On modelling strain gradient viscoelasticity of polymer nanocomposites

Yiyuan Jiang, Li Li, Yujin Hu
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Abstract

Theories of generalized continuum mechanics have found great success in the analysis of nanostructures. However, there exists no work on analysing composites whose constituents are generalized continua. The present work fills this gap and studies the strain gradient viscoelasticity of polymeric nanocomposites. The key problem is to assign the nonclassical boundary condition of the representative volume element (RVE). To resolve it, a perturbation field is superposed on the homogeneous displacement boundary condition. The wavelength of perturbation is comparable to the strain gradient characteristic length. Simulations to obtain the macroscopic effective mechanical properties are performed, which agree well with the experimental data. The frequency dependence of the perturbation field is revealed, and it has a clear physical interpretation in terms of the segmental motions of polymer chains.
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聚合物纳米复合材料的应变梯度粘弹性建模
广义连续介质力学理论在分析纳米结构方面取得了巨大成功。然而,目前还没有关于分析组成成分为广义连续体的复合材料的研究。本研究填补了这一空白,研究了聚合物纳米复合材料的应变梯度粘弹性。关键问题是如何分配代表体积元素(RVE)的非经典边界条件。为了解决这个问题,在均匀位移边界条件上叠加了一个扰动场。扰动的波长与应变梯度特征长度相当。通过模拟得到的宏观有效力学性能与实验数据十分吻合。研究揭示了扰动场的频率依赖性,并从聚合物链段运动的角度对其进行了清晰的物理解释。
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