Post-Wear Surface Morphology Assessment of Selective Laser Melting (SLM) AlSi10Mg Specimens after Heat Exposure to Different Gas Flames
Abstract
:1. Introduction
2. Experimental and Methodology
2.1. Fabrication of AlSi10Mg Specimens through SLM
2.2. Execution of Surface Heat Exposure from Gas Flames
2.3. Wear Testing Execution
3. Results and Discussion
3.1. Mass Loss Analysis after Wear Testing
3.2. Macro Analysis of Wear-Track Images and Cross-Sections
3.3. Microstructure and EDX Analysis of Heat-Exposure Specimens
3.4. SEM Analysis of the Worn Surfaces after Heat-Exposure
4. Conclusions
- The wear testing of the as-built SLM specimen exhibits the lowest mass loss of all of the surface exposure specimens through different flames. Moreover, the smallest block of mass loss also belongs to the as-built SLM condition with almost identical values at 24 mm and 30 mm radii, respectively.
- The wear behavior of SLM AlSi10Mg specimens exhibits nuanced responses to distinct heat exposures. Notably, the neutral flame produces the highest mass losses at both the 24 mm and 30 mm radii. However, carburizing and oxidizing flames yield lower mass losses in contrast to the neutral flame but higher values than the as-built condition specimens. These findings underscore the influence of heat exposure on wear characteristics, offering insights for tailored applications.
- By comparing the macro morphology of the developed wear tracks; the width of the built-in SLM specimens is sharp and consistent throughout the length though an elliptical impression; which is more widened at the center for the cases of heat exposure specimens. Even, the signs of extreme deformation with a bit more deeper and larger in width tracks for all of the flames, including carburizing, neutral, and oxidizing, are available along with badly affected dimensional stability.
- The observed wear pattern for all types of flames indicated that adhesive wear is the prevalent wear mechanism for both the wear tracks. A large amount of adhered amount exhibited on both sideways due to plastic deformation along with the ridges valley and micro-groove valley at 24 mm and 30 mm radii for carburizing flame are the highlighted features. However, severe ploughing, macro ridges, ploughing of grains, and delamination are the wear mechanism features of the neutral flame. SEM analysis revealed extended sideways carrying rough patches of macro linear groove in the direction of sliding for the oxidizing flame.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Technical/Processing Parameters | Values/Description |
---|---|
Laser power (kW) | 0.32 |
Scan Speed (m/s) | 0.90 |
Hatch distance (mm) | 0.08 |
Slice thickness (mm) | 0.03 |
Beam focus diameter (mm) | 0.08 |
Scanning strategy | 67° with checkerboard |
Building direction | Vertical |
Building substrate plate | 280.0 mm × 280.0 mm × 70.0 mm (L × W × H) |
Wear Testing Radius | Specimen | Mass before Wear Testing (g) | Mass after Wear Testing (g) | Mass Difference (g) | Percentage of Mass Loss (%) |
---|---|---|---|---|---|
Wear Testing at R = 24 mm | As-Built | 0.498 | 0.485 | 0.013 | 2.610 |
Carburizing | 0.470 | 0.453 | 0.017 | 3.617 | |
Neutral | 0.470 | 0.450 | 0.020 | 4.255 | |
Oxidizing | 0.474 | 0.457 | 0.017 | 3.586 | |
Wear Testing at R = 30 mm | As-Built | 0.485 | 0.473 | 0.012 | 2.474 |
Carburizing | 0.453 | 0.439 | 0.014 | 3.090 | |
Neutral | 0.453 | 0.436 | 0.017 | 3.752 | |
Oxidizing | 0.457 | 0.441 | 0.016 | 3.501 |
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Akhtar, M.; Muzamil, M.; Samiuddin, M.; Alsaleh, N.; Khan, R.; Khan, M.A.; Djuansjah, J.; Siddiqui, A.K.; Majeed, A. Post-Wear Surface Morphology Assessment of Selective Laser Melting (SLM) AlSi10Mg Specimens after Heat Exposure to Different Gas Flames. Coatings 2024, 14, 252. https://doi.org/10.3390/coatings14030252
Akhtar M, Muzamil M, Samiuddin M, Alsaleh N, Khan R, Khan MA, Djuansjah J, Siddiqui AK, Majeed A. Post-Wear Surface Morphology Assessment of Selective Laser Melting (SLM) AlSi10Mg Specimens after Heat Exposure to Different Gas Flames. Coatings. 2024; 14(3):252. https://doi.org/10.3390/coatings14030252
Chicago/Turabian StyleAkhtar, Maaz, Muhammad Muzamil, Muhammad Samiuddin, Naser Alsaleh, Rashid Khan, Mahad Ali Khan, Joy Djuansjah, Ali Khursheed Siddiqui, and Arfan Majeed. 2024. "Post-Wear Surface Morphology Assessment of Selective Laser Melting (SLM) AlSi10Mg Specimens after Heat Exposure to Different Gas Flames" Coatings 14, no. 3: 252. https://doi.org/10.3390/coatings14030252
APA StyleAkhtar, M., Muzamil, M., Samiuddin, M., Alsaleh, N., Khan, R., Khan, M. A., Djuansjah, J., Siddiqui, A. K., & Majeed, A. (2024). Post-Wear Surface Morphology Assessment of Selective Laser Melting (SLM) AlSi10Mg Specimens after Heat Exposure to Different Gas Flames. Coatings, 14(3), 252. https://doi.org/10.3390/coatings14030252