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On the overall behavior, microstructure evolution, and macroscopic stability in reinforced rubbers at large deformations: Ⅱ—Application to cylindrical fibers

机译:大变形下补强橡胶的整体性能,微观结构演变和宏观稳定性:Ⅱ-在圆柱纤维中的应用

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摘要

In Part Ⅰ of this paper, we presented a general homogenization framework for determining the overall behavior, the evolution of the underlying microstructure, and the possible onset of macroscopic instabilities in fiber-reinforced elastomers subjected to finite deformations. In this work, we make use of this framework to generate specific results for general plane-strain loading of elastomers reinforced with aligned, cylindrical fibers. For the special case of rigid fibers and incompressible behavior for the matrix phase, closed-form, analytical results are obtained. The results suggest that the evolution of the microstructure has a dramatic effect on the effective response of the composite. Furthermore, in spite of the fact that both the matrix and the fibers are assumed to be strongly elliptic, the homogenized behavior is found to lose strong ellipticity at sufficiently large deformations, corresponding to the possible development of macroscopic instabilities [Geymonat, G., Miiller, S., Triantafyllidis, N., 1993. Homogenization of nonlinearly elastic materials, macroscopic bifurcation and macroscopic loss of rank-one convexity. Arch. Rat. Mech. Anal. 122, 231-290]. The connection between the evolution of the microstructure and these macroscopic instabilities is put into evidence. In particular, when the reinforced elastomers are loaded in compression along the long, in-plane axis of the fibers, a certain type of "flopping" instability is detected, corresponding to the composite becoming infinitesimally soft to rotation of the fibers.
机译:在本文的第一部分中,我们提出了一个通用的均化框架,用于确定整体性能,基础微观结构的演变以及受到有限变形的纤维增强弹性体的宏观不稳定性的可能发生。在这项工作中,我们利用这个框架来生成特定的结果,这些结果是用对齐的圆柱形纤维增强的弹性体的一般平面应变载荷。对于刚性纤维的特殊情况和基体相的不可压缩行为,可以得到封闭形式的分析结果。结果表明,微观结构的演变对复合材料的有效响应具有显着影响。此外,尽管假定基质和纤维都是强椭圆的,但发现均匀化的行为在足够大的变形下会失去强椭圆率,这对应于宏观不稳定性的可能发展[Geymonat,G.,Miiller ,S.,Triantafyllidis,N.,1993。非线性弹性材料的均质化,宏观分叉和宏观丧失一级凸度。拱。鼠。机甲肛门122,231-290]。微观结构的演变与这些宏观不稳定性之间的联系得到了证明。特别地,当增强的弹性体沿着纤维的长的面内轴线压缩加载时,检测到某种类型的“弹跳”不稳定性,这对应于复合物变得对纤维的旋转极其柔软。

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