A Comparative Study of a Machine Learning Approach and Response Surface Methodology for Optimizing the HPT Processing Parameters of AA6061/SiCp Composites

IF 3.3 Q2 ENGINEERING, MANUFACTURING Journal of Manufacturing and Materials Processing Pub Date : 2023-08-10 DOI:10.3390/jmmp7040148
W. El-Garaihy, A. I. Alateyah, Mahmoud Shaban, M. F. Alsharekh, F. Alsunaydih, Samar El-Sanabary, H. Kouta, Yasmine El-Taybany, H. Salem
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引用次数: 1

Abstract

This work investigates the efficacy of high-pressure torsion (HPT), as a severe plastic deformation mechanism for processing plain and silicon-carbide-reinforced AA6061, with the broader objective of using the technique for improving the properties of lightweight materials for a range of objectives. The interactions between input variables, such as the pressure and equivalent strain (εeq) applied during HPT processing, and the presence of SiCp and response variables, like the relative density, grain refinement, homogeneity of the structure, and the mechanical properties of the AA6061 aluminum matrix, were investigated. Hot compaction (HC) of the mixed powders followed by HPT were employed to produce AA6061 discs with and without 15% SiCp. The experimental findings were then analyzed statistically using the response surface methodology (RSM) and a machine learning (ML) approach to predict the output variables and to optimize the input parameters. The optimum combination of HPT process parameters was confirmed by the genetic algorithm (GA) and ML approaches. Furthermore, the constructed ML and RSM models were validated experimentally by HPT processing the same material under new conditions not fed into the models and comparing the experimental results to those predicted by the model. From the ML and RSM models, it was found that processing the AA6061/SiCp composite HPT via four revolutions at 3 GPa produced the highest mechanical properties coupled with significant grain refinement compared to the HC condition. ML analysis revealed that the equivalent strain induced by the number of revolutions was the most effective parameter for grain refinement, whereas the presence of SiCp played the highest role in improving both the hardness values and the compressive strength of the AA6061 matrices.
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机器学习与响应面法优化AA6061/SiCp复合材料HPT工艺参数的比较研究
这项工作研究了高压扭转(HPT)的有效性,作为一种严重的塑性变形机制,用于加工普通和碳化硅增强AA6061,更广泛的目标是利用该技术改善轻质材料的性能,实现一系列目标。研究了HPT加工过程中施加的压力和等效应变(εeq)等输入变量与SiCp的存在以及响应变量(如相对密度、晶粒细化、组织均匀性和力学性能)之间的相互作用。采用热压实法(HC)对混合粉末进行热压实(HPT),制备了含15% SiCp和不含15% SiCp的AA6061圆盘。然后使用响应面法(RSM)和机器学习(ML)方法对实验结果进行统计分析,以预测输出变量并优化输入参数。采用遗传算法和机器学习方法确定了HPT工艺参数的最佳组合。在此基础上,对所构建的ML和RSM模型进行了实验验证,并将实验结果与模型预测结果进行了比较。从ML和RSM模型中发现,与HC条件相比,在3 GPa下进行4转处理的AA6061/SiCp复合HPT具有最高的力学性能和显著的晶粒细化。ML分析表明,由转数引起的等效应变是晶粒细化的最有效参数,而SiCp的存在对提高AA6061基体的硬度值和抗压强度都有最大的作用。
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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