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首页> 外文期刊>International Journal of Fracture >Numerical simulation of crack deflection and penetration at an interface in a bi-material under dynamic loading by time-domain boundary element method
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Numerical simulation of crack deflection and penetration at an interface in a bi-material under dynamic loading by time-domain boundary element method

机译:时域边界元法对动态载荷作用下双材料界面裂纹的变形和渗透的数值模拟

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摘要

The hybrid time-domain boundary element method (BEM), together with the multi-region technique, is applied to simulate the dynamic process of crack deflection/ penetration at an interface in a bi-material. The whole bi-material is divided into two regions along the interface. The traditional displacement boundary integral equations (BIEs) are employed with respect to the exterior boundaries; meanwhile, the non-hypersingular traction BIEs are used with respect to the part of the crack in the matrix. Crack propagation along the interface is numerically modelled by releasing the nodes in the front of the moving crack tip and crack propagation in the matrix is modeled by adding new elements of constant length to the moving crack tip. The dynamic behaviours of the crack deflection/penetration at an interface, propagation in the matrix or along the interface and kinking out off the interface, are controlled by criteria developed from the quasi-static ones. The numerical results of the crack growth trajectory for different inclined interface and bonded strength are computed and compared with the corresponding experimental results. Agreement between numerical and experimental results implies that the present time-domain BEM can provide a simulation for the dynamic propagation and deflection of a crack in a bi-material.
机译:混合时域边界元方法(BEM)与多区域技术一起用于模拟双材料界面处的裂纹偏转/渗透的动态过程。整个双材料沿着界面分为两个区域。关于外部边界,采用了传统的位移边界积分方程(BIE)。同时,对于基体中的裂纹部分,使用了非超奇牵引力BIE。通过释放移动的裂纹尖端前端的节点,可以对沿界面的裂纹扩展进行数值模拟,并通过向移动的裂纹尖端添加恒定长度的新元素来模拟矩阵中的裂纹扩展。界面处裂纹挠度/渗透的动态行为,在基体中或沿界面的传播以及从界面扭结的动力学行为均由准静态准则制定。计算了不同倾斜界面和结合强度下裂纹扩展轨迹的数值结果,并将其与相应的实验结果进行了比较。数值结果与实验结果之间的一致性表明,当前的时域边界元法可以为双材料中裂纹的动态传播和变形提供模拟。

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