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Multi-scale computational model for failure analysis of metal frames that includes softening and local buckling

机译:金属框架失效分析的多尺度计算模型,包括软化和局部屈曲

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In this work we present a new modelling paradigm for computing the complete failure of metal frames by combining the stress-resultant beam model and the shell model. The shell model is used to compute the material parameters that are needed by an inelastic stress-resultant beam model; therefore, we consider the shell model as the meso-scale model and the beam model as the macro-scale model. The shell model takes into account elastoplasticity with strain-hardening and strain-softening, as well as geometrical nonlinearity (including local buckling of a part of a beam). By using results of the shell model, the stress-resultant inelastic beam model is derived that takes into account elastoplasticity with hardening, as well as softening effects (of material and geometric type). The beam softening effects are numerically modelled in a localized failure point by using beam finite element with embedded discontinuity. The original feature of the proposed multi-scale (i.e. shell-beam) computational model is its ability to incorporate both material and geometrical instability contributions into the stress-resultant beam model softening response. Several representative numerical simulations are presented to illustrate a very satisfying performance of the proposed approach.
机译:在这项工作中,我们提出了一种新的建模范例,该模型通过组合应力结果梁模型和壳体模型来计算金属框架的完全破坏。壳模型用于计算非弹性应力结果梁模型所需的材料参数。因此,我们将壳模型视为中尺度模型,将梁模型视为宏观模型。壳模型考虑了具有应变硬化和应变软化的弹塑性,以及几何非线性(包括部分梁的局部屈曲)。通过使用壳模型的结果,得出了考虑到硬化时的弹塑性以及软化效果(材料和几何类型)的应力导致的非弹性梁模型。通过使用具有嵌入不连续性的梁有限元,可以在局部失效点上对梁的软化效果进行数值模拟。所提出的多尺度(即壳梁)计算模型的原始特征是其能够将材料和几何不稳定性贡献纳入应力导致的梁模型软化响应的能力。提出了几个代表性的数值模拟,以说明所提出方法的非常令人满意的性能。

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