2023
DOI: 10.3390/pr11102872
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Optimization of Drilling Parameters in Drilling of MWCNT-Reinforced GFRP Nanocomposites Using Fuzzy AHP-Weighted Taguchi-Based MCDM Methods

Yusuf Fedai

Abstract: Many problems such as delamination, cracking, fiber tearing, ovality, and surface roughness are encountered in the drilling of glass-fiber-reinforced composite (GFRP) materials. In this study, the percentage of multi-walled carbon nano tube (MWCNT), cutting tool type, feed rate, and cutting speed were selected as control factors during the drilling of MWCNT-reinforced GFRP nanocomposites. The quality characteristics of the drilling process were determined as surface roughness, delamination, torque, and thrust … Show more

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Cited by 7 publications
(3 citation statements)
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“…In comparing our study's findings with existing literature, it's evident that our results corroborate the effectiveness of MCDM methods in optimizing drilling processes It is in line with the studies conducted in the studies [24] and [26]. Specifically, our use of TOPSIS and VIKOR methods for evaluating drilling efficiency mirrors the approach by the study [27], who also applied MCDM techniques in a mining context.…”
Section: Figure 3 Alternative Ranking Obtained Using Different Methodssupporting
confidence: 87%
See 1 more Smart Citation
“…In comparing our study's findings with existing literature, it's evident that our results corroborate the effectiveness of MCDM methods in optimizing drilling processes It is in line with the studies conducted in the studies [24] and [26]. Specifically, our use of TOPSIS and VIKOR methods for evaluating drilling efficiency mirrors the approach by the study [27], who also applied MCDM techniques in a mining context.…”
Section: Figure 3 Alternative Ranking Obtained Using Different Methodssupporting
confidence: 87%
“…MCDM methods, recently applied in various fields, enhance the comprehensiveness and robustness of assessment systems [17][18][19][20]. Few studies on drilling machines have integrated MCDM methods [21][22][23][24].…”
Section: Introductionmentioning
confidence: 99%
“…The determination of the weighting value for the j-th criterion is typically contingent upon the structure of the proposed problem or the discretion of the users, as per the context of applications. If it is known how much each weight criterion is worth, then the gray correlation coefficient can be calculated by multiplying the gray correlation coefficient of the criterion with its weight, as stated in [41]. A greater value of the GRG indicates a more favorable degree of correspondence with the ideal data sequence and would be selected as the optimal solution.…”
Section: Gray Relational Grade (Grg) Calculationmentioning
confidence: 99%