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First-order perturbation-based stochastic homogenization method applied to microscopic damage prediction for composite materials

机译:基于多阶扰动的随机均质化方法对复合材料的微观损伤预测

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摘要

In this paper, a first-order perturbation-based stochastic homogenization method was developed to predict the probabilities of not only macroscopic properties but also microscopic strain damage in multiphase composite materials, considering many random physical parameters. From the stochastic solution of microscopic strains, damage propagation was analyzed to predict where progressive damage would occur in the microstructures of composites subject to a given macroscopic strain. As an example, a short fiber-reinforced plastic, consisting of short fibers, matrix, and interphase, was used to show the influence of random physical parameters for each constituent material on the variability of the homogenized properties and microscopic strain. In another example, a coated particle-embedded composite material was stochastically analyzed to consider even slight influences of uncertainty in the mechanical properties of the coating material and show damage propagation in this coating layer. Characteristic displacements representing material heterogeneity were thoroughly investigated and extensively used with the aim of reducing the computational cost of finding them in a nonlinear analysis of the microscopic damage propagation.
机译:在本文中,开发了一阶扰动的随机均质化方法,以预测不仅是多相复合材料中的宏观性能的概率,而且考虑到许多随机物理参数。从微观菌株的随机溶液中,分析损伤传播以预测逐渐损害在给定的宏观菌株的复合材料的微观结构中发生渐进损伤。作为一个例子,使用短纤维,基质和间间组成的短纤维增强塑料,用于显示每个组成材料对均质化性质和微观菌株的可变性的随机物理参数的影响。在另一个实例中,随机分析了涂覆的颗粒包覆的复合材料,以考虑涂层材料的机械性能下不确定度的轻微影响,并且在该涂层中显示出损伤传播。彻底地研究了代表材料异质性的特征位移,并广泛地利用了降低在显微损伤传播的非线性分析中找到它们的计算成本。

著录项

  • 来源
    《Acta Mechanica》 |2019年第3期|共16页
  • 作者

    Tien-Dat Hoang; Takano Naoki;

  • 作者单位

    Keio Univ Grad Sch Sci &

    Technol Kohoku Ku 3-14-1 Hiyoshi Yokohama Kanagawa 2238522 Japan;

    Keio Univ Dept Mech Engn Kohoku Ku 3-14-1 Hiyoshi Yokohama Kanagawa 2238522 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 力学;
  • 关键词

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