Internal resonances and relaxation memory kernels in composites

E. Cherkaev
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引用次数: 2

Abstract

In heterogeneous composite materials, the behaviour of the medium on larger scales is determined by the microgeometry and properties of the constituents on finer scales. To model the influence of the microlevel processes in composite materials, they are described as materials with memory in which the constitutive relations between stress and strain are given as time-domain convolutions with some relaxation kernel. The paper reveals the relationship between the viscoelastic relaxation kernel and the spectral measure in the Stieltjes integral representation of the effective properties of composites. This spectral measure contains all information about the microgeometry of the material, thus providing a link between the relaxation kernel and the microstructure of the composite. We show that the internal resonances of the microstructure determine the characteristic relaxation times of the fading memory kernel and can be used to introduce a set of internal variables that captures dissipation at the microscale. This article is part of the theme issue ‘Modelling of dynamic phenomena and localization in structured media (part 2)’.
复合材料的内部共振和弛豫记忆核
在非均相复合材料中,介质在较大尺度上的行为是由微观几何形状和组分在较小尺度上的性质决定的。为了模拟复合材料中微观过程的影响,它们被描述为具有记忆的材料,其中应力和应变之间的本构关系被给出为带有一些松弛核的时域卷积。本文揭示了复合材料有效性能的Stieltjes积分表示中粘弹性松弛核与谱测度之间的关系。这种光谱测量包含了材料微观几何的所有信息,从而提供了弛豫核和复合材料微观结构之间的联系。我们证明了微观结构的内部共振决定了衰落记忆核的特征松弛时间,并且可以用来引入一组内部变量来捕获微尺度上的耗散。本文是主题“结构化媒体中动态现象的建模和定位(第二部分)”的一部分。
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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