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Constitutive modeling for mechanical behavior of polymer-clay nanocomposite foams.

机译:聚合物粘土纳米复合泡沫材料力学行为的本构模型。

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摘要

Constitutive equations for characterizing the nonlinear mechanical behavior of polymer/clay nanocomposite foams were studied. To consider the influence of the crystallinity on the mechanical properties of the foams, both amorphous and semi-crystalline polymers were used. Several viscoelastic models were accounted for the modeling of tensile behavior. The constitutive equation for nonlinear tensile behavior of microcellular Poly(methyl-methacrylate) (PMMA) foams was expressed in terms of material properties and physical characteristics of foams such as strain, strain rate, elastic modulus, relative density of foam, and relaxation time constant. In the constitutive model for tensile behavior of PMMA/clay nanocomposite foams, the reinforcing effect by intercalation of the clays and the detrimental effect by clay agglomeration were considered. The constitutive equation was expressed in terms of clay morphology and material properties. The aspect ratio of clays and the expansion of clay layer spacing in the intercalated clay clusters were proved to play a vital role in the reinforcing mechanism. For the modeling of semi-crystalline polymer/clay nanocomposite foams, the effects of nanoclay loadings, crystallinity, strain rate, and foaming conditions on the foam morphology and mechanical properties of microcellular high density polyethylene (HDPE)/clay nanocomposites were studied. Intercalated clay structures were investigated in the nanocomposites, and microcellular foams were manufactured by a batch foaming process. Tensile mechanical tests indicated that Young's modulus and the tensile strength were reinforced on the whole with crystallinity and nanoclay contents. Also, a constitutive model for tensile behavior of HDPE/clay nanocomposite foams was proposed. The elastic modulus of the foams was developed using micromechanics theory and representative volume element (RVE) concept. The constitutive model for HDPE/clay nanocomposite foams was expressed in terms of microstructural properties of polymer, and physical properties of the foams. Employing the proper constitutive laws, the macroscopic material behaviors of polymer/clay nanocomposite foams could be represented. The developed constitutive models were demonstrated by experiment.
机译:研究了表征聚合物/粘土纳米复合泡沫塑料非线性力学行为的本构方程。为了考虑结晶度对泡沫的机械性能的影响,使用了无定形和半结晶聚合物。几个粘弹性模型被解释为拉伸行为的模型。微孔聚甲基丙烯酸甲酯(PMMA)泡沫的非线性拉伸行为的本构方程表示为泡沫的材料特性和物理特性,例如应变,应变率,弹性模量,泡沫的相对密度和松弛时间常数。在PMMA /粘土纳米复合泡沫材料拉伸特性的本构模型中,考虑了由粘土插层引起的增强作用和由粘土团聚引起的有害作用。本构方程用黏土形态和材料特性表示。层状粘土的纵横比和层间粘土的扩展被证明在增强机理中起着至关重要的作用。对于半结晶聚合物/粘土纳米复合泡沫的建模,研究了纳米粘土负载,结晶度,应变速率和发泡条件对微孔高密度聚乙烯(HDPE)/粘土纳米复合泡沫的形态和力学性能的影响。在纳米复合材料中研究了插层粘土结构,并通过分批发泡工艺制造了微孔泡沫。拉伸力学测试表明,杨氏模量和拉伸强度总体上随结晶度和纳米粘土含量而增强。同时,提出了HDPE /粘土纳米复合泡沫塑料拉伸性能的本构模型。泡沫的弹性模量是使用微力学理论和代表性体积元(RVE)概念开发的。 HDPE /粘土纳米复合泡沫的本构模型以聚合物的微观结构性质和泡沫的物理性质表示。利用适当的本构定律,可以表示聚合物/粘土纳米复合泡沫的宏观材料行为。实验证明了所建立的本构模型。

著录项

  • 作者

    Jo, Choonghee.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 126 p.
  • 总页数 126
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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