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Finite element calculation of stress intensity factors for interfacial crack using virtual crack closure integral

机译:使用虚拟裂纹闭合积分的界面裂纹应力强度因子的有限元计算

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This paper presents a successful implementation of the virtual crack closure integral method to calculate the stress intensity factors of an interfacial crack. The present method would compute the mixed-mode stress intensity factors from the mixed-mode energy release rates of the interfacial crack, which are easily obtained from the crack opening displacements and the nodal forces at and ahead of the crack tip, in a finite element model. The simple formulae which relate the stress intensity factors to the energy release rates are given in three separate categories: an isotropic bimaterial continuum, an orthotropic bimaterial continuum, and an anisotropic bimaterial continuum. In the example of a central crack in a bimaterial block under the plane strain condition, comparisons are made with the exact solution to determine the accuracy and efficiency of the numerical method. It was found that the virtual crack closure integral method does lead to very accurate results with a relatively coarse finite element mesh. It has also been shown that for an anisotropic interfacial crack under the generalized plane strain condition, the computed stress intensity factors using the virtual crack closure method compared favorably with the results using the J integral method applied to two interacting crack tip solutions. In order for the stress intensity factors to be used as physical variables, the characteristic length for the stress intensity factors must be properly defined. A study was carried out to determine the effects of the characteristic length on the fracture criterion based the mixed-mode stress intensity factors. It was found that the fracture criterion based on the quadratic mixture of the normalized stress intensity factors is less sensitive to the changes in characteristic length than the fracture criterion based on the total energy release rate along with the phase angle.
机译:本文提出了一种虚拟裂纹闭合积分方法的成功实现,该方法可以计算界面裂纹的应力强度因子。本方法将从界面裂纹的混合模式能量释放率计算出混合模式应力强度因子,这很容易从有限的单元中的裂纹开口位移和裂纹尖端处以及前端的节点力获得。模型。将应力强度因子与能量释放速率相关联的简单公式分为三类:各向同性双材料连续体,正交各向异性双材料连续体和各向异性双材料连续体。以双材料块在平面应变条件下的中心裂纹为例,将其与精确解进行比较,以确定数值方法的准确性和效率。已经发现,虚拟裂纹闭合积分方法的确可以在相对粗糙的有限元网格中得出非常准确的结果。还表明,对于在广义平面应变条件下的各向异性界面裂纹,使用虚拟裂纹闭合方法计算的应力强度因子与使用J积分方法应用于两个相互作用的裂纹尖端解决方案的结果相比具有优势。为了将应力强度因子用作物理变量,必须适当定义应力强度因子的特征长度。为了确定特征长度对基于混合模式应力强度因子的断裂准则的影响,进行了研究。已经发现,基于归一化应力强度因子的二次混合的断裂准则对特征长度的变化的敏感性低于基于总能量释放率和相角的断裂准则。

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