Performance Analysis of Helical Milling and Drilling Operations While Machining Carbon Fiber-Reinforced Aluminum Laminates
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Thrust Force
3.2. Machining Temperature
3.3. Surface Roughness
3.4. Surface Morphology
3.5. Microhardness
4. Conclusions
- Thrust force increased with the axial feed, while a dropping trend was noted with increased cutting speed. The increase in thrust force with axial feed is attributed to the increase in uncut chip thickness, while the reduction in thrust force with cutting speed is linked to material thermal softening. Moreover, the thrust force recorded during helical milling is 97–124 N lower than the conventionally drilled force magnitude. The decrease is attributed to load distribution at the frontal and peripheral cutting edges of the end mill, which differs from the drill tool, where cutting solely takes place at the frontal cutting edges.
- Selected process variables affect the machining temperature. A maximum temperature of 136.7 °C while drilling was recorded with a higher cutting speed of 60 m/min and a lower axial feed of 0.015 mm/rev. The maximum temperature observed in the drilling was higher than the glass transition temperature of epoxy resin. In the case of helical milling, a temperature of 80.1 °C was recorded for similar productivity conditions, indicating a lower probability of temperature-induced damages in the FML.
- The selected hole-making operation influenced the roughness of the holes. Higher surface roughness was recorded in holes processed using the drilling process. A maximum average roughness of 3.8 µm was noted during the drilling process, while a roughness of 2.01 µm was observed in helical milled holes, indicating the helical mill operation’s capability to produce excellent-quality holes.
- The morphology of the drilled holes indicated the presence of defects such as grooves, feed marks, material smearing, material ingression, interlayer burr formation, fiber bundle exposure, and fiber pull-out. Helical-milled hole surfaces were characterized by the presence of smeared material, feed marks, and buckled fibers. Principally, in comparison to drilled holes, helical-milled holes exhibited better surface quality even under dry cutting conditions.
- The selected levels of process variables were conductive and favorable for carrying out drilling and helical milling operations without inducing any critical defects like delamination and debonding in CARALL FMLs.
- The microhardness of the aluminum layers increased by 7.3% to 20.5% in the case of drilling and by 16.4% to 28.2% in the case of helical milling. The axial feed/axial pitch had minimal influence on the microhardness increase in comparison to the cutting speed. The position of the aluminum layer in the CARALL stacking sequence, to some extent, influenced the post-machining microhardness.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Carbon Fiber | Al2024-T3 | |
---|---|---|
Density (g/cm3) | 1.8 | 2.78 |
Filament diameter (µm) | 7 | - |
Tensile strength (MPa) | 4000 | 483 |
Tensile modulus (GPa) | 240 | 73 |
Elongation (%) | 1.7 | 18 |
Yield strength (MPa) | - | 385 |
Shear strength (MPa) | - | 283 |
Case | Cutting Speed (V) (m/min) | Axial Feed (fa) (mm/rev) | Tangential Feed (ft) (mm/tooth) | Machining Time (tm) (s) | ||
---|---|---|---|---|---|---|
Drilling | Helical Milling | Helical Milling | Drilling | Helical Milling | ||
1 | 20 | 0.015 | 0.15 | 0.09 | 87 | 86 |
2 | 20 | 0.030 | 0.30 | 0.09 | 51 | 52 |
3 | 20 | 0.045 | 0.45 | 0.09 | 39 | 40 |
4 | 40 | 0.015 | 0.15 | 0.09 | 51 | 51 |
5 | 40 | 0.030 | 0.30 | 0.09 | 33 | 33 |
6 | 40 | 0.045 | 0.45 | 0.09 | 27 | 28 |
7 | 60 | 0.015 | 0.15 | 0.09 | 39 | 39 |
8 | 60 | 0.030 | 0.30 | 0.09 | 27 | 27 |
9 | 60 | 0.045 | 0.45 | 0.09 | 23 | 23 |
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Bolar, G.; Dinesh, A.A.; Polishetty, A.; Shetty, R.; Hiremath, A.; Neelakantha, V.L. Performance Analysis of Helical Milling and Drilling Operations While Machining Carbon Fiber-Reinforced Aluminum Laminates. J. Manuf. Mater. Process. 2024, 8, 113. https://doi.org/10.3390/jmmp8030113
Bolar G, Dinesh AA, Polishetty A, Shetty R, Hiremath A, Neelakantha VL. Performance Analysis of Helical Milling and Drilling Operations While Machining Carbon Fiber-Reinforced Aluminum Laminates. Journal of Manufacturing and Materials Processing. 2024; 8(3):113. https://doi.org/10.3390/jmmp8030113
Chicago/Turabian StyleBolar, Gururaj, Anoop Aroor Dinesh, Ashwin Polishetty, Raviraj Shetty, Anupama Hiremath, and V. L. Neelakantha. 2024. "Performance Analysis of Helical Milling and Drilling Operations While Machining Carbon Fiber-Reinforced Aluminum Laminates" Journal of Manufacturing and Materials Processing 8, no. 3: 113. https://doi.org/10.3390/jmmp8030113
APA StyleBolar, G., Dinesh, A. A., Polishetty, A., Shetty, R., Hiremath, A., & Neelakantha, V. L. (2024). Performance Analysis of Helical Milling and Drilling Operations While Machining Carbon Fiber-Reinforced Aluminum Laminates. Journal of Manufacturing and Materials Processing, 8(3), 113. https://doi.org/10.3390/jmmp8030113