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Finite element implementation of state variable-based viscoplasticity models

机译:基于状态变量的粘塑性模型的有限元实现

摘要

The implementation of state variable-based viscoplasticity models is made in a general purpose finite element code for structural applications of metals deformed at elevated temperatures. Two constitutive models, Walker's and Robinson's models, are studied in conjunction with two implicit integration methods: the trapezoidal rule with Newton-Raphson iterations and an asymptotic integration algorithm. A comparison is made between the two integration methods, and the latter method appears to be computationally more appealing in terms of numerical accuracy and CPU time. However, in order to make the asymptotic algorithm robust, it is necessary to include a self adaptive scheme with subincremental step control and error checking of the Jacobian matrix at the integration points. Three examples are given to illustrate the numerical aspects of the integration methods tested.
机译:基于状态变量的粘塑性模型的实现是在通用有限元代码中完成的,用于在高温下变形的金属的结构应用。结合两种隐式积分方法,研究了两个本构模型Walker模型和Robinson模型:具有Newton-Raphson迭代的梯形规则和渐近积分算法。在这两种积分方法之间进行了比较,后一种方法在数值精度和CPU时间方面在计算上似乎更具吸引力。然而,为了使渐近算法鲁棒,有必要包括一种具有亚增量步长控制和在积分点处对雅可比矩阵进行误差检查的自适应方案。给出了三个例子来说明所测试积分方法的数值方面。

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