Two Collinear Interface Cracks between Two Dissimilar Functionally Graded Piezoelectric/Piezomagnetic Material Layers under Anti-Plane Shear Loading

Jun Liang
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引用次数: 1

Abstract

In this paper, the behavior of two collinear interface cracks between two dissimilar functionally graded piezoelectric/piezomagnetic material layers subjected to an anti-plane shear loading is investigated. To make the analysis tractable, it is assumed that the material properties vary exponentially with coordinate vertical to the crack. By using the Fourier transform, the problem can be solved with the help of a pair of triple integral equations in which the unknown variable is the jump of the displacement across the crack surfaces. These equations are solved using the Schmidt method. The normalized stress, the electrical displacement and the magnetic flux intensity factors are determined for different geometric for the permeable electric boundary conditions. The relations among the electric filed, the magnetic flux field and the dynamic stress field near the crack tips can be obtained. Numerical examples are provided to show the effect of the functionally graded parameter and the thickness of the strip upon the stress, the electric displacement and the magnetic flux intensity factors of the crack.
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反平面剪切载荷下两种不同功能梯度压电/压磁材料层间共线界面裂纹
本文研究了两种不同功能梯度压电/压磁材料层在反平面剪切载荷作用下的共线界面裂纹行为。为了便于分析,假设材料性能随垂直于裂纹的坐标呈指数变化。通过傅里叶变换,该问题可以借助一对三重积分方程来求解,其中未知变量为裂纹表面位移的跳变。用施密特方法求解了这些方程。确定了不同几何导电边界条件下的归一化应力、电位移和磁通量强度因子。得到了裂纹尖端附近电场、磁场和动应力场之间的关系。数值算例说明了功能梯度参数和带材厚度对裂纹应力、电位移和磁通强度因子的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Evaluation of Initiation of the Interfacial Debonding in Single Fiber Composite Two Back Stress Hardening Models in Rate Independent Rigid Plastic Deformation Two Collinear Interface Cracks between Two Dissimilar Functionally Graded Piezoelectric/Piezomagnetic Material Layers under Anti-Plane Shear Loading Investigation the Dynamic Interaction between Two Collinear Cracks in the Functionally Graded Piezoelectric Materials Subjected to the Harmonic Anti-Plane Shear Stress Waves by Using the Non-Local Theory Development of a Finite Element Contact Analysis Algorithm to Pass the Patch Test
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