Optimization of reinforcement ratio and stirring speed on mechanical properties of Al-TiB2-B4C hybrid composite using Taguchi – grey relational analysis

田口方法 材料科学 极限抗拉强度 抗弯强度 碳化硼 复合材料 正交数组 复合数 艾氏冲击强度试验 钢筋 灰色关联分析 布氏硬度计 数学 数理经济学
作者
Sheetal Sujaykumar Soni,Piyush P. Gohil
出处
期刊:Materials research express [IOP Publishing]
卷期号:11 (12): 126510-126510 被引量:4
标识
DOI:10.1088/2053-1591/ad9cee
摘要

Abstract The aim of the research is to optimise percentage ratio of hybrid reinforcements and stirring speed to maximize the mechanical properties of the hybrid composite by applying Taguchi analysis and grey relational analysis. The matrix material employed in this study is Al 7075, while boron carbide (B 4 C) and titanium diboride (TiB 2 ) serve as the reinforcement materials. The hybrid metal matrix composite is produced via the stir casting method. For experimental design Taguchi L9 orthogonal array was adopted, with the weight percentage of the reinforcement materials and stirring speed identified as experimental factors. The specified levels of weight percentage for the reinforcements B 4 C and TiB 2 were established at 3%, 6%, and 9%. The incorporation of both hard ceramic particles, B 4 C and TiB 2 plays a significant role in improving the mechanical properties of the hybrid composite. The highest tensile strength, hardness and flexural strength achieved is 203.72MPa, 129.2 BHN and 369 MPa respectively for highest percentage ratio of both the reinforcements i.e. Al/9% B 4 C/ 9% TiB 2 and for 600 rpm stirring speed. The mechanical properties analysed as response parameters consist of tensile strength, hardness, impact strength, and flexural strength. The Taguchi analysis, particularly the signal-to-noise (S/N) ratio evaluation, reveals that the percentage weight of TiB 2 is the predominant factor affecting tensile strength. In contrast, the percentage weight of B 4 C significantly influences both hardness and flexural strength, while stirring speed is the most critical parameter for impact strength. The optimal parameters identified for maximizing tensile strength, hardness, and flexural strength are 9% B 4 C, 9% TiB 2 , and a stirring speed of 600 rpm. Multi-objective optimization employing grey relational analysis is performed to maximise the mechanical properties. The highest grey relational grade was attained in experiment number 9, which is having parameter values 9% of B 4 C, 9% of TiB 2 and stirring speed of 600 rpm. The integration of Taguchi and grey relational analysis provides a robust optimization framework, offering a systematic methodology that enhances the understanding of parameters and enables the development of high-performance HMMCs tailored for engineering applications characterized by high significant demands.
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