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Automated simulation of voxel-based microstructures based on enhanced finite cell approach

机译:基于增强有限细胞方法的基于体素的微结构自动模拟

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摘要

A new and efficient method is proposed for the decomposition of finite elements into finite subcells, which are used to obtain an integration scheme allowing to analyse complex microstructure morphologies in regular finite element discretizations. Since the geometry data of reconstructed microstructures are often given as voxel data, it is reasonable to exploit the special properties of the given data when constructing the subcells, i.e. the perpendicularly cornered shape of the constituent interfaces at the microscale. Thus, in order to obtain a more efficient integration scheme, the proposed method aims to construct a significantly reduced number of subcells by aggregating as much voxels as possible to larger cuboids. The resulting methods are analysed and compared with the conventional Octree algorithm. Eventually, the proposed optimal decomposition method is used for a virtual tension test on a reconstructed three-dimensional microstructure of a dual-phase steel, which is afterwards compared to real experimental data.
机译:提出了一种新的和有效的方法,用于将有限元分解成有限子单元,其用于获得允许在规则的有限元离散化中分析复杂的微观结构形态的积分方案。由于重建微结构的几何数据通常作为体素数据给出,因此在构建子单元时利用给定数据的特殊性是合理的,即,微尺寸的组成界面的垂直变形形状。因此,为了获得更有效的集成方案,所提出的方法旨在通过将尽可能多的体素聚集到更大的长方体来构建显着减少的子单元。与传统的Octree算法进行分析并进行比较。最终,所提出的最佳分解方法用于双相钢的重建三维微结构上的虚拟张力测试,与真实的实验数据之后是之后。

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