A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization
AISI 1045 steel is one of the most widely used steel in the manufacturing industry. In order to have the best quality of turned AISI 1045 steel product, surface roughness is being considered as output parameter. The two purposes of this research are to model the surface roughness using response surf...
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my.umk.eprints.86032022-05-23T10:38:19Z http://discol.umk.edu.my/id/eprint/8603/ A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization Nooraziah Ahmad Tiagrajah V. Janahiraman AISI 1045 steel is one of the most widely used steel in the manufacturing industry. In order to have the best quality of turned AISI 1045 steel product, surface roughness is being considered as output parameter. The two purposes of this research are to model the surface roughness using response surface methodology and to compare the different types of optimization approaches in order to identify the optimum surface roughness with particular combination of cutting parameters in turning operation. The result obtained from this study showed that the values from RSMs' prediction are 99.3% similar to the experimental values. While, particle swarm optimization give the lowest surface roughness when compared to Taguchi method and genetic algorithm and it can optimize faster than genetic algorithm. IIEEE Malaysia Section Control Systems Chapter Book Section NonPeerReviewed Nooraziah Ahmad and Tiagrajah V. Janahiraman A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization. In: 2015 IEEE Conference on Systems, Process and Control (ICSPC). IIEEE Malaysia Section Control Systems Chapter, pp. 129-133. ISBN 9781467376549 http://ieeexplore.ieee.org/xpl/login.jsp?tp=&arnumber=7473572&url=http%3A%2F%2Fieeexplore.ieee.org%2Fxpls%2Fabs_all.jsp%3Farnumber%3D7473572 |
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AISI 1045 steel is one of the most widely used steel in the manufacturing industry. In order to have the best quality of turned AISI 1045 steel product, surface roughness is being considered as output parameter. The two purposes of this research are to model the surface roughness using response surface methodology and to compare the different types of optimization approaches in order to identify the optimum surface roughness with particular combination of cutting parameters in turning operation. The result obtained from this study showed that the values from RSMs' prediction are 99.3% similar to the experimental values. While, particle swarm optimization give the lowest surface roughness when compared to Taguchi method and genetic algorithm and it can optimize faster than genetic algorithm. |
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Book Section |
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Nooraziah Ahmad Tiagrajah V. Janahiraman |
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Nooraziah Ahmad Tiagrajah V. Janahiraman A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization |
author_facet |
Nooraziah Ahmad Tiagrajah V. Janahiraman |
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Nooraziah Ahmad |
title |
A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization |
title_short |
A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization |
title_full |
A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization |
title_fullStr |
A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization |
title_full_unstemmed |
A comparison on optimization of surface roughness in machining AISI 1045 steel using Taguchi method, genetic algorithm and particle swarm optimization |
title_sort |
comparison on optimization of surface roughness in machining aisi 1045 steel using taguchi method, genetic algorithm and particle swarm optimization |
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IIEEE Malaysia Section Control Systems Chapter |
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http://discol.umk.edu.my/id/eprint/8603/ http://ieeexplore.ieee.org/xpl/login.jsp?tp=&arnumber=7473572&url=http%3A%2F%2Fieeexplore.ieee.org%2Fxpls%2Fabs_all.jsp%3Farnumber%3D7473572 |
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