BENDING PROPERTIES OF A FUNCTIONALLY GRADED POLYMERIC COMPOSITE REINFORCED WITH A HYBRID NANOMATERIAL

Mahdi M. S. Shareef, Ahmed Naif Al-Khazraji, Samir Ali Amin
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引用次数: 1

Abstract

In this paper, functionally graded polymer hybrid nanocomposites have been produced by silica (SiO2) nanoparticles and alumina (Al2O3) nanoparticles distributed in a matrix of epoxy during the ultra-sonication via hand lay-up method. The variation in nanoparticles volume fraction (Vf.) has been given in the thickness direction for reaching the gradation. Each layer has a thickness of 1.2 mm through various concentrations of nanoparticles and is sequentially cast in acrylic moulds to fabricate the graded composite sheet with a 6 mm thickness. To fabricate the functionally graded layers, various concentrations of different nanoparticles (1.5% SiO2, 1% SiO2, epoxy, 2% Al2O3 and 3% Al2O3) have been used for tensile and compressive testing each isotropic layer of functionally graded material (FGM). The mechanical property that was studied for pure epoxy, isotropic and FGM was the flexural resistance. The flexural properties of FGM, isotropic nanocomposite (1% SiO2 + 2% Al2O3) and pristine epoxy, for evaluating their mechanical properties, including flexural stress-strain criteria and flexural Young's modulus, were determined via a Three-point bending test, with loading from the side of silica and alumina for the hybrid-FGM and at one side for the isotropic hybrid nanocomposite and pristine epoxy. The mechanical properties (tensile and compression) and the density of every layer were obtained for the epoxy resin and nanocomposites. They can benefit from the Finite Element Analysis (FEA) of the Three-point bending test via the Design Modeler (ANSYS workbench). The results of experiments were confirmed via building a detailed 3D FE model. Also, the advanced deformation results from the FE model were found in good agreement with the experimental outcomes.
杂化纳米材料增强功能梯度聚合物复合材料的弯曲性能
本文通过手工叠层法,将二氧化硅(SiO2)纳米颗粒和氧化铝(Al2O3)纳米颗粒分布在环氧树脂基体中,制备了功能梯度聚合物杂化纳米复合材料。已经给出了纳米颗粒体积分数(Vf)在厚度方向上的变化以达到分级。通过各种浓度的纳米颗粒,每个层的厚度为1.2mm,并在丙烯酸模具中顺序浇铸,以制备厚度为6mm的分级复合片材。为了制造功能梯度层,已经使用不同浓度的不同纳米颗粒(1.5%SiO2、1%SiO2、环氧树脂、2%Al2O3和3%Al2O3)对功能梯度材料(FGM)的每个各向同性层进行拉伸和压缩测试。研究了纯环氧树脂、各向同性和FGM的力学性能为抗弯性能。通过三点弯曲试验确定了FGM、各向同性纳米复合材料(1%SiO2+2%Al2O3)和原始环氧树脂的弯曲性能,用于评估其机械性能,包括弯曲应力-应变标准和弯曲杨氏模量,对于杂化FGM,从二氧化硅和氧化铝一侧加载,对于各向同性杂化纳米复合材料和原始环氧树脂,从一侧加载。获得了环氧树脂和纳米复合材料的力学性能(拉伸和压缩)和每层的密度。他们可以通过设计建模器(ANSYS工作台)从三点弯曲试验的有限元分析(FEA)中受益。通过建立详细的三维有限元模型,验证了实验结果。此外,有限元模型的先进变形结果与实验结果吻合良好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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24 weeks
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