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Positron annihilation spectroscopy and mechanical properties studies for epoxy matrices reinforced with different nanoparticles

机译:正电子ni没光谱法和不同纳米粒子增强环氧树脂基体的力学性能研究

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In this study, polymeric nanocomposites was composed of an epoxy polymer matrix reinforced with metal oxides Alumina (Al2O3), Silica (SiO2), and Carbon black (C) nanoparticles. Three different weight concentrations (0.5 wt%, 1.5 wt% and 3 wt%) of each nanofiller were dispersed in epoxy resin with sonication. Hardness and tensile properties for different contents were investigated. The effect of alumina, silica, and carbon nanoparticles on the nano-scale free volume properties of epoxy matrices was studied using positron annihilation lifetime spectroscopy (PALS). The S parameter was also measured for all samples as a function of the weight fractions of nanofiller. The behavior of the S parameter was analyzed in terms of positron annihilation and positronium formation. Dispersion and distribution of nanoparticles in epoxy was studied by scanning electron microscopy (SEM) and energy dispersive X-ray (EDX). The results showed that the minor addition of nanoparticles to epoxy resin increases the hardness. In addition, for 3 wt% the tensile strength was reduced for all composites over neat epoxy. Furthermore, the PLAS results indicated that the mechanical properties such as hardness, tensile strength and tensile modulus have a significant dependence on free volume. Attempts were made to correlate the available free volume with mechanical properties, which leads to general belief that any process reduces the free volume increases of both hardness and tensile strength.
机译:在这项研究中,聚合物纳米复合材料由环氧聚合物基质组成,该基质用金属氧化物氧化铝(Al2O3),二氧化硅(SiO2)和炭黑(C)纳米颗粒增强。将每种纳米填料的三种不同重量浓度(0.5 wt%,1.5 wt%和3 wt%)分散在环氧树脂中进行超声处理。研究了不同含量的硬度和拉伸性能。使用正电子an没寿命谱(PALS)研究了氧化铝,二氧化硅和碳纳米颗粒对环氧基质的纳米级自由体积特性的影响。还测量了所有样品的S参数,其是纳米填料重量分数的函数。根据正电子an没和正电子形成分析了S参数的行为。通过扫描电子显微镜(SEM)和能量色散X射线(EDX)研究了纳米粒子在环氧树脂中的分散和分布。结果表明,将纳米颗粒少量添加到环氧树脂中可增加硬度。另外,对于3wt%,所有复合材料的拉伸强度均比纯环氧树脂降低。此外,PLAS结果表明机械性能,例如硬度,抗张强度和抗张模量对自由体积有很大的依赖性。试图将可用的自由体积与机械性能相关联,这导致人们普遍认为,任何工艺都会降低自由体积的增加,从而增加硬度和拉伸强度。

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