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Evaluate the performance of an accelerated initial stiffness method in three dimensional finite element analysis

机译:在三维有限元分析中评估加速初始刚度方法的性能

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摘要

Newton's method is a commonly used algorithm for elasto-plastic finite element analysis and has three common variations: the full Newton-Raphson method, the modified Newton-Raphson method and the initial stiffness method. The Newton-Raphson methods can converge to the solution in a small number of iterations when the system is stable; however, the methods can be quite computationally expensive in some types of problems, for example where the tangent stiffness matrix is unsymmetric or the plasticity is highly localized. The initial stiffness method is robust in those cases but requires a larger number of iterations. This prompted the formulation of many acceleration techniques in literature. In this paper, those techniques will be briefly discussed. This will be followed by the development of a modified acceleration technique for the initial stiffness method. The performance of the modified accelerated initial stiffness method will be examined in elasto-plastic analyses, using both direct and iterative matrix solvers. The results will be compared - in terms of the required number of iterations and the computation time - with an existing accelerated initial stiffness method, the non-accelerated initial stiffness method and the Newton-Raphson tangent stiffness method.
机译:牛顿法是弹塑性有限元分析的常用算法,具有三个共同的变化形式:完整的牛顿-拉夫森法,改进的牛顿-拉夫森法和初始刚度法。当系统稳定时,Newton-Raphson方法可以通过少量迭代收敛到解。但是,在某些类型的问题中,例如切线刚度矩阵不对称或可塑性高度集中时,这些方法在计算上可能会非常昂贵。在这些情况下,初始刚度方法是鲁棒的,但是需要大量的迭代。这促使文献中提出了许多加速技术。在本文中,将简要讨论这些技术。随后将开发用于初始刚度方法的改进的加速技术。改进的加速初始刚度方法的性能将在弹塑性分析中使用直接矩阵求解器和迭代矩阵求解器进行检查。将根据所需的迭代次数和计算时间,将结果与现有的加速初始刚度方法,非加速初始刚度方法和Newton-Raphson切线刚度方法进行比较。

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