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Model adaptivity for industrial application of sheet metal forming simulation

机译:钣金成形仿真工业应用的模型适应性

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In finite element simulation of sheet metal forming, shell elements are widely used. The limits of applicability of the shell elements are sometimes disregarded, which leads to an error in predictions of important values such as springback geometry. The underlying kinematic assumptions of the shell elements do not hold where the thickness of the metal sheet approaches the value of the radius of curvature. Complex three-dimensional material behavior effects cannot be represented precisely as the result of the simplified kinematics. Here we present a model adaptivity scheme based on a model error indicator. The model-adaptive technique presented in this paper aides to resolve only the critical areas of the structure with a three-dimensional discretization while keeping reasonable computational cost by utilizing shell elements for the rest of the structure. The model error indicator serves as a guide for subsequent automatic adaptive re-meshing of the work-piece followed by a model-adaptive finite element analysis. The accuracy of the approximation obtained by the model-adaptive technique coincides well with that of a more expensive solution obtained with solid elements only.
机译:在钣金成形的有限元模拟中,壳单元被广泛使用。有时会忽略壳体元素的适用性限制,这会导致在预测重要值(例如回弹几何形状)时出现错误。在金属板的厚度接近曲率半径的位置处,壳单元的基本运动学假设不成立。简化的运动学不能精确地表示复杂的三维材料行为效应。在这里,我们提出了一种基于模型误差指标的模型适应性方案。本文提出的模型自适应技术有助于通过三维离散化仅解决结构的关键区域,同时通过将壳单元用于其余结构来保持合理的计算成本。模型误差指示器可作为随后对工件进行自动自适应重新啮合的指导,然后进行模型自适应的有限元分析。通过模型自适应技术获得的近似精度与仅使用实体元素获得的更昂贵解决方案的精度非常吻合。

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