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Numerical Simulation of Mixed-mode Crack Propagation in Functionally Graded Materials

机译:功能梯度材料中混合模式裂纹扩展的数值模拟

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This paper addresses the numerical simulation of mixed-mode crack propagation in Functionally Graded Materials (FGMs) by means of extended Finite Element Method (XFEM), endowed with elastic and toughness properties which gradually vary in space. The method allows to follow crack paths independently of the finite element mesh, this feature is especially important for FGMs, since the gradation of the mechanical properties may lead to complex propagation paths also in simple symmetric tests. Each step of crack growth simulation consists of the calculation of the mixed-mode stress intensity factor by means of a non-equilibrium formulation of the interaction integral method, determination of the crack growth direction based on a specific fracture criterion. A specific fracture criterion is tailored for FGMs based on the assumption of local homogenization of asymptotic crack-tip fields in FGMs. The present approach uses a user-defined crack increment at the beginning of the simulation. Crack trajectories obtained by the present numerical simulation agree well with available experimental results for FGMs. The computational scheme developed here serve as a guideline for fracture experiments on FGM specimens (e.g. initiation toughness and R-curve behavior).
机译:本文通过扩展有限元方法(XFEM)来研究功能梯度材料(FGM)中混合模式裂纹扩展的数值模拟,该方法具有随着空间而逐渐变化的弹性和韧性。该方法允许遵循有限元网格独立的裂纹路径,此功能对于FGM尤为重要,因为机械性能的渐变可能还会在简单的对称测试中导致复杂的传播路径。裂纹扩展模拟的每个步骤都包括通过相互作用积分法的非平衡公式计算混合模式应力强度因子,根据特定断裂准则确定裂纹扩展方向。基于FGM中渐近裂纹尖端场的局部均质化假设,为FGM量身定制了特定的断裂准则。本方法在模拟开始时使用用户定义的裂纹增量。通过当前数值模拟获得的裂纹轨迹与FGM的可用实验结果非常吻合。此处开发的计算方案可作为FGM试样断裂实验的指南(例如初始韧性和R曲线行为)。

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