首页> 外文期刊>Journal of Applied Polymer Science >Flexural behavior of pMWCNTs filled glass fiber/epoxy nanocomposites: Synthesis and interfacial failure
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Flexural behavior of pMWCNTs filled glass fiber/epoxy nanocomposites: Synthesis and interfacial failure

机译:pMWCNTs填充玻璃纤维/环氧纳米复合材料的弯曲行为:合成与界面失效

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摘要

Glass fiber reinforced polymer composite (GFRP) encounter many practical situations during its application, exposed to different temperature fluctuation. Absorption of moisture and the fluctuated thermal environment cause mechanical degradation of GFRP. The current plan is to explore the mechanical and chemical behavior of pristine multiwall carbon nanotubes(pMWCNTs)-glass fiber strengthens epoxy composites during thermal shock (TS). The laminates were prepared by the hand-lay-up process followed by compression molding. The thermal shock was performed at the temperature for the required samples was 135 degrees C for 24 h, followed by -135 degrees C for 24 h. A flexural test has been carried out at 1 mm/min loading speed. 0.2 wt pMWCNTs filled nanocomposite appeared to have the highest flexural strength and modulus compared to ambient samples. The thermomechanical behavior of nanocomposites has been accomplished by analyzing the dynamic mechanical thermal analysis graph (DMTA). Field emission scanning electron microscope (FESEM) analyzed the fracture surface of in-situ mechanical failure samples to find out the primary failure modes for strengthening and weakening mechanisms. The glass transition temperature (T-g) of the nanocomposite observed decreased due to homogeneous dispersion of pMWCNTs, imparting some effect on crosslink density and reinforcement up to 0.2 wt. This study reveals that the uniform distribution of pMWCNTs and thermal shock treatment enhances the matrix stiffness and improves the mechanical properties.
机译:玻璃纤维增强聚合物复合材料(GFRP)在应用过程中会遇到许多实际情况,暴露在不同的温度波动下。水分的吸收和波动的热环境导致GFRP的机械降解。目前计划探索原始多壁碳纳米管(pMWCNTs)-玻璃纤维增强环氧树脂复合材料在热冲击(TS)过程中的力学和化学行为。层压板是通过手工铺层工艺制备的,然后是压缩成型。在所需样品的温度为135°C下进行热冲击24小时,然后在-135°C下进行24小时。在1 mm/min的加载速度下进行了弯曲试验。与环境样品相比,0.2 wt% pMWCNTs填充的纳米复合材料似乎具有最高的弯曲强度和模量。纳米复合材料的热机械行为是通过分析动态机械热分析图(DMTA)完成的。场发射扫描电子显微镜(FESEM)对原位机械失效试样的断裂面进行了分析,找出了强化和弱化机制的主要失效模式。由于pMWCNTs的均匀分散,观察到的纳米复合材料的玻璃化转变温度(T-g)降低,对交联密度和增强产生了一定的影响,最高可达0.2 wt%。研究表明,pMWCNTs的均匀分布和热冲击处理增强了基体刚度,改善了基体的力学性能。

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