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Fourier transforms — An alternative to finite elements for elastic-plastic stress-strain analyses of heterogeneous materials

机译:傅里叶变换-异质材料的弹塑性应力应变分析的有限元方法的替代方法

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摘要

The intent of this paper is to apply the technique of discrete Fourier transforms (DFT) to the computation of the stress and strain fields around holes in an externally loaded two-dimensional representative volume element (RVE). This is done to show that DFT is capable to handle geometries with rather sharp corners as well as steep gradients in material properties which is of importance for modeling changes in micro-morphology. To this end DFT is first briefly reviewed. In a second step it is applied to the appropriate equations which characterize a linear-elastic as well as a time-independent elastic-plastic, heterogeneous material subjected to external loads. The equivalent inclusion technique is used to derive a functional equation which, in principle, allows to compute numerically the stresses and strains within an RVE that contains heterogeneities of arbitrary shape and arbitrary stiffness (in comparison to the surrounding matrix). This functional equation is finally specialized to the case of circular and elliptical holes of various slenderness which degenerate into Griffith cracks in the limit of a vanishing minor axis. The numerically predicted stresses and strains are compared to analytical solutions for problems of the Kirsch type (a hole in an large plate subjected to tension at infinity) as well as to finite element studies (for the case of time-independent elastic/plastic material behavior).
机译:本文的目的是将离散傅里叶变换(DFT)技术应用于外部加载的二维代表性体元(RVE)中孔周围的应力场和应变场的计算。这样做表明DFT能够处理具有相当尖锐的拐角以及陡峭的材料特性梯度的几何形状,这对于模拟微观形态的变化非常重要。为此,首先简要回顾一下DFT。在第二步中,将其应用于适当的方程式,该方程式表征承受外部载荷的线性弹性以及与时间无关的弹塑性非均质材料。等效的包含技术用于导出一个函数方程,该函数方程原则上可以通过数值计算RVE内的应力和应变,该RVE包含任意形状和任意刚度的异质性(与周围的矩阵相比)。该函数方程最终专门用于各种细长的圆形和椭圆形孔的情况,这些孔在短轴消失的情况下退化为格里菲斯裂纹。将数值预测的应力和应变与Kirsch型问题(大板中的孔在无穷大处承受拉力)的解析解决方案以及有限元研究(对于与时间无关的弹性/塑性材料行为的情况)进行比较)。

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  • 来源
    《Acta Mechanica》 |2001年第4期|149-160|共12页
  • 作者单位

    Laboratorium für Technische Mechanik Universität Paderborn (FB 10);

    Laboratorium für Technische Mechanik Universität Paderborn (FB 10);

    Department of Mechanical and Chemical Engineering Herfot-Watt University;

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