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Tensile mechanical behavior and fracture toughness of MWCNT and DWCNT modified vinyl-ester/polyester hybrid nanocomposites produced by 3-roll milling

机译:三辊磨制MWCNT和DWCNT改性乙烯基酯/聚酯杂化纳米复合材料的拉伸力学行为和断裂韧性

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This study aims to investigate the tensile mechanical behavior and fracture toughness of vinyl-ester/polyester hybrid nanocomposites containing various types of nanofillers, including multi- and double-walled carbon nanotubes with and without amine functional groups (MWCNTs, DWCNTs, MWCNT-NH_2 and DWCNT-NH_2). To prepare the resin suspensions, very low contents (0.05, 0.1 and 0.3 wt.%) of carbon nanotubes (CNTs) were dispersed within a specially synthesized styrene-free polyester resin, conducting 3-roll milling technique. The collected resin stuff was subsequently blended with vinyl-ester via mechanical stirring to achieve final suspensions prior to polymerization. Nanocomposites containing MWCNTs and MWCNT-NH_2 were found to exhibit higher tensile strength and modulus as well as larger fracture toughness and fracture energy compared to neat hybrid polymer. However, incorporation of similar contents of DWCNTs and DWCNT-NH_2 into the hybrid resin did not reflect the same improvement in the corresponding mechanical properties. Furthermore, experimentally measured elastic moduli of the nanocomposites containing DWCNTs, DWCNT-NH_2, MWCNTs and MWCNT-NH_2 were fitted to Halphin-Tsai model. Regardless of amine functional groups or content of carbon nanotubes, MWCNT modified nanocomposites exhibited better agreement between the predicted and the measured elastic moduli values compared to nanocomposites with DWCNTs. Furthermore, Transmission Electron Microscopy (TEM) and Scanning Electron Microscopy (SEM) were used to reveal dispersion state of the carbon nanotubes within the hybrid polymer and to examine the CNT induced failure modes that occurred under mechanical loading, respectively. Based on the experimental findings obtained, it was emphasized that the types of CNTs and presence of amine functional groups on the surface of CNTs affects substantially the chemical interactions at the interface, thus tuning the ultimate mechanical performance of the resulting nanocomposites.
机译:这项研究旨在研究含有各种类型的纳米填料的乙烯基酯/聚酯杂化纳米复合材料的拉伸力学行为和断裂韧性,包括具有和不具有胺官能团(MWCNT,DWCNT,MWCNT-NH_2和DWCNT-NH_2)。为了制备树脂悬浮液,将极低含量(0.05、0.1和0.3 wt。%)的碳纳米管(CNT)分散在专门合成的不含苯乙烯的聚酯树脂中,进行三辊研磨技术。随后将收集的树脂原料通过机械搅拌与乙烯基酯共混以在聚合之前获得最终的悬浮液。发现与纯杂化聚合物相比,包含MWCNT和MWCNT-NH_2的纳米复合材料表现出更高的拉伸强度和模量以及更大的断裂韧性和断裂能。然而,将相似含量的DWCNT和DWCNT-NH_2掺入杂化树脂中并不能反映出相应机械性能的相同改善。此外,将含有DWCNT,DWCNT-NH_2,MWCNT和MWCNT-NH_2的纳米复合材料的实验测量弹性模量拟合到Halphin-Tsai模型。不管胺官能团或碳纳米管的含量如何,与具有DWCNT的纳米复合材料相比,MWCNT改性的纳米复合材料在预测的和测量的弹性模量值之间显示出更好的一致性。此外,使用透射电子显微镜(TEM)和扫描电子显微镜(SEM)揭示碳纳米管在杂化聚合物中的分散状态,并分别检查在机械载荷下发生的CNT诱导的失效模式。基于获得的实验结果,强调了CNT的类型和在CNT表面上胺官能团的存在实质上影响了界面处的化学相互作用,从而调节了所得纳米复合材料的最终机械性能。

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