Microstructure and Surface Topography Study of Nanolayered TiAlN/CrN Hard Coating
Abstract
:1. Introduction
- In our previous works, we discussed, in more detail, the coating surface topography [6,7,8,9]. We have shown that the topography of a PVD coating surface originates from:A substrate surface topography formed during the substrate mechanical pretreatment (grinding, blasting and polishing) and during the substrate cleaning by ion etching prior to the coating deposition;
- Intrinsic coating features such as grain size, phase composition, texture, etc.;
- Growth defects (e.g., nodulus and pinholes) formed during the coating growth process.
2. Materials and Methods
3. Results
3.1. Microstructure Characterization and Periodicity Analysis
3.2. Interlayer Roughness
3.3. Surface Topography
3.4. Formation of Growth Defects
4. Conclusions
- The microstructure, topography and periodicity of the NL-TiAlN/CrN hard coating strongly depend on the rotation mode. The coatings prepared by one-fold rotation have a periodic structure and a pronounced columnar microstructure that extends from the substrate to the coating surface. On the other hand, coatings prepared by three-fold rotation have an aperiodic, less columnar (with much smaller average column diameters) and a fine-grained microstructure.
- A coherent growth of TiAlN and CrN layers inside the columnar grains was observed.
- The conformity and uniformity of multilayer coating were analyzed from SEM images of the FIB cross-sections. The curvature of individual layers in the multilayer coating reflects the growth front of the coating. Although the initial roughness at the interface between the first layer and the substrate was rather small, it accumulated during deposition and gradually increased towards the top of the coating.
- Shallow craters or protrusions formed at the sites of non-metallic inclusions in the steel substrates, depending on whether the net removal rate after polishing and ion etching was higher or lower compared to the matrix. Even if the net removal rate of both materials is similar, the non-metallic inclusions can affect the growth of the coating, as they are chemically and structurally different from the matrix. The influence of non-metallic inclusions on the microstructure and topography of the layer is also not negligible because they can cause a local loss of adhesion, pitting corrosion and other destructive effects.
- The largest increase in the coating roughness is due to the presence of nodular defects formed on seed particles that arrive on the substrate surface during its pretreatment or deposition. We showed that the majority of nodular defects start to grow at the substrate-coating interface, i.e., on particles that arrive on the substrate before the start of the deposition. We also demonstrated that the contours of the individual layers in the multilayered coating reveal the internal structure of the nodular defect. The irregular shapes of layer contours are the result of the complex geometry of the seed particles and the geometrical shadowing effect during the deposition.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Panjan, P.; Gselman, P.; Panjan, M.; Bončina, T.; Drnovšek, A.; Albu, M.; Čekada, M.; Zupanič, F. Microstructure and Surface Topography Study of Nanolayered TiAlN/CrN Hard Coating. Coatings 2022, 12, 1725. https://doi.org/10.3390/coatings12111725
Panjan P, Gselman P, Panjan M, Bončina T, Drnovšek A, Albu M, Čekada M, Zupanič F. Microstructure and Surface Topography Study of Nanolayered TiAlN/CrN Hard Coating. Coatings. 2022; 12(11):1725. https://doi.org/10.3390/coatings12111725
Chicago/Turabian StylePanjan, Peter, Peter Gselman, Matjaž Panjan, Tonica Bončina, Aljaž Drnovšek, Mihaela Albu, Miha Čekada, and Franc Zupanič. 2022. "Microstructure and Surface Topography Study of Nanolayered TiAlN/CrN Hard Coating" Coatings 12, no. 11: 1725. https://doi.org/10.3390/coatings12111725
APA StylePanjan, P., Gselman, P., Panjan, M., Bončina, T., Drnovšek, A., Albu, M., Čekada, M., & Zupanič, F. (2022). Microstructure and Surface Topography Study of Nanolayered TiAlN/CrN Hard Coating. Coatings, 12(11), 1725. https://doi.org/10.3390/coatings12111725