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NUMERICAL SIMULATION OF CRACKS IN 3D PIEZOELECTRIC MEDIA UNDER VARIOUS ELECTRICAL BOUNDARY CONDITIONS

机译:不同电气边界条件下3D压电介质裂缝的数值模拟

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This paper presents an accurate and efficient numerical procedure for analysis of isolated cracks in three-dimensional, linear piezoelectric media that subjected to various types of electrical boundary conditions, e.g. electrically permeable, electrically impermeable and electrically semi-permeable boundary conditions. The boundary value problem for all cases is set up in a broad context allowing the treatment of general material anisotropy, arbitrary crack configuration and mixed-mode loadings. The problem is then solved numerically by a weakly singular, symmetric Galerkin boundary element method (SGBEM). The implemented technique offers several positive features enhancing both solution accuracy and computational efficiency. The key governing integral equation contains only weakly singular kernels allowing continuous interpolation functions be used in the approximation and rendering simplicity of numerical integration of involved singular integrals. In addition, the governing equation is in a form well-suited for treatment of all three types of electrical boundary conditions in a simple fashion. To further enhance the accuracy of the computed intensity factors, the interpolation functions used to approximate the relative crack-face displacement and the jump of electric potential in a local region near the crack front are enriched by special basis functions that can capture the local field accurately with only few degrees of freedom. In addition, extra degrees of freedom are introduced along the crack front to enable a direct extraction of the intensity factors from the nodal data. The proposed technique is first tested via extensive numerical experiments on various boundary value problems where either analytical or benchmark solutions are available. Results indicate that the proposed technique is promising and, particularly, yields highly accurate intensity factors with use of relatively coarse meshes. The verified technique is then employed to investigate the influence of electrical boundary conditions on the intensity factors along the crack front for various crack configurations and loading conditions.
机译:本文提出了一种准确,有效的数值方法,用于分析经受各种电气边界条件的三维线性压电介质中的隔离裂缝的分析。电可渗透,电不可渗透和电半透透过边界条件。所有情况下的边值问题在广泛的上下文中设置,允许处理一般材料各向异性,任意裂缝配置和混合模式载荷。然后通过弱奇异对称的Galerkin边界元素(SGBEM)来数值来解决问题。实现的技术提供了若干正面特征,提高了解决方案精度和计算效率。控制整体方程的关键仅包含弱奇异的内核,允许连续插值函数用于近似和呈现涉及奇异积分的数值集成的简单性。此外,控制方程以简单的方式良好地处理所有三种电气边界条件的形式。为了进一步提高计算强度因子的准确性,用于近似于裂缝前面附近的局部区域中的相对裂缝面位移和电位跳跃的插值函数被可以精确地捕获本地场的特殊基本函数富集只有很少的自由。此外,沿着裂缝前面引入额外的自由度,以便直接提取来自节点数据的强度因子。首先通过广泛的数值实验测试所提出的技术,可以在可以使用分析或基准解决方案的各种边界值问题上进行广泛的数值实验。结果表明,所提出的技术是有前途的,特别是使用相对粗糙的网格产生高度精确的强度因子。然后采用经过验证的技术来研究电气边界条件对沿着裂纹前沿的强度因子的影响,以进行各种裂纹配置和装载条件。

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