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Geometrically nonlinear analysis of functionally graded power-based and carbon nanotubes reinforced composites using a fully integrated solid shell element

机译:使用完全集成的固体壳单元对功能梯度的基于功率的碳纳米管增强复合材料进行几何非线性分析

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Functionally graded materials are multi-phase composites which are characterized by continuous and smooth variation of the volume fractions of two or more constituents within the structure domain. In this study, geometrically nonlinear analysis of functionally graded power-based (FGMs) and carbon-nanotubes reinforced composites (FG-CNTRCs) is performed using a fully integrated first-order solid shell finite element. This formulation relies on the alternative parametrization of the so-called 7-parameter shell model. The central aspects that motivate the use of this formulation are: (i) the use of unmodified three-dimensional constitutive laws, and (ii) the consideration of the thickness variation of the shell along the deformation process. Locking treatment is carried out by means of the combination of the Enhanced Assumed Strain (EAS) and the Assumed Natural Strain (ANS) methods. This solid shell element is numerically implemented into the commercial FE code ABAQUS through the user subroutine UEL. Several numerical examples are conducted with the aim of examining the effects of different material parameters on the structural response. These applications show the applicability of the current formulation for FG composite simulations undergoing geometrically nonlinear effects. (C) 2016 Elsevier Ltd. All rights reserved.
机译:功能梯度材料是多相复合材料,其特征是结构域内两个或多个成分的体积分数连续且平滑变化。在这项研究中,使用完全集成的一阶固体壳有限元对功能梯度动力基(FGM)和碳纳米管增强复合材料(FG-CNTRC)进行了几何非线性分析。这种表述依赖于所谓的7参数壳模型的替代参数化。促使使用该公式的主要方面是:(i)使用未修改的三维本构定律,以及(ii)考虑壳在变形过程中的厚度变化。锁定处理是通过增强假定应变(EAS)和假定自然应变(ANS)方法的组合进行的。通过用户子例程UEL,将这种坚固的外壳元素数字化实现为商业FE代码ABAQUS。为了检查不同材料参数对结构响应的影响,进行了几个数值示例。这些应用显示了当前公式对于经历几何非线性效应的FG复合材料仿真的适用性。 (C)2016 Elsevier Ltd.保留所有权利。

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