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Computation of dynamic stress intensity factors for cracks in three-dimensional functionally graded solids

机译:三维功能梯度固体中裂纹的动态应力强度因子计算

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Dynamic stress intensity factors are important parameters in the dynamic fracture behavior of a cracked body. In this paper, an interaction integral method is utilized to compute the mixed-mode dynamic stress intensity factors of three-dimensional functionally graded material solids. Using a proper definition of actual and auxiliary fields, a new formulation and application of the interaction integral is proposed, which is independent of the derivatives of the material properties. ABAQUS finite element package is applied to analyze the functionally graded material cracked bodies. Accordingly, a user material subroutine is written for implementing the continuous variation of the material properties. Temperature was used as an additional variable to consider the variation of density. A research code is developed to compute the interaction integral. This code is then validated by solving some homogeneous and functionally graded material problems. Furthermore, the effect of the material properties on the dynamic stress intensity factors of FGM bodies with elliptical crack is investigated by taking the sigmoidal model into account. Several important fracture behavior of functionally graded material cracked bodies under dynamic loadings for different material property profiles are explored in detail.
机译:动态应力强度因子是裂纹体动态断裂行为的重要参数。本文采用相互作用积分法计算三维功能梯度材料固体的混合模态动态应力强度因子。利用对实际和辅助场的正确定义,提出了一种相互作用积分的新公式和应用,它与材料特性的导数无关。 ABAQUS有限元软件包用于分析功能梯度材料的裂纹体。因此,编写了用户材料子例程,以实现材料特性的连续变化。将温度用作考虑变量变化的附加变量。研究代码被开发来计算相互作用积分。然后,通过解决一些均质且功能分级的材料问题来验证此代码。此外,通过考虑S形模型,研究了材料特性对具有椭圆形裂纹的FGM车体动应力强度因子的影响。详细探讨了功能梯度材料裂纹体在动态载荷下对于不同材料特性曲线的几个重要断裂行为。

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