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Adaptive multigrid for finite element computations in plasticity

机译:自适应多网格可塑性有限元计算

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摘要

The solution of the system of equilibrium equations is the most time-consuming part in large-scale finite element computations of plasticity problems. The development of efficient solution methods are therefore of utmost importance to the field of computational plasticity. Traditionally, direct solvers have most frequently been used. However, recent developments of iterative solvers and preconditioners may impose a change. In particular, preconditioning by the multi-grid technique is especially favorable in FE applications. The multigrid preconditioner uses a number of nested grid levels to improve the convergence of the iterative solver. Prolongation of fine-grid residual forces is done to coarser grids and computed corrections are interpolated to the fine grid such that the fine-grid solution successively is improved. By this technique, large 3D problems, invincible for solvers based on direct methods, can be solved in acceptable time at low memory requirements. By means of a posteriori error estimates the computational grid could successively be refined (adapted) until the solution fulfils a predefined accuracy level. In contrast to procedures where the preceding grids are erased, the previously generated grids are used in the multigrid algorithm to speed up the solution process. The paper presents results using the adaptive multigrid procedure to plasticity problems. In particular, different error indicators are tested.
机译:平衡方程组的求解是塑性问题大规模有限元计算中最耗时的部分。因此,开发有效的求解方法对计算可塑性领域至关重要。传统上,最常使用直接求解器。但是,迭代求解器和预处理器的最新发展可能会带来变化。特别地,在有限元应用中,通过多网格技术进行预处理特别有利。多重网格预处理器使用许多嵌套的网格级别来改善迭代求解器的收敛性。对较粗的网格进行细网格残余力的延长,并向细网格插补计算出的校正值,从而逐步改善了细网格的解。通过这种技术,可以在可接受的时间内以低内存需求解决大型3D问题,而这些问题对于基于直接方法的求解器是不可战胜的。借助后验误差估计,可以依次完善(调整)计算网格,直到解决方案达到预定的精度水平为止。与删除先前网格的过程相反,在多网格算法中使用先前生成的网格可以加快求解过程。本文介绍了使用自适应多网格程序解决塑性问题的结果。特别是要测试不同的错误指示器。

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