Design of Alumina Reinforced Aluminium Alloy Composites with Improved Tribo-Mechanical Properties: A Machine Learning Approach

被引:0
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作者
Titov Banerjee
Swati Dey
Aluru Praveen Sekhar
Shubhabrata Datta
Debdulal Das
机构
[1] Birbhum Institute of Engineering and Technology,Department of Aerospace Engineering and Applied Mechanic
[2] Indian Institute of Engineering Science and Technology,Department of Metallurgy and Materials Engineering
[3] Indian Institute of Engineering Science and Technology,Department of Mechanical Engineering
[4] SRM Institute of Science and Technology,undefined
关键词
Metal matrix composite; Aluminium; Alumina; Mechanical behavior; Wear; Artificial neural network; Genetic algorithm; Multi-objective optimization; Pareto front;
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学科分类号
摘要
Artificial intelligence approach for data-driven design is employed to design an alumina reinforced aluminium matrix composite (AMC) with improved tribo-mechanical properties. Machine learning tool, viz. Artificial neural network (ANN), is used as a tool to create a set of models describing the properties of the AMC. The database required for the ANN modelling was extracted from published literature. The objective functions to search the optimum combinations of composition, size and morphological properties were provided from those ANN models. Since the objectives are conflicting in nature, a multi-objective optimization is introduced using genetic algorithm as a tool and the achieved Pareto solutions are used for designing the composite with tailored properties.
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页码:3059 / 3069
页数:10
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