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Automated Dynamic Fracture Procedure For Modelling Mixed-mode Crack Propagation Using Explicit Time Integration Brick Finite Elements

机译:使用显式时间积分砖有限元模拟混合模式裂纹扩展的自动动态断裂程序

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摘要

Several fracture codes have been developed in recent years to perform analyses of dynamic crack propagation in arbitrary directions. However, general-purpose, commercial finite-element software which have capabilities to do fracture analyses are still limited in their use to stationary cracks and crack propagation along trajectories known a priori. In this paper, we present an automated fracture procedure implemented in the large-scale, nonlinear, explicit, finite-element code DYNA3D which can be used to simulate dynamic crack propagation in arbitrary directions. The model can be used to perform both generation-and application-phase simulations of self-similar as well as non-self-similar dynamic crack propagation in linear elastic structures without user intervention. It is developed based on dynamic fracture mechanics concepts and implemented for three-dimensional solid elements. Energy approach is used in the model to check for crack initiation/propagation. Dynamic energy release rate and stress intensity factors are determined from far-field finite-element field solutions using finite-domain integrals. Fracture toughness is input as a function of crack-tip velocity, and when the criterion for crack growth is satisfied, an element deletion-and-replacement re-meshing procedure is used along with a gradual nodal release technique to update the crack geometry and model the crack propagation. Direction of crack propagation is determined using the maximum circumferential stress criterion. Numerical simulations of experiments involving non-self-similar crack propagation are performed, and results are presented as verification examples.
机译:近年来,已经开发了几种断裂规范,以对任意方向上的动态裂纹扩展进行分析。但是,具有商业用途的,具有断裂分析能力的通用有限元软件在使用上仍然仅限于固定裂纹和沿先验已知轨迹的裂纹扩展。在本文中,我们提出了一种以大型,非线性,显式,有限元代码DYNA3D实现的自动断裂程序,该程序可用于模拟任意方向上的动态裂纹扩展。该模型可用于执行线性弹性结构中自相似以及非自相似动态裂纹扩展的生成阶段和应用阶段仿真,而无需用户干预。它是根据动态断裂力学概念开发的,并针对三维实体元素实施。在模型中使用了能量方法来检查裂纹的萌生/扩展。动态能量释放率和应力强度因子是使用有限域积分从远场有限元场解确定的。输入断裂韧度作为裂纹尖端速度的函数,当满足裂纹扩展标准时,使用元素删除和替换重新网格化程序以及渐进的节点释放技术来更新裂纹的几何形状和模型裂纹扩展。裂纹扩展的方向是使用最大圆周应力准则确定的。对涉及非自相似裂纹扩展的实验进行了数值模拟,并给出了结果作为验证实例。

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