Multi-Objective Optimization of Tribological Characteristics for Aluminum Composite Using Taguchi Grey and TOPSIS Approaches

S. Gajević, Ana Marković, S. Milojević, A. Ašonja, L. Ivanović, Blaža Stojanović
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Abstract

In this study, a multi-objective optimization regarding the tribological characteristics of the hybrid composite with a base material of aluminum alloy A356 as a constituent, reinforced with a 10 wt.% of silicon carbide (SiC), size 39 µm, and 1, 3, and 5 wt.% graphite (Gr), size 35 µm, was performed using the Taguchi method, gray relational analysis (GRA), and Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) decision-making methods. Tribological tests were carried out on a “block on disc” type tribometer with lubrication. Load, sliding speed, and graphite mass concentration were analyzed as input parameters. As output parameters, wear rate and coefficient of friction were calculated. An analysis of variance (ANOVA) was conducted to identify all parameters that have a significant influence on the output multi-response. It was found that the normal load has the highest influence of 41.86%, followed by sliding speed at 32.48% and graphite addition at 18.47%, on the tribological characteristics of composites. Multi-objective optimization determined that the minimal wear rate and coefficient of friction are obtained when the load is 40 N, the sliding speed is 1 m/s, and the composite contains 3 wt.% Gr. The optimal combination of parameters achieved by GRA was also confirmed by the TOPSIS method, which indicates that both methods can be used with high reliability to optimize the tribological characteristics. The analysis of worn surfaces using scanning electron microscopy revealed adhesive and delamination wear as dominant mechanisms.
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采用田口灰色法和 TOPSIS 法对铝复合材料的摩擦学特性进行多目标优化
本研究采用田口方法、灰色关系分析法(GRA)和理想解相似度排序优化技术(TOPSIS)等决策方法,对以铝合金 A356 为基材、以 10 重量百分比的碳化硅(SiC)(尺寸为 39 微米)和 1、3 和 5 重量百分比的石墨(Gr)(尺寸为 35 微米)为增强成分的混合复合材料的摩擦学特性进行了多目标优化。摩擦学测试在带润滑的 "圆盘上的块 "式摩擦磨损试验仪上进行。载荷、滑动速度和石墨质量浓度作为输入参数进行分析。作为输出参数,计算了磨损率和摩擦系数。通过方差分析(ANOVA)确定了对输出多响应有显著影响的所有参数。结果发现,法向载荷对复合材料摩擦学特性的影响最大,为 41.86%,其次是滑动速度(32.48%)和石墨添加量(18.47%)。多目标优化结果表明,当载荷为 40 N、滑动速度为 1 m/s、复合材料含有 3 wt.% Gr 时,磨损率和摩擦系数最小。使用扫描电子显微镜对磨损表面进行的分析表明,粘着磨损和分层磨损是主要的磨损机制。
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