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Adaptive FEM computation of geometric and material nonlinearities with application to brittle failure

机译:几何和材料非线性的自适应有限元计算及其在脆性破坏中的应用

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摘要

A model is presented for the dynamic finite element analysis of large-strain, high strain rate deformation behavior of materials. A total Lagrangian formulation is used in the derivation of discrete equations of motion. Both an isochoric finite deformation plasticity model, including rate and temperature effects, for metals, and a multiple-plane microcrack- ing model for ceramics are introduced. In addition, algorithms are presented for correcting finite element mesh distor- tion through mesh rezoning, optimization, and refinement. A surface-defined multibody contact algorithm designed to handle large relative displacements between bodies, with addition for friction, is included. Extensions of the mechanical contact to account for heat fluxes between sliding bodies and the treatment of body interfaces with cohesive strength are presented within a unified framework. Two test examples are examined, simulating a modified Taylor rod impact ex- periment, in which an aluminum anvil strikes a confined or unconfined ceramic rod. Axial and radial velocities are com- puted at the free end of the ceramic and at 30 mm from the impact surface, respectively. Comparisons with experimental traces reveal that the simulations produce the same overall features observed in the experimental data.
机译:提出了一种用于材料大应变,高应变速率变形行为的动态有限元分析模型。在离散运动方程的推导中使用了总的拉格朗日公式。介绍了金属的等速有限变形塑性模型(包括速率和温度效应)和陶瓷的多平面微裂纹模型。另外,提出了通过网格划分,优化和细化来校正有限元网格变形的算法。包括一个表面定义的多体接触算法,该算法旨在处理物体之间的较大相对位移,并增加摩擦力。在统一的框架内介绍了机械接触的扩展,以解决滑动体之间的热通量以及具有内聚强度的车身界面处理。研究了两个测试示例,它们模拟了改进的泰勒棒冲击实验,其中铝砧撞击了受限或无约束的陶瓷棒。轴向和径向速度分别在陶瓷的自由端和距撞击面30 mm处计算。与实验迹线的比较表明,模拟产生的实验数据具有相同的总体特征。

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