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首页> 外文期刊>Journal of Sandwich Structures and Materials >Sandwich-structured bamboo powder/glass fibre-reinforced epoxy hybrid composites - Mechanical performance in static and dynamic evaluations
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Sandwich-structured bamboo powder/glass fibre-reinforced epoxy hybrid composites - Mechanical performance in static and dynamic evaluations

机译:三明治结构竹粉/玻璃纤维增强环氧混合复合材料 - 静态和动态评估中的机械性能

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摘要

A layer of woven E-glass fibre was embedded each at top and bottom layer of bamboo-filled epoxy, producing sandwich-structured hybrid composites. The incorporation of woven glass fibre was intended to slow down the crack propagation in composites. Different bamboo powder loading was applied to analyse its effect on the static and dynamic mechanical properties of composites. The composite with the lowest bamboo powder loading of 10% marked the highest tensile strength, where the strength decreased as the loading increased. Poor bamboo-epoxy adhesion, observed from the SEM, leads to more chances of pull out fibres when tensile load was applied. Opposite trend was observed in flexural strength, where the highest loading of 30% marked the highest value of flexural strength. The dynamic evaluation was carried out with respect to temperature, which ranged from 25 degrees C to 150 degrees C, and at a fixed frequency of 1 Hz. Effective stress transfer between the fibre and the matrix takes place in composites with 30% bamboo powder loading, shown by the lowest peak height of the Tan delta curves. The significant increase in the storage modulus values for the composites at low temperature compared to the rubbery plateau region at high temperature suggested the high utility of the composites at low temperature regardless of the effect of the percentage increment in bamboo powder loading. These results showed that the bamboo powder inclusion helps in bestowing stiffness to the composites with 30% as the optimum percentage in this dynamic mechanical evaluation. It can be suggested that the introduction of woven-typed fibre into short fibre composites in sandwich structure, as discussed in this study, can slow down the failure of composites, and thus notify users before the total failure.
机译:在竹子填充的环氧树脂的顶部和底部各嵌入一层编织的E-玻璃纤维,制成三明治结构的混杂复合材料。编织玻璃纤维的加入旨在减缓复合材料中的裂纹扩展。采用不同的竹粉负载量,分析其对复合材料静态和动态力学性能的影响。竹粉负载量最低为10%的复合材料具有最高的拉伸强度,随着负载量的增加,强度降低。从SEM观察到,竹环氧树脂粘合性差,在施加拉伸载荷时,会导致更多拔出纤维的机会。在抗弯强度方面观察到相反的趋势,其中30%的最高载荷表示抗弯强度的最高值。根据温度进行动态评估,温度范围为25摄氏度至150摄氏度,固定频率为1赫兹。竹粉含量为30%的复合材料中,纤维与基体之间发生了有效应力传递,由Tan-delta曲线的最低峰高显示。与高温下的橡胶平台区域相比,复合材料在低温下的储能模量值显著增加,表明无论竹粉负载量的百分比增加如何,复合材料在低温下都具有很高的利用率。这些结果表明,竹粉夹杂有助于赋予复合材料刚度,在动态力学评估中,30%为最佳百分比。可以建议,如本研究所述,在夹层结构的短纤维复合材料中引入机织型纤维,可以减缓复合材料的失效,从而在完全失效之前通知用户。

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