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Effect of Lateral Constraint on the Mechanical Properties of a Closed-Cell Al Foam: Part II. Strain-Hardening Models

机译:横向约束对闭孔铝泡沫力学性能的影响:第二部分。应变强化模型

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摘要

Experimental results, presented in the companion article, show that the compressive deformation of a closed-cell Al foam under lateral constraint is characterized by significant strain hardening. This enhanced hardening is due to the change in stress state from uniaxial to triaxial, which additionally contributes to friction between the deforming foam and the walls of the constraining sleeve. Detailed analysis, employing two different types of deformation models, is presented in this article in order to rationalize the experimental observations. In the heterogeneous model, it is assumed that plastic deformation is similar with and without constraint and that it occurs via collective plastic collapse of cells. The bands, thus formed, elastically bear the lateral stresses and give rise to friction. In the homogeneous deformation model, it is assumed that the deformation mode is different under constraint and involves uniform densification, which leads to inherent hardening as well as additional friction. By comparing the model predictions with experimental observations, it is suggested that the plastic strain hardening of the metallic foam under constraint is due, in equal measure, to the triaxial state of stress and friction. Mechanistically, the material deforms principally by collective cell collapse, though there is some evidence of concurrent homogeneous deformation.
机译:随同文章中给出的实验结果表明,闭孔泡沫铝在侧向约束下的压缩变形具有明显的应变硬化特征。这种增强的硬化归因于应力状态从单轴到三轴的变化,这另外导致了变形泡沫与约束套筒壁之间的摩擦。为了使实验结果合理化,本文采用两种不同类型的变形模型进行了详细的分析。在异质模型中,假设塑性变形在有约束和无约束的情况下都是相似的,并且是通过单元的整体塑性塌陷而发生的。这样形成的带弹性地承受侧向应力并引起摩擦。在均匀变形模型中,假设变形模式在约束条件下是不同的,并且涉及均匀的致密化,这会导致固有的硬化以及额外的摩擦。通过将模型预测结果与实验观察结果进行比较,表明在相同条件下,约束条件下金属泡沫的塑性应变硬化同等程度上归因于应力和摩擦的三轴状态。从机械上讲,材料主要通过集体的细胞塌陷而变形,尽管有一些同时发生均质变形的证据。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2007年第9期|2014-2023|共10页
  • 作者单位

    Department of Materials Engineering Indian Institute of Science Bangalore 560012 India;

    Department of Materials Engineering Indian Institute of Science Bangalore 560012 India;

    Department of Materials Engineering Indian Institute of Science Bangalore 560012 India;

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