On the Features of Composite Coating, Based on Nickel Alloy and Aluminum–Iron Bronze, Processed by Direct Metal Deposition
Abstract
:1. Introduction
2. Materials and Methods
2.1. Laser Machine Used
2.2. Materials
2.3. Preparation of Samples
2.4. Measuring Equipment
3. Results and Discussion
3.1. The Microstructure of Composite Coating
- Area I—the central transition zone between the Ni alloy track and the two bronze tracks;
- Area II—transition zone between the bronze and Ni alloy tracks; and
- Area III—transition zone between the Ni alloy track and the substrate.
3.2. The Effect of Direct Metal Deposition (DMD) Parameters on the Micro-Hardness of the Composite Coating
3.3. The Microhardness Characteristics of the Coating Layer
3.4. Tribological Behavior
3.5. Discussion
4. Conclusions
- The microstructure of the composite layer, deposited on the steel substrate, was very uniform. In particular, the bronze track, deposited between the tracks of Ni alloy, had a dendritic structure, which suggests a high level of crystallization. The Ni based alloy was characterized by its globular structure with the eutectic ingredient of the Ni alloy. When the depositing speed of the nickel based alloy increased, the thickness of the transition zone reduced and the dendrites passed to the quasi-eutectic state.
- Microhardness increased significantly at the interface between the substrate and the metals deposited. The transition zone extended into the substrate body and its thickness did not exceed 0.3 mm. At a distance of 0.1 mm from the substrate, the microhardness of the nickel alloy track nearly became constant throughout the whole coating thickness and was, on average, HV100 = 550. In the case of the bronze track, microhardness at the interface was close in value to the Ni alloy microhardness, but already at a distance of 0.3 mm from the interface, microhardness decreased to HV100 = 450 and remained at this level throughout the whole coating thickness.
- The microhardness of the coating layer depends on the depositing parameters. Increasing the cladding speed of Ni alloy reduced the microhardness, regardless of the cladding pitch. The microhardness of bronze in the composite coating did not depend on the cladding speed. The greatest microhardness, at all cladding speeds, was observed at the S1/S2 = 2.4/1.2 mm pitches. The changes indicated are due to changes in the volume of the molten pond and the hardening rate of the composite layer.
- During the running-in time of the coating layer under dry friction conditions, the CoF was less than 0.20 while in periods of stable wear, the CoF constantly increased to a level of 0.4–0.45, after which a period of accelerated wear was observed. There was an inversely proportional dependence between the values of the CoF and the wear rate under dry friction conditions. Under boundary friction conditions, where loading was increased by 120 to 240 N, the wear rate increased 2.2-fold, irrespective of the depositing conditions. At higher loads, the adhesion of coating material on the grain boundaries decreased and was destroyed.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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12N-01 Alloy Composition, % | Fe–Al Bronze Composition, % | |||||||
---|---|---|---|---|---|---|---|---|
C | B | Si | Cr | Fe | Ni | Al | Fe | Cu |
0.3–0.6 | 1.7–2.5 | 1.2–3.2 | 8–14 | 1.2–1.3 | The rest | 8.5–10.5 | 4 | The rest |
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Feldshtein, E.E.; Devojno, O.; Kardapolava, M.; Lutsko, N.; Patalas-Maliszewska, J. On the Features of Composite Coating, Based on Nickel Alloy and Aluminum–Iron Bronze, Processed by Direct Metal Deposition. Materials 2021, 14, 957. https://doi.org/10.3390/ma14040957
Feldshtein EE, Devojno O, Kardapolava M, Lutsko N, Patalas-Maliszewska J. On the Features of Composite Coating, Based on Nickel Alloy and Aluminum–Iron Bronze, Processed by Direct Metal Deposition. Materials. 2021; 14(4):957. https://doi.org/10.3390/ma14040957
Chicago/Turabian StyleFeldshtein, Eugene E., Oleg Devojno, Marharyta Kardapolava, Nikolaj Lutsko, and Justyna Patalas-Maliszewska. 2021. "On the Features of Composite Coating, Based on Nickel Alloy and Aluminum–Iron Bronze, Processed by Direct Metal Deposition" Materials 14, no. 4: 957. https://doi.org/10.3390/ma14040957
APA StyleFeldshtein, E. E., Devojno, O., Kardapolava, M., Lutsko, N., & Patalas-Maliszewska, J. (2021). On the Features of Composite Coating, Based on Nickel Alloy and Aluminum–Iron Bronze, Processed by Direct Metal Deposition. Materials, 14(4), 957. https://doi.org/10.3390/ma14040957