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Study of Mechanical Responses and Thermal Expansion of CNF-modified Polyester Nanocompositcs Processed by Different Mixing Systems

机译:不同混合体系对CNF改性聚酯纳米复合材料力学响应和热膨胀性能的研究

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In this study, different dispersion techniques such as sonication at high frequency, mechanical mixing, and magnetic stirring methods were employed to infuse 0.1 to 0.4 wt.% carbon nanofiber (CNF) into polyester matrix to study the influence of CNF on mechanical and thermal properties of the polyester nanocomposites. Dispersion of CNF studied using scanning electron microscopy (SEM) micrographs revealed excellent dispersion of CNF using sonication when 0.2 wt.% CNF was mixed in polyester resulting in enhanced mechanical response. On the other hand, agglomerations were observed in samples prepared with other mixing methods. Polyester with 0.2 wt.% CNF samples prepared by sonication resulted in 88% and 16% increase in flexural strength and modulus, respectively, over neat samples. Quasi-static compression tests showed similar increasing trend with addition of 0.2 wt.% CNF. Dynamic mechanical analysis (DMA) showed 35% and 5 ℃ improvement in the storage modulus and glass transition temperature (T_g), respectively, in the 0.2 wt.% loaded samples. Thermal mechanical analysis (TMA) performed on neat and samples with 0.2 wt.% CNF showed lower coefficient of thermal expansion (CTE) in nanophased sample compared to neat. Fracture morphology evaluated using SEM revealed relatively rougher surface in CNF-loaded polyester compared to neat as a result of better interaction between fiber and matrix due to the presence of CNF.
机译:在这项研究中,采用不同的分散技术,例如高频声处理,机械混合和磁力搅拌方法,将0.1至0.4 wt。%的碳纳米纤维(CNF)注入聚酯基体中,以研究CNF对机械和热性能的影响。聚酯纳米复合材料。使用扫描电子显微镜(SEM)显微照片研究的CNF的分散度表明,当将0.2 wt。%CNF混合在聚酯中时,通过超声处理,CNF的分散度极佳,从而导致机械响应增强。另一方面,在用其他混合方法制备的样品中观察到团聚。通过超声处理制备的具有0.2 wt。%CNF样品的聚酯,其抗弯强度和模量分别比纯样品高88%和16%。准静态压缩试验显示出添加0.2 wt。%CNF的相似增长趋势。动态力学分析(DMA)显示,在加载0.2 wt。%的样品中,储能模量和玻璃化转变温度(T_g)分别提高了35%和5℃。对纯净样品和具有0.2 wt。%CNF的样品进行的热机械分析(TMA)显示,与纯净样品相比,纳米相样品中的热膨胀系数(CTE)较低。使用SEM评估的断裂形貌显示,与CNF相比,加载CNF的聚酯的表面相对较粗糙,这是由于CNF的存在,纤维与基质之间的相互作用更好。

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