 4;12(6):1288. doi: 10.3390/polym12061288.

Abstract

Six impact energy values, ranging from 2.5 J to 10 J, were applied to study the impact properties of neat epoxy and bamboo composites, while six impact energy values, ranging from 10 J to 35 J, were applied on bamboo/glass hybrid composites. Woven glass fibre was embedded at the outermost top and bottom layer of bamboo powder-filled epoxy composites, producing sandwich structured hybrid composites through lay-up and molding techniques. A drop weight impact test was performed to study the impact properties. A peak force analysis showed that neat epoxy has the stiffest projectile for targeting interaction, while inconsistent peak force data was collected for the non-hybrid composites. The non-hybrid composites could withstand up to 10 J, while the hybrid composites showed a total failure at 35 J. It can be concluded that increasing the filler loading lessened the severity of damages in non-hybrid composites, while introducing the woven glass fibre could slow down the penetration of the impactor, thus lowering the chances of a total failure of the composites.

摘要

采用六个冲击能量值(范围从2.5焦耳到10焦耳)来研究纯环氧树脂和竹材复合材料的冲击性能,而对竹/玻璃混杂复合材料则采用六个冲击能量值(范围从10焦耳到35焦耳)。将编织玻璃纤维嵌入竹粉填充环氧树脂复合材料的最外层顶层和底层,通过铺层和成型技术制备出三明治结构的混杂复合材料。进行落锤冲击试验以研究其冲击性能。峰值力分析表明,纯环氧树脂在目标相互作用时具有最硬的弹丸,而非混杂复合材料收集到的峰值力数据不一致。非混杂复合材料能够承受高达10焦耳的能量,而混杂复合材料在35焦耳时出现完全破坏。可以得出结论,增加填料含量可减轻非混杂复合材料的损伤严重程度,而引入编织玻璃纤维可减缓冲击器的穿透,从而降低复合材料完全破坏的几率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b69/7361674/0efee0faaada/polymers-12-01288-g001.jpg

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