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Microstructure based modeling of ductile fracture initiation in press-hardened sheet metal structures

机译:基于显微组织的冲压硬化金属薄板中韧性断裂萌生的建模

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摘要

The manufacturing of sheet metal components with spatially varying microstucture composition and mechanical properties using press-hardening technology is now an established practice in the automotive industry. To estimate the performance envelopes of such components, a multi-scale approach to ductile fracture prediction based on mean-field homogenization is proposed. Two non-interacting fracture criteria are formulated in terms of the local average stress field, referring to inter-phase and intra-phase fracture mechanisms. The overall ductility is governed by the weakest constituent or interface present in the multiphase material. Moreover, instabilities related to the strain localization problem at the macroscale are treated by embedding discontinuities in the element formulation. These are triggered by a localization criterion derived via bifurcation analysis of the homogenized material. Issues concerning numerical implementation include a forward Euler scheme for integrating the mean-field equations, suitable for explicit finite element analysis of heterogeneous materials. Tensile specimens with ten distinctly different microstructure compositions are evaluated, for which useful predictions of the overall force-displacement response and fracture elongations are demonstrated. (C) 2015 Elsevier B.V. All rights reserved.
机译:使用冲压硬化技术来制造具有空间变化的微观结构和机械性能的钣金零件现已成为汽车行业的惯例。为了估计这些部件的性能包络,提出了一种基于平均场均化的多尺度延性断裂预测方法。根据相间和相间断裂机理,根据局部平均应力场制定了两个非相互作用的断裂准则。整体延展性由多相材料中存在的最弱的成分或界面决定。此外,通过在元件配方中嵌入不连续性,可以处理与宏观应变定位问题相关的不稳定性。这些是通过对均质材料的分叉分析得出的定位标准触发的。与数值实现有关的问题包括用于集成平均场方程的正向Euler方案,适用于异质材料的显式有限元分析。对具有十种明显不同的微观结构组成的拉伸试样进行了评估,为此,对整体力-位移响应和断裂伸长率的有用预测得到了证明。 (C)2015 Elsevier B.V.保留所有权利。

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