Gonfa Biranu Kumsa, Sinha Devendra, Vates Umesh Kumar, Badruddin Irfan Anjum, Hussien Mohamed, Kamangar Sarfaraz, Singh Gyanendra Kumar, Ahmed Gulam Mohammed Sayeed, Kanu Nand Jee, Hossain Nazia
Program of Mechanical Design and Manufacturing Engineering, Department of Mechanical Engineering, School of Mechanical, Chemical and Materials Engineering, ASTU, Adama 1888, Ethiopia.
Amity School of Engineering and Technology, Amity University Uttar Pradesh, Noida 201301, India.
Materials (Basel). 2022 Aug 16;15(16):5607. doi: 10.3390/ma15165607.
Aluminum metal matrix composites are potential materials for aerospace and automobile industrial applications due to their enhanced mechanical and tribological properties. Aluminum reinforced with silicon carbide particles has been developed with enhanced mechanical and tribological behavior, but it lacks wettability between matrix and reinforcement causing weak bonding, which reduces the degree of enhancement. The objectives of this study were to fabricate aluminum-based metal matrix composites with enhanced wettability at varying stirring speeds (350, 450, 550 rpm), stirring time (5, 10, 15 min), weight percentage of SiC (0, 5, 10 wt.%), and weight percentage of MoS (0, 2, 4 wt.%). Nine samples were fabricated using stir casting based on Taguchi L9 orthogonal array. Hardness, tensile strength, and wear rate of the developed composite were investigated and analyzed as a single response characteristic using Taguchi's signal-to-noise ratio and as a multi-response characteristic using hybrid Taguchi-grey relational analysis (HTGRA). The results revealed that the addition of SiC in the composite produced better hardness, tensile strength, and wear rate. The addition of MoS in the composite showed better hardness and tensile strength only up to 2 wt.% of MoS, and in the case of wear rate, the addition of MoS in the composite up to 4% showed better wear resistance. Al-SiC-MoS hybrid composite shows better enhancement in hardness, tensile strength, and wear resistance than the Al-SiC composite.
铝基金属基复合材料因其增强的力学和摩擦学性能而成为航空航天和汽车工业应用的潜在材料。用碳化硅颗粒增强的铝已被开发出来,具有增强的力学和摩擦学性能,但基体与增强体之间缺乏润湿性,导致结合力较弱,从而降低了增强程度。本研究的目的是在不同搅拌速度(350、450、550转/分钟)、搅拌时间(5、10、15分钟)、碳化硅重量百分比(0、5、10重量%)和二硫化钼重量百分比(0、2、4重量%)下制备具有增强润湿性的铝基金属基复合材料。基于田口L9正交阵列,采用搅拌铸造法制备了九个样品。使用田口信噪比将开发的复合材料的硬度、拉伸强度和磨损率作为单一响应特性进行研究和分析,并使用混合田口-灰色关联分析(HTGRA)作为多响应特性进行研究和分析。结果表明,在复合材料中添加碳化硅可产生更好的硬度、拉伸强度和磨损率。在复合材料中添加二硫化钼,仅在二硫化钼含量高达2重量%时,硬度和拉伸强度较好;在磨损率方面,在复合材料中添加高达4%的二硫化钼时,耐磨性较好。与铝-碳化硅复合材料相比,铝-碳化硅-二硫化钼混合复合材料在硬度、拉伸强度和耐磨性方面表现出更好的增强效果。