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Buckling of Carbon Nanotube-Reinforced Polymer Laminated Composite Materials Subjected to Combined Axial Compression and Shear Loading

机译:碳纳米管增强的聚合物层压复合材料在轴压和剪切载荷共同作用下的屈曲

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A multi-scale method to predict the stiffness and stability properties of carbon nanotube-reinforced laminates has been developed. This method is used in the prediction of the buckling behavior of laminated carbon nanotube-polyethylene composites formed by stacking layers of carbon nanotube-reinforced polymer with the nanotube alignment axes of each layer oriented in different directions. Linking of intrinsic, nanoscale-material definitions to finite scale-structural properties is achieved via a hierarchical approach in which the elastic properties of the reinforced layers are predicted by an equivalent-continuum modeling technique. Solutions for infinitely long symmetrically laminated nanotube-reinforced laminates with simply-supported or clamped edges subjected to axial compression and shear loadings are presented. The study focuses on the influence of nanotube volume fraction, length, orientation, and functionalization on finite-scale laminate response. Results indicate that for the selected laminate configurations considered in this study, angle-ply laminates composed of aligned, non-functionalized carbon nanotube-reinforced lamina exhibit the greatest buckling resistance with 1% nanotube volume fraction of 450 nm uniformly-distributed carbon nanotubes. In addition, hybrid laminates were considered by varying either the volume fraction or nanotube length through-the-thickness of a quasi-isotropic laminate. The ratio of buckling load-to-nanotube weight percent for the hybrid laminates considered indicate the potential for increasing the buckling efficiency of nanotube-reinforced laminates by optimizing nanotube size and propotion with respect to laminate configuration.
机译:已经开发了预测碳纳米管增强层压板的刚度和稳定性的多尺度方法。该方法用于预测通过堆叠碳纳米管增强的聚合物层而形成的碳纳米管-聚乙烯层压复合材料的屈曲行为,每层的碳纳米管排列轴朝向不同的方向。内在的,纳米尺度的材料定义与有限尺度的结构特性之间的联系是通过分层方法实现的,在该方法中,增强层的弹性特性是通过等效连续模型技术进行预测的。提出了无限长的对称层压纳米管增强的层压板的解决方案,这些层压板具有简单支撑或夹紧的边缘,它们承受轴向压缩和剪切载荷。该研究集中在纳米管体积分数,长度,取向和功能化对有限规模层压板响应的影响上。结果表明,对于本研究中考虑的选定层压板配置,由对齐的,未官能化的碳纳米管增强的层板组成的角层板层压板显示出最大的抗屈曲性,其中纳米管的体积分数为450 nm均匀分布的碳纳米管的1%。此外,通过改变准各向同性层压板的体积分数或纳米管的整个厚度来考虑混合层压板。所考虑的混合层压板的屈曲载荷与纳米管重量百分比的比率表明,通过优化纳米管尺寸和相对于层压板结构的支撑度,可以提高纳米管增强的层压板的屈曲效率。

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