材料科学
复合材料
环氧树脂
抗弯强度
极限抗拉强度
玄武岩纤维
复合数
艾氏冲击强度试验
复合材料层合板
扫描电子显微镜
纤维
纳米颗粒
纳米技术
作者
Chinmoy Kuila,Animesh Maji,Ujjwal Phadikar,Phani Kumar Mallisetty,Naresh Chandra Murmu,Tapas Kuila
摘要
Abstract Basalt fiber (BF) reinforced polymer composite containing nanoparticles is an efficient approach to improve the matrix dominated features. The objective of this study is to investigate the static and dynamic mechanical properties of CaCO 3 modified epoxy/BF composites. The composite laminates were fabricated through the hand‐layup process. Tensile and bending tests were conducted according to the ASTM D 3039 and ASTM D 790, respectively. The tensile and flexural properties were improved significantly when CaCO 3 particles were embedded in the BF/epoxy composites. The tensile strength increased by ~25.05% at 1 wt% loading (B2) of CaCO 3 . The flexural strength improvement was ~61.3% for the same amount of CaCO 3 loading. The viscoelastic as well as the thermal properties were also improved in the B2 composite specimen. Scanning electron microscopy and atomic force microscopy were employed to characterize the fracture surfaces. Therefore, BF reinforced composites combined low manufacturing costs with excellent mechanical and thermal capabilities, making them ideally suited to a variety of engineering applications. Highlights The calcinated CaCO 3 effectively improved the mechanical properties. The effect of CaCO 3 on the thermal behavior of laminates were studied. Eco‐friendly dispersion process required no solvents. The effect of the nanoparticles on the interfacial properties were investigated.
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