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Computational homogenization of fatigue in additively manufactured microlattice structures

机译:增材制造微晶格结构中疲劳的计算均匀化

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摘要

A novel computational approach to predicting fatigue crack initiation life in additively manufactured microlattice structures is proposed based on a recently developed microplasticity-based constitutive theory. The key idea is to use the concept of (micro)plastic dissipation as the driving factor to model fatigue degradation in additively manufactured metallic microlattice. An ad-hoc curve-fitting procedure is proposed to calibrate the introduced material constitutive parameters efficiently. The well-calibrated model is employed to obtain fatigue life predictions for microlattices through a diverse set of RVE-based finite element fatigue simulations. The model's predictive capabilities are verified by comparing the simulation results with experimental fatigue data reported in the literature. The overall approach constitutes a unified setting for fatigue life prediction of additively manufactured microlattice structures ranging from low- to high-cycle regimes. It is also shown that the model can be applied to technologically relevant microlattices with mathematically-created complex microstructure topologies.
机译:基于最近开发的基于微塑性的本构理论,提出了一种新的计算方法来预测增材制造微晶格结构中疲劳裂纹萌生寿命。其关键思想是使用(微)塑料耗散的概念作为驱动因素来模拟增材制造金属微晶格中的疲劳退化。提出了一种特殊的曲线拟合程序,以有效地校准引入的材料本构参数。通过基于RVE的有限元疲劳仿真,采用经过良好校准的模型来获得微晶格的疲劳寿命预测。通过将仿真结果与文献报道的实验疲劳数据进行比较,验证了该模型的预测能力。整体方法构成了一个统一的设置,用于预测从低周到高周的增材制造微晶格结构的疲劳寿命。还表明,该模型可以应用于具有数学创建的复杂微结构拓扑结构的技术相关微晶格。

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