An Evaluation of the Tool Wear of Ceramic and Coated Carbide Inserts in Finishing Turning under the Influence of Age-Strengthening Gray Cast Iron
Abstract
:1. Introduction
2. Review of Wear Mechanism in a Grey Cast Iron Machining Process
3. Procedures for Experiments
Brake Machining Process Details from the Manufacturer
4. Casting Material Analysis
5. Cutting Tool Characterization Results
EDS Analysis
6. Morphology of the Surfaces Machined
7. Conclusions
- The flank and rake face of the ceramic inserts showed abrasion (notching) as the main wear mechanism, which was more evident in relation to the age−strengthening variation of GCI. In contrast, the coated carbide inserts exhibited a predominantly adhesive wear and oxidation on the rake face, compared to the other wear mechanism. The oxidation resulted in wear products such as aluminum oxide and iron oxide, which were deduced from the quantitative EDS analysis on the rake face of CNMG tools.
- Five and twelve days of aging in GCI affected 50% of the tool life of a coated carbide insert. Based on this, 1.2 mm was the highest flank wear measured by the SEM analysis.
- From the data collected by AFM, it is possible to correlate the effect of the adhesive material on the cutting tool with the final surface. The machining of GCI with a coated carbide insert resulted in a slightly nonuniform topography in contrast to the ceramic cutting tool.
- The authors suggest that twelve days of age strengthening would allow the use of a carbide insert with uniform wear damage when time is not an issue in the machining shop. Manufacturers should evaluate time and cost before selecting cutting tool materials.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
GCI | Gray Cast Iron |
CGI | Compacted Graphite Iron |
EDS/EDX | Energy Dispersive X-ray |
As-cast | Condition of a metal casting without heat treatment |
CBN | Cubic Boron Nitride |
PCBN | Polycrystalline Cubic Boron Nitride |
UTS | Ultimate Tensile Strength |
BCBN | Binderless Cubic Bore Nitride |
BUE | Build-Up Edge |
BNDCC | Boron Nitride Dispersed Cemented Carbide |
SEM | Scanning Electron Microscopy |
AFM | Atomic Force Mircroscope |
CVD | Chemical Vapor Deposition |
SCGN | Ceramic inserts used in this work |
CNMG | Coated carbide inserts used in this work |
VC | Cutting speed |
fn | Feed per revolution |
aP | Depth of cut |
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Indexable insert cutting tool: |
|
Tool | Insert | rpm | vc (m/min) | fz (mm) |
---|---|---|---|---|
1 | CNMG120412TSF-T515 | 650 | 724 | 0.1 |
2 | SCGN090412E-F | 1000 | 1115 | 0.1 |
Workpiece Material | Grey Cast Iron | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
5 days aging | 12 days aging | ||||||||||
Hardness | 183 HB | 184.2 HB | |||||||||
Tensile strength (N/mm2) | 177 | 180 | |||||||||
Chemical composition (at.%) | C | Si | P | Mn | S | Mo | Cr | Cu | Ni | Sn | Ti |
3.8 | 2.44 | 0.01 | 0.65 | 0.11 | 0.01 | 0.23 | 0.05 | 0.02 | 0.09 | 001 |
SCGN5R | SCGN5F | SCGN12R | SCGN12F | CNMG5R | CNMG12R | ||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Element | at. (%) | Element | at. (%) | Element | at. (%) | Element | at. (%) | Element | at. (%) | Element | at. (%) |
C N O Mg Al Si Zn Mo | 41.61 20.50 32.40 1.78 0.21 2.75 0.01 0.14 | C O Al Si Zn | 75.70 22.46 0.11 1.52 0.21 | C N O Mg Al Si Mo | 54.97 3.57 39.28 1.68 0.02 0.39 0.07 | C O Mg Al Si Mn Fe Zn Mo | 17.75 10.33 0.91 5.46 32.46 15.45 15.56 0.20 1.90 | C O Mg Al Si Fe Zn Mo | 16.04 52.15 0.10 27.40 0.63 3.65 0.01 0.03 | C O Mg Al Si Fe Mo | 5.14 69.83 3.28 2.28 2.48 15.68 1.31 |
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González-Sierra, N.E.; Flores Méndez, J.; Meraz-Melo, M.A.; Piñón Reyes, A.C.; Munoz-Hernandez, G.A.; Morales-Sánchez, A.; Moreno Moreno, M.; Minquiz, G.M. An Evaluation of the Tool Wear of Ceramic and Coated Carbide Inserts in Finishing Turning under the Influence of Age-Strengthening Gray Cast Iron. Appl. Sci. 2023, 13, 10248. https://doi.org/10.3390/app131810248
González-Sierra NE, Flores Méndez J, Meraz-Melo MA, Piñón Reyes AC, Munoz-Hernandez GA, Morales-Sánchez A, Moreno Moreno M, Minquiz GM. An Evaluation of the Tool Wear of Ceramic and Coated Carbide Inserts in Finishing Turning under the Influence of Age-Strengthening Gray Cast Iron. Applied Sciences. 2023; 13(18):10248. https://doi.org/10.3390/app131810248
Chicago/Turabian StyleGonzález-Sierra, N. E., Javier Flores Méndez, M. A. Meraz-Melo, Ana C. Piñón Reyes, German Ardul Munoz-Hernandez, Alfredo Morales-Sánchez, Mario Moreno Moreno, and Gustavo M. Minquiz. 2023. "An Evaluation of the Tool Wear of Ceramic and Coated Carbide Inserts in Finishing Turning under the Influence of Age-Strengthening Gray Cast Iron" Applied Sciences 13, no. 18: 10248. https://doi.org/10.3390/app131810248
APA StyleGonzález-Sierra, N. E., Flores Méndez, J., Meraz-Melo, M. A., Piñón Reyes, A. C., Munoz-Hernandez, G. A., Morales-Sánchez, A., Moreno Moreno, M., & Minquiz, G. M. (2023). An Evaluation of the Tool Wear of Ceramic and Coated Carbide Inserts in Finishing Turning under the Influence of Age-Strengthening Gray Cast Iron. Applied Sciences, 13(18), 10248. https://doi.org/10.3390/app131810248