ANN-based predictive modelling of the effect of abrasive water-jet parameters on the surface roughness of AZ31 Mg alloy

被引:0
|
作者
Doreswamy, Deepak [1 ]
Bhat, Subraya Krishna [2 ]
Raghunandana, K. [2 ]
Hiremath, Pavan [2 ]
Shreyas, Donga Sai [1 ]
Bongale, Anupkumar [3 ]
机构
[1] Manipal Inst Technol, Manipal Acad Higher Educ, Dept Mechatron, Manipal 576104, Karnataka, India
[2] Manipal Inst Technol, Manipal Acad Higher Educ, Dept Mech & Ind Engn, Manipal 576104, Karnataka, India
[3] Symbiosis Int Univ, Symbiosis Inst Technol, Dept Artificial Intelligence & Machine Learning, Pune, Maharashtra, India
来源
MANUFACTURING REVIEW | 2024年 / 11卷
关键词
Abrasive water jet machining; AWJM; Mg AZ31; surface roughness; Taguchi method; artificial neural network; MAGNESIUM ALLOY; TRENDS;
D O I
10.1051/mfreview/2024019
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In today's world, there is an acute need to increase the usage of ecologically sustainable materials like AZ31 magnesium (Mg) alloy, possessing high strength-to-weight ratio and biocompatibility. However, its machinability through conventional machining techniques remains a challenge due to its high flammability. AWJM of Mg alloys is a promising method in this scenario. The present study investigated the effects of three important operating parameters, viz., stand-off distance (SOD), feed rate, and number of passes on the surface roughness parameters (Ra, Rq and Rz). Experiments were conducted based on Taguchi's L9 orthogonal array, and the effects of parameters on R-a, R-q and R-z were analysed statistically using analysis of variance (ANOVA). The results demonstrated that SOD and number of passes together have significant influence on the surface roughness (between 60% and 80% contribution). The individual and interaction results effects of parameters revealed that, SOD of 1-2 mm, feed rate of 130 mm/min and two cutting passes resulted in the best surface quality with least roughness (R-a, R-q < 3 mu m and R-z < 12 mu m). Finally, an artificial neural network model was developed with 7 neurons in the hidden layer, which simultaneously predicted R-a, R-q and R-z with high accuracy (R > 0.99).
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页数:13
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