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The role of anisotropy on the static and wave propagation characteristics of two-dimensional architectured materials under finite strains

机译:各向异性对有限应变下二维结构材料静波传播特性的影响

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摘要

In the current work, we analyze the role of anisotropy on the static and wave propagation characteristics of architectured materials. In particular, we study the mechanical behavior of nearly isotropic, moderately and highly anisotropic metamaterials under finite shear and normal strains. Thereupon, we quantify the effect of finite deformations with respect to their magnitude and loading direction, relating the metamaterials' initial degree of anisotropy to its finite strain static attributes. We distinguish between the effect of finite shear and normal strains, noting that highly anisotropic material designs do not uniquely entail shear strain sensitive structural behaviors. Contrariwise, we observe that finite normal loads in certain loading directions can lead to instabilities at rather low strain magnitudes already for moderately anisotropic material designs. Moreover, we show that strain-induced instabilities can be detected as negative phase velocity increments before the stiffness matrix loses its positive definiteness. What is more, we demonstrate that anisotropy and non-reciprocity can be used as mechanisms for wave propagation tuning. We provide evidence that for enhanced tuning capabilities to be observed, inner material density variations need to be exploited. The latter require the application of normal rather than shear strains, as shear deformations are volume preserving. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在当前的工作中,我们分析了各向异性对建筑材料的静态和波传播特性的作用。特别是,我们研究了在有限剪切和法向应变下几乎各向同性,中等和高度各向异性的超材料的力学行为。随即,我们量化了有限变形相对于其大小和载荷方向的影响,将超材料的各向异性的初始程度与其有限应变静态属性相关联。我们区分有限剪力和法向应变的影响,并指出,高度各向异性的材料设计并非唯一需要剪应变敏感的结构行为。相反,对于中等各向异性的材料设计,我们观察到在某些载荷方向上有限的法向载荷可能已经导致在相当低的应变量下的不稳定性。此外,我们表明,在刚度矩阵失去正定性之前,可以将应变引起的不稳定性检测为负相速度增量。此外,我们证明了各向异性和不可逆性可以用作波传播调谐的机制。我们提供的证据表明,要观察到增强的调谐能力,需要利用内部材料密度的变化。后者需要施加法向应变而不是剪切应变,因为剪切变形可以保持体积。 (C)2018 Elsevier Ltd.保留所有权利。

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