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Computation of accurate nodal derivatives of finite element solutions : The finite node displacement method

机译:有限元解的精确节点导数的计算:有限节点位移法

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摘要

This paper presents a new method for extracting high accuracy nodal derivatives from finite element solutions. The approach involves imposing a finite displacement to individual mesh nodes, and solving a very small problem on the patch of surrounding elements, whose only unknown is the value of the solution at the displaced node. A finite difference between the original and perturbed values provides the directional derivative. Verification is shown for a 1D diffusion problem with exact nodal solution and for 2D scalar advective-diffusive problems. For internal nodes the method yields accuracy slightly superior to that of the superconvergent patch recovery technique of Zienkiewicz and Zhu (ZZ). We also present a variant of the method to treat boundary nodes. In this case the local discretization is enriched by inserting an additional mesh point very close to the boundary node of interest. We show that the new method gives normal derivatives at boundary points that are consistent with the so-called 'auxiliary fluxes'. The resulting nodal derivatives are much more accurate than those obtained by the ZZ superconvergent patch recovery technique.
机译:本文提出了一种从有限元解中提取高精度节点导数的新方法。该方法涉及对单个网格节点施加有限位移,并在周围元素的补丁上解决一个很小的问题,唯一未知的是位移节点处的解的值。原始值和扰动值之间的有限差异提供了方向导数。显示了具有精确节点解的一维扩散问题和二维标量对流扩散问题的验证。对于内部节点,该方法产生的精度略优于Zienkiewicz和Zhu(ZZ)的超收敛补丁恢复技术。我们还提出了一种处理边界节点的方法的变体。在这种情况下,通过插入非常靠近目标边界节点的附加网格点来丰富局部离散化。我们表明,新方法在边界点处给出与所谓的“辅助通量”一致的正态导数。所得节点导数比通过ZZ超收敛补丁恢复技术获得的节点导数精确得多。

著录项

  • 作者

    Ilinca, F.; Pelletier, D.;

  • 作者单位
  • 年度 2007
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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