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An experimental and numerical investigation of highly strong and tough epoxy based nanocomposite by addition of MWCNTs: Tensile and mode I fracture tests

机译:添加MWCNTs的高强度坚硬环氧基纳米复合材料的实验性和数值研究:拉伸和模式I断裂试验

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The present study investigates, through experimental and numerical approaches, the incorporation effect of different weight concentrations of multi-walled carbon nanotubes (MWCNTs) on the mechanical properties of epoxy. Tensile and mode I fracture tests were performed to investigate the effect of the addition of MWCNTs on Young's modulus, Ultimate Tensile Strength (UTS), critical stress intensity factor (KIC) and critical strain energy release rate (GIC). Different carbon nanotubes (CNTs) contents were employed to compare the effect of the resulting microstructures (well-dispersed and agglomerated CNTs) on the mechanical properties. Field Emission Scanning Electron Microscopy (FESEM) and Scanning Electron Microscopy (SEM) were used for microstructural analysis and fractography. Experimental results showed that UTS was improved (28%) by incorporation of MWCNTs while the KIC and GIC were substantially increased by 192% and 614%, respectively. CNT pullout and crack bridging were the main contributing mechanisms in toughening the epoxy at low CNT contents (0.1 and 0.25 wt%). In contrast, a combination of crack bridging and crack branching was responsible for the resin toughening in the case of 0.5 wt% loading. The significant increase for KIC and GIC demonstrated the excellent performance of the dispersion approach used in this study. Finite Element modelling was used to provide a more robust analysis of the effect of CNT incorporation in tension tests and of the toughening mechanism of the nanocomposites in mode-I fracture tests.
机译:本研究通过实验和数值方法研究了不同重量浓度的多壁碳纳米管(MWCNT)对环氧树脂的机械性能的掺入效应。进行拉伸和模式I断裂试验以研究增加MWCNTs对杨氏模量,最终拉伸强度(UTS),临界应力强度因子(KIC)和临界应变能量释放率(GIC)的影响。采用不同的碳纳米管(CNT)含量来比较所得微观结构(井分散和附聚CNT)对机械性能的影响。场发射扫描电子显微镜(FESEM)和扫描电子显微镜(SEM)用于微结构分析和断裂。实验结果表明,通过掺入MWCNT,kic和gic的掺入显着增加192%和614%,改善了UTs(28%)。 CNT拉伸和裂纹桥接是在低CNT内容物(0.1和0.25wt%)下加强环氧树脂的主要贡献机制。相反,裂纹桥接和裂纹支化的组合负责在0.5wt%负载的情况下的树脂增韧。 KIC和GIC的显着增加显示了本研究中使用的分散方法的优异性能。有限元建模用于提供CNT掺入在张力试验中的效果和纳米复合材料中的纳米复合材料中的增韧机制的更稳健分析。

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