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首页> 外文期刊>Philosophical magazine: structure and properties of condensed matter >On the macroscopic response, microstructure evolution, and macroscopic stability of short-fiber-reinforced elastomers at finite strains: II - Representative examples
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On the macroscopic response, microstructure evolution, and macroscopic stability of short-fiber-reinforced elastomers at finite strains: II - Representative examples

机译:在有限应变下,短纤维增强弹性体的宏观响应,微观结构演变和宏观稳定性:II-代表性实例

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摘要

In Part I of this work, we presented a homogenization-based constitutive model for the overall behavior of reinforced elastomers consisting of aligned, spheroidal particles distributed randomly in an incompressible, hyperelastic matrix. In particular, we provided analytical estimates for the effective stored-energy functions of the composites, as well as for the associated average particle rotations under finite deformations. The rotation of the particles is found to be very sensitive to the specific loading conditions applied, and is such that the particles tend to align themselves with the largest tensile direction. In addition, we obtained corresponding formulae for the detection of macroscopic instabilities in these composites. With the objective of illustrating the key features of the analytical results presented in Part I, we conduct here a more detailed study of these results for several representative values of the microstructural and loading parameters, as well as matrix properties. More specifically, this study deals with neo-Hookean and Gent elastomers reinforced with spheroidal particles of prolate and oblate shapes with various aspect ratios and volume fractions, subjected to aligned and non-aligned macroscopic loading conditions. In addition, to assess the accuracy of the model, we compare our results with corresponding finite element results available from the literature for the special case of spherical particles, and good agreement is found. For non-spherical particles, the results indicate that the possible rotation of the particles has a major influence on the overall response of the elastomeric composites. Furthermore, it is found that the composite may develop macroscopic shear localization instabilities, as a consequence of the geometric softening induced by the sudden rotation - or flopping - of the particles, when a sufficiently large amount of compression is applied along the long axes of the particles.
机译:在这项工作的第一部分中,我们针对增强弹性体的整体性能提出了基于均质化的本构模型,该模型由在不可压缩的超弹性基体中随机分布的排列的球状颗粒组成。特别是,我们提供了复合材料有效储能函数以及有限变形下相关的平均粒子旋转数的分析估计。发现颗粒的旋转对所施加的特定负载条件非常敏感,并且使得颗粒趋于使其自身与最大拉伸方向对准。此外,我们获得了检测这些复合材料宏观不稳定性的相应公式。为了说明第一部分中介绍的分析结果的关键特征,我们在此对这些结果进行更详细的研究,以获取微观结构和加载参数以及基质性质的几个代表值。更具体地说,这项研究涉及由长形和扁形形状的球状颗粒增强的新霍克弹性体和根特弹性体,它们具有不同的长宽比和体积分数,并受到对准和不对准的宏观载荷条件的影响。此外,为了评估模型的准确性,我们将我们的结果与文献中针对球形颗粒特殊情况的相应有限元结果进行了比较,并且发现了很好的一致性。对于非球形颗粒,结果表明颗粒的可能旋转对弹性体复合材料的整体响应有重大影响。此外,发现当沿颗粒的长轴施加足够大的压缩量时,由于颗粒的突然旋转(或翻转)引起的几何软化,复合材料可能会出现宏观的剪切局部不稳定性。粒子。

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