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The Constitutive Behavior of Metallic Foams Using Nanoindentation Technique and FE Modeling

机译:纳米压痕技术和有限元建模的金属泡沫本构行为

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摘要

Nanoindentation data measured on the cell-wall of Al-alloy foams were analyzed to obtain the material properties of the cell wall. Using the obtained material properties, stress-strain curve of the foam in uniaxial compression was constructed by finite element modeling. The model developed for the analysis was a multiple cell model which utilized the unit cells as the basic building block of the foam. Both the in-plane and through-thickness density variations of the foam were considered in the model. The through-thickness density variation which is a function of casting or foaming process was represented using different densities for different foam layers, while the in-plane density variation which arises from internal defects (such as porosities, second phase particle, inclusions etc.) was assumed to follow a statistical probability distribution of Gaussian type. Uniaxial compression test was performed and the finite element analysis result was compared with the experimental result. The numerical model used in the study overpredicted the crushing strength of foams indicating that the model needs to be improved for predicting the real foam properties with better accuracy.
机译:分析在铝合金泡沫的孔壁上测得的纳米压痕数据以获得孔壁的材料性能。利用获得的材料特性,通过有限元建模,绘制了单轴压缩中泡沫的应力-应变曲线。为分析而开发的模型是一个多单元模型,它利用单位单元作为泡沫的基本构件。在模型中考虑了泡沫的平面内和厚度方向的密度变化。对于不同的泡沫层,通过使用不同的密度来表示作为浇铸或发泡过程的函数的整个厚度密度变化,而由内部缺陷(例如孔隙,第二相颗粒,夹杂物等)引起的面内密度变化则表示为假设遵循高斯型统计概率分布。进行了单轴压缩试验,并将有限元分析结果与实验结果进行了比较。该研究中使用的数值模型高估了泡沫的抗压强度,表明需要改进该模型才能更好地预测实际的泡沫性质。

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