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首页> 外文期刊>Materiali in Tehnologije >DETERMINATION OF ELASTIC-PLASTIC PROPERTIES OF ALPORAS FOAM AT THE CELL-WALL LEVEL USING MICROSCALE-CANTILEVER BENDING TESTS
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DETERMINATION OF ELASTIC-PLASTIC PROPERTIES OF ALPORAS FOAM AT THE CELL-WALL LEVEL USING MICROSCALE-CANTILEVER BENDING TESTS

机译:用微尺度悬臂弯曲试验测定泡孔壁上的泡棉的弹塑性

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摘要

The presented paper is focused on determining the mechanical properties of the Alporas closed-cell aluminium foam. To utilise the favourable properties of cellular metals (e.g., high strength-weight ratio, energy absorption or insulation capabilities) a detailed description of the mechanical properties is required. Cellular metals exhibit heterogeneity at several scale levels. The contribution of the internal structure to the overall mechanical properties may not be in detail evaluated utilizing only the macroscopic testing. On the other hand, the compact material of cell walls is influenced by its composition (titanium- and calcium-rich regions are present in aluminium). Therefore, localised testing techniques with a small region of interest (e.g., indentation methods) may neglect the inhomogeneity along the cell walls. Hence, a testing of isolated cell walls was performed. A custom-developed modular loading device (based on precise linear bearing stages) was assembled to enable cantilever bending tests. The load was applied with a stepper motor and the loading force was measured with a micro-scale load cell with a loading capacity of 2.25 N. Displacements of the samples were measured optically. Several points along the longitudinal axis of a sample were tracked using the Lucas-Kanade tracking algorithm and the obtained displacements were compared to the analytically prescribed deflection curve. Based on the obtained deflections and measured forces, a stress-strain diagram was constructed and the constants of the elastic-plastic material model were evaluated.
机译:本文着重于确定Alporas闭孔泡沫铝的机械性能。为了利用多孔金属的有利性能(例如高强度重量比,能量吸收或绝缘能力),需要对机械性能进行详细描述。蜂窝金属在几个尺度上都表现出异质性。内部结构对整体机械性能的贡献可能无法仅通过宏观测试来详细评估。另一方面,细胞壁的致密材料受其组成的影响(铝中富含钛和钙的区域)。因此,具有小关注区域的局部测试技术(例如压痕方法)可能会忽略沿细胞壁的不均匀性。因此,进行了隔离细胞壁的测试。组装了定制开发的模块化加载设备(基于精确的线性轴承台),以进行悬臂弯曲测试。用步进电机施加负载,并用具有2.25 N负载能力的微型称重传感器测量负载力。用光学方法测量样品的位移。使用Lucas-Kanade跟踪算法跟踪沿样品纵轴的几个点,并将获得的位移与解析规定的挠曲曲线进行比较。根据获得的挠度和测得的力,构造应力-应变图,并评估弹塑性材料模型的常数。

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