Kwon Hansang, Saarna Mart, Leparoux Marc
Department of Materials System Engineering, Pukyong National University, 45, Yongso-ro, Nam-gu, Busan 48547, Korea.
Department of Materials Engineering, Tallinn University of Technology, Ehitajate tee 5, 19086 Tallinn, Estonia.
J Nanosci Nanotechnol. 2020 Oct 1;20(10):6482-6488. doi: 10.1166/jnn.2020.17884.
Nano-silicon carbide (nSiC) particle-reinforced aluminium (Al) 6061 alloy matrix composites were fabricated by high-energy ball milling, hot-pressing (HP), and hot-forging (HF). The composite powders were degassed and the composites were synthesised under air and/or vacuum. Mechanical properties of the obtained composite materials were evaluated using various tests, including indentation, compression, four-point bending, and tensile tests as well as by microstructural observations. Different amounts of nSiC were added and the mechanical properties of the obtained composite materials were measured and discussed. The microstructures of the composites depended on the nSiC content and synthesis conditions. The Vickers hardness and tensile strength values of the nSiC reinforced Al 6061 composites were approximately three times higher than that of a pure Al 6061 alloy bulk. The results demonstrated that the small amount of nSiC particles functioned as efficient reinforcement material in the Al 6061 alloy matrix composite material and that the strength and ductility of the composite material can be controlled by adjusting the processing parameters and nSiC content.
通过高能球磨、热压(HP)和热锻(HF)制备了纳米碳化硅(nSiC)颗粒增强铝(Al)6061合金基复合材料。对复合粉末进行脱气处理,并在空气和/或真空条件下合成复合材料。使用包括压痕、压缩、四点弯曲和拉伸试验在内的各种测试以及微观结构观察来评估所得复合材料的力学性能。添加了不同量的nSiC,并对所得复合材料的力学性能进行了测量和讨论。复合材料的微观结构取决于nSiC含量和合成条件。nSiC增强Al 6061复合材料的维氏硬度和拉伸强度值比纯Al 6061合金块体高出约三倍。结果表明,少量的nSiC颗粒在Al 6061合金基复合材料中起到了有效的增强材料作用,并且可以通过调整加工参数和nSiC含量来控制复合材料的强度和延展性。