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On the Finite Element Implementation of Functionally Graded Materials

机译:功能梯度材料的有限元实现

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摘要

We investigate the numerical implementation of functionally graded properties in the context of the finite element method. The macroscopic variation of elastic properties inherent to functionally graded materials (FGMs) is introduced at the element level by means of the two most commonly used schemes: (i) nodal based gradation, often via an auxiliary (non-physical) temperature-dependence, and (ii) Gauss integration point based gradation. These formulations are extensively compared by solving a number of paradigmatic boundary value problems for which analytical solutions can be obtained. The nature of the notable differences revealed by the results is investigated in detail. We provide a user subroutine for the finite element package ABAQUS to overcome the limitations of the most popular approach for implementing FGMs in commercial software. The use of reliable, element-based formulations to define the material property variation could be key in fracture assessment of FGMs and other non-homogeneous materials.
机译:我们在有限元方法的背景下研究了功能分级属性的数值实现。功能梯度材料(FGM)固有的弹性特性的宏观变化是通过两种最常用的方案在元素级别引入的:(i)基于节点的渐变,通常是通过辅助的(非物理的)温度依赖性, (ii)基于高斯积分点的灰度。通过解决许多可以获取解析解的范式边值问题,对这些公式进行了广泛的比较。结果揭示了显着差异的性质,对此进行了详细研究。我们为有限元软件包ABAQUS提供了一个用户子例程,以克服在商业软件中实现FGM的最流行方法的局限性。使用可靠的,基于元素的配方来定义材料性能变化可能是对FGM和其他非均质材料进行断裂评估的关键。

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