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A two-dimensional augmented finite element for dynamic crack initiation and propagation

机译:用于动态裂纹启动和传播的二维增强有限元

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摘要

In this study, an implicit formulation of a 2D finite element based on a recently developed augmented finite element method is proposed for stable and efficient simulation of dynamic fracture in elastic solids. The 2D A-FE ensures smooth transition from a continuous state to a discontinuous state with an arbitrary intra-element cohesive crack, without the need of additional degree of freedoms (DoFs). Internal nodal DoFs are introduced for sub-domain integration and cohesive stress integration and they are then condensed at elemental level by a consistency-check based algorithm. The numerical performance of the proposed A-FE has been assessed through simulations of several benchmark dynamic fracture problems and in all cases the numerical results are in good agreement with the respective experimental results and other simulation results in literature. It has further been demonstrated that, (i) the dynamic A-FE is rather insensitive to mesh sizes and mesh structures; (ii) with similar solution accuracy it allows for the use of time steps 1-2 orders of magnitude larger than those used in other similar studies; and (iii) the implicit nature of the proposed A-FE allows for the use of a Courant number as large as 3.0-3.5 while maintaining solution stability.
机译:在该研究中,提出了基于最近开发的增强有限元方法的2D有限元的隐式制剂,用于稳定有效地模拟弹性固体中的动态骨折。 2D A-Fe确保从连续状态到不连续状态的平滑过渡,任意内部内聚力裂纹,无需额外的自由度(DOF)。引入内部节点DOF用于子域集成和粘性应力集成,然后通过基于一致性检查的算法在元素水平下冷凝。所提出的A-FE的数值通过仿真来评估了几个基准动态骨折问题,并且在所有情况下,数值结果与各自的实验结果和其他模拟导致文献符合良好。进一步证明了,(i)动态A-Fe对网格尺寸和网状结构相当不敏感; (ii)具有类似的解决方案精度,它允许使用时间步骤1-2的数量级大于其他类似研究的数量级; (iii)所提出的A-FE的隐式性质允许使用营场数字,同时保持解决方案稳定性。

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