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Comparison of aluminium sandwiches for lightweight ship structures: Honeycomb vs. foam

机译:轻型船舶结构铝三明治的比较:蜂窝与泡沫

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摘要

The use of lightweight aluminium sandwiches in the shipbuilding industry represents an attractive and interesting solution to the increasing environmental demands. The aim of this paper was the comparison of static and low-velocity impact response of two aluminium sandwich typologies: foam and honeycomb sandwiches. The parameters which influence the static and dynamic response of the investigated aluminium sandwiches and their capacity of energy absorption were analysed. Quasi - static indentation tests were carried out and the effect of indenter shape has been investigated. The indentation resistance depends on the nose geometry and is strongly influenced by the cell diameter and by the skin - core adhesion for the honeycomb and aluminium foam sandwich panels, respectively. The static bending tests, performed at different support span distances on sandwich panels with the same nominal size, produced various collapse modes and simplified theoretical models were applied to explain the observed collapse modes. The capacity of energy dissipation under bending loading is affected by the collapse mechanism and also by the face-core bonding and the cell size for foam and honeycomb panels, respectively. A series of low-velocity impact tests were, also, carried out and a different collapse mechanism was observed for the two typologies of aluminium sandwiches: the collapse of honeycomb sandwiches occurred for the buckling of the cells and is strongly influenced by the cell size, whereas the aluminium foam sandwiches collapsed for the foam crushing and their energy absorbing capacity depends by the foam quality. It is assumed that a metal foam has good quality if it has many cells of similar size without relevant defects. A clear influence of cell size distribution and morphological parameters on foam properties has not yet been established because it has not yet been possible to control these parameters in foam making. The impact response of the honeycomb and foam sandwiches was investigated using a theoretical approach, based on the energy balance model and the model parameters were obtained by the tomographic analyses of the impacted panels. The present study is a step towards the application of aluminium sandwich structures in the shipbuilding.
机译:在造船业中使用轻质铝三明治是满足日益增长的环境需求的一种有吸引力且有趣的解决方案。本文的目的是比较两种铝夹心类型:泡沫夹心和蜂窝夹心的静态和低速冲击响应。分析了影响所研究的铝三明治的静态和动态响应的参数以及它们的能量吸收能力。进行了准静态压痕测试,并研究了压头形状的影响。压痕阻力取决于鼻子的几何形状,并且分别受到蜂窝孔直径和蜂窝-泡沫铝夹心板的皮肤-芯层粘附力的强烈影响。在具有相同公称尺寸的夹芯板上以不同的支撑跨度距离进行的静态弯曲测试,产生了多种塌陷模式,并使用简化的理论模型来解释观察到的塌陷模式。弯曲载荷下的能量消散能力受塌陷机制的影响,还受泡沫泡沫和蜂窝板的面芯粘结和孔尺寸的影响。此外,还进行了一系列的低速冲击试验,并且观察到了两种铝夹心类型的坍塌机理:蜂窝状夹心的塌陷是由于单元的屈曲而产生的,并且受到单元尺寸的强烈影响,而铝泡沫三明治由于泡沫破碎而倒塌,其能量吸收能力取决于泡沫质量。假设金属泡沫具有许多大小相似但没有相关缺陷的泡孔,则其质量良好。尚未确定泡孔尺寸分布和形态参数对泡沫性能的明显影响,因为在泡沫制造中尚不可能控制这些参数。基于能量平衡模型,使用理论方法研究了蜂窝和泡沫三明治的冲击响应,并通过对受影响面板的层析成像分析获得了模型参数。本研究是朝着铝夹层结构在造船中的应用迈出的一步。

著录项

  • 来源
    《Marine Structures》 |2013年第1期|74-96|共23页
  • 作者单位

    University of Messina, Department of Industrial Chemistry and Materials Engineering, Contrada di Dio, Sant'Agata (ME), 98166 Messina, Italy;

    University of Messina, Department of Industrial Chemistry and Materials Engineering, Contrada di Dio, Sant'Agata (ME), 98166 Messina, Italy;

    University of Messina, Department of Industrial Chemistry and Materials Engineering, Contrada di Dio, Sant'Agata (ME), 98166 Messina, Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ship design; aluminium foam sandwich; aluminium honeycomb sandwich; energy absorption; weight minimization;

    机译:船舶设计;泡沫铝三明治铝蜂窝三明治能量吸收重量最小化;

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