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Multiscale Modeling Of Oriented Thermoplastic Elastomers With Lamellar Morphology

机译:层状形态定向热塑性弹性体的多尺度建模

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Thermoplastic elastomers (TPEs) are block copolymers made up of "hard" (glassy or crystalline) and "soft" (rubbery) blocks that self-organize into "domain" structures at a length scale of a few tens of nanometers. Under typical processing conditions, TPEs also develop a "polydomain" structure at the micron level that is similar to that of metal polycrystals. Therefore, from a continuum point of view, TPEs may be regarded as materials with heterogeneities at two different length scales. In this work, we propose a constitutive model for highly oriented, near-single-crystal TPEs with lamellar domain morphology. Based on small-angle X-ray scattering (SAXS) and transmission electron microscopy (TEM) observations, we consider such materials to have a granular microstructure where the grains are made up of the same, perfect, lamellar structure (single crystal) with slightly different lamination directions (crystal orientations). Having identified the underlying morphology, the overall finite-deformation response of these materials is determined by means of a two-scale homogenization procedure. Interestingly, the model predictions indicate that the evolution of microstructure-especially the rotation of the layers-has a very significant, but subtle effect on the overall properties of near-single-crystal TPEs. In particular, for certain loading conditions-namely, for those with sufficiently large compressive deformations applied in the direction of the lamellae within the individual grains-the model becomes macroscopically unstable (i.e., it loses strong ellipticity). By keeping track of the evolution of the underlying microstructure, we find that such instabilities can be related to the development of "chevron" patterns.
机译:热塑性弹性体(TPE)是由“硬”(玻璃或晶体)和“软”(橡胶)嵌段组成的嵌段共聚物,它们在几十纳米的长度尺度上自组织成“畴”结构。在典型的加工条件下,TPE还会在微米级形成类似于金属多晶的“多畴”结构。因此,从连续的角度来看,TPE可以被视为在两种不同长度尺度上具有异质性的材料。在这项工作中,我们提出了具有层状畴形态的高度取向,近单晶TPE的本构模型。基于小角度X射线散射(SAXS)和透射电子显微镜(TEM)的观察,我们认为此类材料具有颗粒状的微观结构,其中的晶粒由相同的,完美的层状结构(单晶)组成,并具有少量不同的层压方向(晶体取向)。确定了基本的形态后,这些材料的整体有限变形响应将通过两步均化程序确定。有趣的是,模型预测表明,微观结构的演变,尤其是层的旋转,对近单晶TPE的整体性能具有非常显着但微妙的影响。特别是,对于某些载荷条件,即对于在单个晶粒内沿薄片方向施加足够大的压缩变形的载荷,该模型在宏观上变得不稳定(即,失去了很强的椭圆率)。通过跟踪基础微观结构的演变,我们发现这种不稳定性可能与“ V形”图案的发展有关。

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