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On the efficient implementation of an elastoplastic damage model for large-scale analyses of material failure: a multiscale approach

机译:关于大规模分析材料破坏的弹塑性损伤模型的有效实施:一种多尺度方法

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This paper is concerned with an efficient implementation of material models suitable for the analyses of large-scale engineering problems. Based on the enhanced assumed strain concept (EAS), the final failure kinematics of solids associated with a small-scale are incorporated into the large-scale phenomenological macroscopic constitutive equations. To model the structural response realistically both plastic strains as well as damage-induced stiffness degradation are taken into account. In contrast to the original EAS concept, the parameters defining the enhanced strains are condensed out at the material level. The presented constitutive and numerical framework is applicable to a broad range of different localization phenomena including mode-Ⅰ, mode-Ⅱ and mixed-mode material failure. The applicability and the performance of the proposed finite element formulation is investigated by means of a re-analysis of a two-dimensional L-shaped slab as well as by means of a three-dimensional ultimate load analysis of a notched concrete beam subjected to an eccentric load.
机译:本文涉及适用于分析大型工程问题的材料模型的有效实现。基于增强的假定应变概念(EAS),与小尺度关联的固体的最终破坏运动学被纳入到大尺度的现象学宏观本构方程中。为了真实地模拟结构响应,考虑了塑性应变以及损伤引起的刚度退化。与最初的EAS概念相反,定义增强应变的参数在材料级别上被浓缩。所提出的本构和数值框架适用于广泛的不同局部现象,包括Ⅰ型,Ⅱ型和混合型材料破坏。通过对二维L形楼板的重新分析以及对受力后的开槽混凝土梁进行三维极限载荷分析,研究了所提出的有限元公式的适用性和性能。偏心负载。

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