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Stress intensity factors of multiple axisymmetric interface cracks in an isotropic layer with FGM coating under torsional loading

机译:扭转载荷下FGM涂层各向同性层中多个轴对称界面裂纹的应力强度因子

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Purpose - The purpose of this paper is to provide a theoretical analysis of the fracture behavior of multiple axisymmetric interface cracks between a homogeneous isotropic layer and its functionally graded material (FGM) coating under torsional loading. Design/methodology/approach - In this paper, the authors employ the distributed dislocation technique to the stress analysis, an FGM coating-substrate system under torsional loading with multiple axisymmetric cracks consist of annular and penny-shaped cracks. First, with the aid of the Hankel transform, the stress fields in the homogeneous layer and its FGM coating are obtained. The problem is then reduced to a set of singular integral equations with a Cauchy-type singularity. Unknown dislocation density is achieved by numerical solution of these integral equations which are employed to calculate the SIFs. Findings - From the numerical results, the following key points were observed: first, for two types of the axisymmetric interface cracks, the SIFs decrease with growing in the values of the non-homogeneity. Second, the SIFs increase with increases in interface crack length. Third, the magnitude of the SIFs decreases with increases in the FGM coating thickness. Fourth, the interaction between cracks is an important factor affecting the SIFs of crack tips. Originality/value - New analytical dislocation solution in an FGM coating-substrate system is developed.
机译:目的-本文的目的是对扭转载荷下均质各向同性层及其功能梯度材料(FGM)涂层之间的多个轴对称界面裂纹的断裂行为提供理论​​分析。设计/方法/方法-在本文中,作者将分布错位技术应用于应力分析,在扭转载荷下具有多个轴对称裂纹的FGM涂层-基体系统由环形裂纹和便士形裂纹组成。首先,借助汉克尔变换,获得均质层及其FGM涂层中的应力场。然后将问题简化为一组具有柯西型奇点的奇异积分方程。通过这些积分方程的数值解获得未知的位错密度,这些积分方程用于计算SIF。发现-从数值结果中,观察到以下关键点:首先,对于两种类型的轴对称界面裂纹,SIF随非均匀性值的增加而减小。其次,SIF随着界面裂纹长度的增加而增加。第三,随着FGM涂层厚度的增加,SIF的幅度减小。第四,裂纹之间的相互作用是影响裂纹尖端SIF的重要因素。原创性/价值-在FGM涂层基底系统中开发了新的分析性位错解决方案。

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