Kumar Anil, Kumar Santosh, Mukhopadhyay Nilay Krishna, Yadav Anshul, Winczek Jerzy
Department of Mechanical Engineering, Kamla Nehru Institute of Technology, Sultanpur 228118, India.
Department of Mechanical Engineering, Indian Institute of Technology (BHU), Varanasi 221005, India.
Materials (Basel). 2020 Oct 31;13(21):4913. doi: 10.3390/ma13214913.
In this study, the processing of SiC particulate-strengthened magnesium alloy metal matrix composites via vacuum supported inert atmosphere stir casting process is presented. The effects of small variations in the SiC particulate (average size 20 µm) reinforcement in magnesium alloy AZ91 were examined. It was found that with the addition of SiC particulate reinforcement, the hardness improved considerably, while the ultimate tensile and yield strength improved slightly. The density and of the magnesium alloy-based composites increased with the increase in the wt.% of SiC particulates. The tensile and compressive fracture study of the fabricated composites was also performed. The tensile fractures were shown to be mixed-mode fractures (i.e., ductile and cleavage). The fractured surface also disclosed tiny dimples, micro-crack, and cleavage fractures which increases with increasing reinforcement. For the compression fracture, the surface microstructural studies of AZ91 displayed major shear failure and demonstrated the greater shear bands when compared to AZ91/SiC composites, which instead revealed rough fracture surfaces with mixed-mode brittle and shear features.
在本研究中,介绍了通过真空支持的惰性气氛搅拌铸造工艺制备碳化硅颗粒增强镁合金金属基复合材料的过程。研究了碳化硅颗粒(平均尺寸20 µm)增强量的微小变化对AZ91镁合金的影响。结果发现,添加碳化硅颗粒增强剂后,硬度显著提高,而极限抗拉强度和屈服强度略有提高。镁基复合材料的密度随着碳化硅颗粒重量百分比的增加而增加。还对制备的复合材料进行了拉伸和压缩断裂研究。拉伸断裂显示为混合模式断裂(即韧性断裂和解理断裂)。断口表面还揭示了微小的凹坑、微裂纹和解理断裂,且随着增强剂含量的增加而增加。对于压缩断裂,AZ91的表面微观结构研究显示出主要的剪切破坏,并且与AZ91/碳化硅复合材料相比,显示出更多的剪切带,而AZ91/碳化硅复合材料则显示出具有混合模式脆性和剪切特征的粗糙断裂表面。