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An enhanced method with local energy minimization for the robust a posteriori construction of equilibrated stress fields in finite element analyses

机译:局部能量最小化的一种增强方法,用于有限元分析中平衡应力场的鲁棒后验构造

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In the context of global/goal-oriented error estimation applied to computational mechanics, the need to obtain reliable and guaranteed bounds on the discretization error has motivated the use of residual error estimators. These estimators require the construction of admissible stress fields verifying the equilibrium exactly. This article focuses on a recent method, based on a flux-equilibration procedure and called the element equilibration + star-patch technique (EESPT), that provides for such stress fields. The standard version relies on a strong prolongation condition in order to calculate equilibrated tractions along finite element boundaries. Here, we propose an enhanced version, which is based on a weak prolongation condition resulting in a local minimization of the complementary energy and leads to optimal tractions in selected regions. Geometric and error estimate criteria are introduced to select the relevant zones for optimizing the tractions. We demonstrate how this optimization procedure is important and relevant to produce sharper estimators at affordable computational cost, especially when the error estimate criterion is used. Two- and three-dimensional numerical experiments demonstrate the efficiency of the improved technique.
机译:在应用于计算力学的面向全局/目标的误差估计的背景下,获得离散化误差的可靠且有保证的界限的需求促使了残余误差估计器的使用。这些估计量要求构造允许的应力场,以精确地验证平衡。本文重点介绍一种基于通量平衡程序的最新方法,该方法称为元素平衡+星型修补技术(EESPT),它提供了此类应力场。标准版本依赖于强延伸条件来计算沿有限元边界的平衡牵引力。在这里,我们提出一种增强版本,该版本基于弱延长条件,导致互补能量的局部最小化,并在选定区域产生最佳牵引力。引入几何和误差估计标准以选择相关区域以优化牵引力。我们展示了此优化程序如何重要,并且可以以可承受的计算成本来生成更清晰的估算器,尤其是在使用误差估算标准时。二维和三维数值实验证明了改进技术的有效性。

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