LAPSE:2023.1875
Published Article

LAPSE:2023.1875
Multi-Response Optimization during the High-Speed Drilling of Composite Laminate Using the Grey Entropy Fuzzy Method (GEF)
February 21, 2023
Abstract
The machining of glass-fiber-reinforced composites is complex due to their heterogeneous structures. Research has indicated that high-speed machining, at high spindle speeds and feed rates, not only increases productivity but also reduces drilling defects, such as delamination. However, there are several challenges with high-speed machining, such as the heat generated during drilling between the drill tool and chip contact surfaces that can result in hole size errors. Therefore, it is essential to determine the optimum drilling parameters. This paper presents an innovative hybrid optimization approach called Grey Entropy Fuzzy. This approach is a combination of entropy-based weight integrated Grey Relation analysis and fuzzy logic. With the consideration of all responses simultaneously, an optimum machining combination was obtained at a spindle speed of 12,000 rpm and a feed rate of 0.02 mm/rev using a drill bit with a point angle of 118° and a drill diameter of 6 mm.
The machining of glass-fiber-reinforced composites is complex due to their heterogeneous structures. Research has indicated that high-speed machining, at high spindle speeds and feed rates, not only increases productivity but also reduces drilling defects, such as delamination. However, there are several challenges with high-speed machining, such as the heat generated during drilling between the drill tool and chip contact surfaces that can result in hole size errors. Therefore, it is essential to determine the optimum drilling parameters. This paper presents an innovative hybrid optimization approach called Grey Entropy Fuzzy. This approach is a combination of entropy-based weight integrated Grey Relation analysis and fuzzy logic. With the consideration of all responses simultaneously, an optimum machining combination was obtained at a spindle speed of 12,000 rpm and a feed rate of 0.02 mm/rev using a drill bit with a point angle of 118° and a drill diameter of 6 mm.
Record ID
Keywords
composite materials, delamination, Grey Entropy Fuzzy, high-speed drilling, temperature, thrust force
Subject
Suggested Citation
Babu J, Madarapu A, Paul L, Ahmed ANK, Davim JP. Multi-Response Optimization during the High-Speed Drilling of Composite Laminate Using the Grey Entropy Fuzzy Method (GEF). (2023). LAPSE:2023.1875
Author Affiliations
Babu J: Department of Mechanical Engineering, IMPACT College of Engineering & Applied Sciences, Sahakaranagar South, Kodigenhalli, Bangalore 560092, Karnataka, India [ORCID]
Madarapu A: Department of Mechanical Engineering, Guru Nanak Institutions Technical Campus, Ibrahimpatnam, Hyderabad 501506, Telangana, India [ORCID]
Paul L: Department of Mechanical Engineering, St. Joseph’s College of Engineering & Technology, Choondacherry, Kottayam 686579, Kerala, India [ORCID]
Ahmed ANK: Department of Mechanical Engineering, IMPACT College of Engineering & Applied Sciences, Sahakaranagar South, Kodigenhalli, Bangalore 560092, Karnataka, India
Davim JP: Department of Mechanical Engineering, University of Aveiro Campus Santiago, 3810-183 Aveiro, Portugal [ORCID]
Madarapu A: Department of Mechanical Engineering, Guru Nanak Institutions Technical Campus, Ibrahimpatnam, Hyderabad 501506, Telangana, India [ORCID]
Paul L: Department of Mechanical Engineering, St. Joseph’s College of Engineering & Technology, Choondacherry, Kottayam 686579, Kerala, India [ORCID]
Ahmed ANK: Department of Mechanical Engineering, IMPACT College of Engineering & Applied Sciences, Sahakaranagar South, Kodigenhalli, Bangalore 560092, Karnataka, India
Davim JP: Department of Mechanical Engineering, University of Aveiro Campus Santiago, 3810-183 Aveiro, Portugal [ORCID]
Journal Name
Processes
Volume
10
Issue
9
First Page
1865
Year
2022
Publication Date
2022-09-15
ISSN
2227-9717
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Original Submission
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PII: pr10091865, Publication Type: Journal Article
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LAPSE:2023.1875
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https://doi.org/10.3390/pr10091865
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Feb 21, 2023
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