Kumar Ravinder, Jha Kanishka, Sharma Shubham, Kumar Vineet, Li Changhe, Eldin Elsayed Mohamed Tag, Rajkumar S, Królczyk G
School of Mechanical Engineering, Lovely Professional University, Punjab, 144001, India.
Department of Mechanical Engineering, IK Gujral Punjab Technical University, Main Campus, Kapurthala, 144603, India.
Heliyon. 2022 Sep 13;8(9):e10602. doi: 10.1016/j.heliyon.2022.e10602. eCollection 2022 Sep.
Stir-casting was employed to create Al-5.6Zn-2.2Mg-1.3Cu composites with particle sizes ranging from 30 to 90 μm and a weight fraction of 5-15 SiC articles. The mechanical and wear properties of the material have been assessed. The wear-behaviour of Al-5.6Zn-2.2Mg-1.3Cu composites was investigated using dry pin-on-disc wear testing. Various loads (20 N-60 N), speeds (2 m/s-6 m/s), and sliding-distances were used in the sliding wear experiments (2000 m-4000 m). In the experimental process, XRD, SEM, and EDX were used to characterize the microstructures and materials of diverse composites. Uniform dispersion of the SiC particles is clearly observed in the SEM image. The micro hardness of SiC particles increases by 13% when the weight percent of SiC particles is increased from 5% to 15%. SiC particles outperform tiny SiC particles in terms of wear-resistance. With increasing load, the particular wear-rate showed an increasing trend (20-60 N). The wear-rate of the composite lowers as the weight percentage reinforcement increases (wt. 5% to wt. 15%), and the wear-rate of the composite increases when the particle-size (30 μm-90 μm) increases. The results demonstrated that composites supplemented with coarse SiC particles outperform tiny SiC particles in terms of wear resistance.
采用搅拌铸造法制备了粒径范围为30至90μm、SiC颗粒重量分数为5 - 15%的Al-5.6Zn-2.2Mg-1.3Cu复合材料。对该材料的力学性能和磨损性能进行了评估。采用干销盘磨损试验研究了Al-5.6Zn-2.2Mg-1.3Cu复合材料的磨损行为。在滑动磨损试验(2000 m - 4000 m)中使用了各种载荷(20 N - 60 N)、速度(2 m/s - 6 m/s)和滑动距离。在实验过程中,使用XRD、SEM和EDX对不同复合材料的微观结构和材料进行了表征。在SEM图像中清晰观察到SiC颗粒的均匀分散。当SiC颗粒的重量百分比从5%增加到15%时,SiC颗粒的显微硬度增加了13%。在耐磨性方面,SiC颗粒优于微小的SiC颗粒。随着载荷增加(20 - 至60 N),比磨损率呈上升趋势。随着增强体重量百分比增加(重量5%至重量15%),复合材料的磨损率降低,而当粒径(30μm - 90μm)增加时,复合材料的磨损率增加。结果表明,添加粗SiC颗粒的复合材料在耐磨性方面优于微小SiC颗粒。