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Softening hyperelasticity for modeling material failure: Analysis of cavitation in hydrostatic tension

机译:用于建模材料破坏的软化超弹性:静水压力下的气穴现象分析

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Material failure analysis based on the constitutive model of isotropic softening hyperelasticity is presented. In addition to the bulk and shear moduli the model includes only one material constant of volumetric failure work. The latter is in contrast to the traditional damage theories, which include internal variables that are difficult to calibrate experimentally. The softening hyperelasticity model is used to analyze the critical hydrostatic tension corresponding to the onset of instability of spherical and cylindrical voids. It is shown that the critical tension predicted by the softening hyperelasticity model does not depend on the void size in agreement with the linear elasticity solution showing that the stress/strain state at the edge of the void does not depend on its size. This prediction stays in contrast to the prediction based on the Griffith energy method where the critical tension depends on the size of the void and tends to infinity when the void radius approaches zero. It is argued that the controversial results of the Griffith method are a consequence of a separation of stress analysis and criticality conditions. It is concluded, based on the considered examples, that a description of material failure should be an inseparable part of constitutive models of materials. (C) 2006 Elsevier Ltd. All rights reserved.
机译:提出了基于各向同性软化超弹性本构模型的材料破坏分析。除了体积模量和剪切模量,该模型仅包含体积破坏功的一个材料常数。后者与传统的损害理论相反,传统的损害理论包括难以通过实验进行校准的内部变量。软化超弹性模型用于分析与球形和圆柱形空隙不稳定性的开始相对应的临界静水压力。结果表明,由软化超弹性模型预测的临界张力不取决于空隙的大小,而线性弹性解决方案表明空隙边缘的应力/应变状态并不取决于空隙的大小,而线性弹性解却与之一致。该预测与基于格里菲斯能量法的预测相反,在该方法中,临界张力取决于空隙的大小,并且在空隙半径接近零时趋于无穷大。有人认为,格里菲斯方法的有争议的结果是应力分析和临界条件分离的结果。根据所考虑的示例得出的结论是,对材料破坏的描述应该是材料本构模型不可分割的一部分。 (C)2006 Elsevier Ltd.保留所有权利。

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