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Investigation on the influence of cell shape anisotropy on the mechanical performance of closed cell aluminium foams using micro-computed tomography

机译:用微计算机断层扫描技术研究泡孔形状各向异性对闭孔泡沫铝力学性能的影响

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摘要

The mechanical behaviour of closed-cell aluminium foams made by both powder metallurgy (LKR) and liquid state (Hydro) processes is investigated. Hydro foams exhibit a significant anisotropy in their mechanical behaviour. The transverse direction stands out as the most favourable one in terms of strength. In contrast, LKR foams show an almost isotropic compressive behaviour. Both foams perform at a level far below the theoretical predictions. The reduced values are a result of imperfections and defects in the cellular microstructure. X-ray microfocus computed tomography (μCT) is therefore used for internal investigation of the foam cell structure. 2D and 3D quantitative image analyses have been performed on μCT images to characterise the morphometric parameters of the foams. The main parameters of interest are cell size, cell size distribution and cell features information. A preferred cell orientation in Hydro foams is observed along the normal and the transverse directions of the specimen. This cell shape anisotropy is quantified using the dimensions of the three axes of the equivalent ellipsoids. The orientation of the cells is well characterised by pole figures of the three axes of equivalent ellipsoids. The influence of this geometrical anisotropy on the mechanical behaviour of the foam is discussed.
机译:研究了通过粉末冶金(LKR)和液态(Hydro)工艺制备的闭孔铝泡沫的力学行为。氢泡沫在机械性能上表现出明显的各向异性。就强度而言,横向方向是最有利的方向。相反,LKR泡沫显示出几乎各向同性的压缩行为。两种泡沫的性能均远低于理论预测值。降低的值是细胞微结构中缺陷和缺陷的结果。因此,X射线微聚焦计算机断层扫描(μCT)可用于泡沫孔结构的内部研究。已经对μCT图像进行了2D和3D定量图像分析,以表征泡沫的形态参数。感兴趣的主要参数是像元大小,像元大小分布和像元特征信息。沿着样品的法线和横向观察到Hydro泡沫中的最佳泡孔方向。使用等效椭圆体的三个轴的尺寸来量化该单元形状的各向异性。单元的方向很好地通过等效椭圆的三个轴的极图来表征。讨论了这种几何各向异性对泡沫力学性能的影响。

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  • 来源
    《Journal of Materials Science》 |2005年第22期|5801-5811|共11页
  • 作者单位

    Ecole des mines de Paris/CNRS Centre des matériaux/UMR 7633K.U. Leuven Department of Metallurgy and Materials Engineering (MTM);

    K.U. Leuven Department of Metallurgy and Materials Engineering (MTM);

    Ecole des mines de Paris/CNRS Centre des matériaux/UMR 7633;

    Ecole des mines de Paris/CNRS Centre des matériaux/UMR 7633;

    Ecole des mines de Paris/CNRS Centre des matériaux/UMR 7633;

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