A synergistic approach to the development of lightweight aluminium-based porous metallic foam using stir casting method

Shyam Sharma, Rahul Khatri, Anurag Joshi
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Abstract

Introduction. A synergetic approach to the development of lightweight aluminium metal foam by stir casting process is presented and various mechanical properties and microstructure are tested. The purpose of this study is due to the constant industrial demand for lightweight materials and increased research interest in porous substrates, mainly due to its unique properties. Materials and method. The method used for developing metallic aluminium foam was stir casting with calcium carbonate as a foaming agent to achieve a target interconnected porous microenvironment on a metal foam substrate. Results and Discussion. A set of physical properties, such as apparent density (1.8 g/cm3), relative density (0.67 g/cm3) and porosity (30%) of the developed aluminium-based metal foams, is stated as the result. The developed metal foam has a strength-to-weight ratio 67% higher than that of the base material. In addition, the results of field emission scanning electron microscopy of the developed metal foam confirm the presence of a porous network with a pore size from 0.075 mm to 1.43 mm. Energy dispersive spectroscopy confirmed the presence of the desired elements with minimal contamination in the developed aluminium foam substrates. Metal foam demonstrates a higher compressive strength (607 kN) compared to the base metal (497 kN). The mechanical characteristics of the developed metal foam substrate (hardness, compressive strength and impact energy) show the expected results compared to the base material. In general, the developed aluminium foam substrate established a promising route to the development of highly performance lightweight metal foam for shock absorber and acoustic applications.
利用搅拌铸造法开发轻质铝基多孔金属泡沫的协同方法
简介。介绍了通过搅拌铸造工艺开发轻质金属泡沫铝的协同方法,并测试了各种机械性能和微观结构。这项研究的目的是为了满足工业对轻质材料的持续需求,并提高对多孔基材的研究兴趣,这主要是由于多孔基材的独特性能。材料和方法。开发金属泡沫铝所采用的方法是以碳酸钙为发泡剂进行搅拌铸造,从而在金属泡沫基材上实现目标互联多孔微环境。结果与讨论。结果显示了所开发的铝基金属泡沫的一系列物理特性,如表观密度(1.8 克/立方厘米)、相对密度(0.67 克/立方厘米)和孔隙率(30%)。所开发的金属泡沫的强度重量比比基础材料高出 67%。此外,对开发的金属泡沫进行场发射扫描电子显微镜检查的结果证实,泡沫中存在多孔网络,孔径从 0.075 毫米到 1.43 毫米不等。能量色散光谱分析证实,在开发的泡沫铝基材中存在所需的元素,且污染极少。与基底金属(497 千牛)相比,金属泡沫的抗压强度更高(607 千牛)。与基础材料相比,开发的金属泡沫基材的机械特性(硬度、抗压强度和冲击能量)达到了预期效果。总之,所开发的泡沫铝基材为减震器和声学应用领域高性能轻质金属泡沫的开发开辟了一条前景广阔的道路。
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