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Flexural performance and cost efficiency of carbon/basalt/glass hybrid FRP composite laminates

机译:碳/玄武岩/玻璃纤维复合玻璃钢复合层压板的抗弯性能和成本效率

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This study investigates the interply hybridization of carbon fibre reinforced polymer (CFRP) composite laminate to improve the flexural performance and cost efficiency. Carbon layers were replaced partially by basalt and/or glass fibres to explore the effects of hybrid ratio and stacking sequence on the flexural behavior and material usage. Hybrid laminates were manufactured by vacuum assisted resin transfer molding (VARTM) process. Three-point bending tests were carried out to characterize the flexural properties and failure mechanisms of the hybrid composite laminates. The fracture surfaces were examined by scanning electron microscopy (SEM). The results showed that flexural strength and modulus of the hybrid laminates decreased with the increase in the hybrid ratio of basalt fibres ranging from 0 to 50%; however negligible effects on flexural properties were observed when hybrid ratio increased further up to 75%. For the hybrid samples, a higher flexural modulus can be obtained by placing carbon layers on the both tensile and compressive sides symmetrically; and a higher flexural strength can be achieved by placing basalt or glass fibre through a sandwich-like stacking sequence with a hybrid ratio of 50%. The finite element modeling and classic laminate theory (CLT) analysis were also conducted through validation against the experimental results, which enabled to reveal the details of strain, damage and fracture under bending. The study exhibited a better material efficiency for glass/carbon hybrid laminates in terms of strength/cost and modulus/cost ratio; and the benefits of such cost efficiency of hybridization were discussed in depth for potential engineering applications.
机译:这项研究调查碳纤维增强聚合物(CFRP)复合层压板的层间杂交,以提高抗弯性能和成本效率。碳层被玄武岩和/或玻璃纤维部分取代,以探索混合比和堆积顺序对弯曲行为和材料使用的影响。混合层压板是通过真空辅助树脂传递模塑(VARTM)工艺制造的。进行了三点弯曲测试,以表征杂化复合层压板的弯曲性能和破坏机理。通过扫描电子显微镜(SEM)检查断裂表面。结果表明,随着玄武岩纤维混合比的增加,混合层合物的抗弯强度和模量降低,范围为0〜50%。但是,当混合比进一步提高到75%时,对弯曲性能的影响可忽略不计。对于混合样品,通过在拉伸侧和压缩侧对称放置碳层,可以获得更高的挠曲模量。通过将玄武岩或玻璃纤维以50%的混合比通过夹心状堆叠顺序放置,可以获得更高的抗弯强度。通过对实验结果的验证,还进行了有限元建模和经典层压理论(CLT)分析,从而能够揭示弯曲下的应变,损伤和断裂的细节。该研究表明,就强度/成本和模量/成本比而言,玻璃/碳杂化层压板的材料效率更高。并就潜在的工程应用深入讨论了这种杂交成本效益的好处。

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