Manufactural Investigations on Dissimilar Laser Cladding and Post-Clad Heat Treatment Processes of Heat-Resistant Ni Alloy on Cu Substrate
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Laser Cladding and Post-Clad Heat Treatments
2.3. Microstructure and Mechanical Properties
3. Results
3.1. Microstructure and Mechanical Properties of NiCrBSi Clads
3.2. Influence of Post-Clad Heat Treatment on the Microstructure and Mechanical Properties of Clads
3.2.1. Furnace Heat Treatment below the Melting Point of Cu
3.2.2. Laser Heat Treatment above the Melting Point of Cu
3.3. Optimal Dissimilar Coating Process for High-Durability Condinuous Casting Mold
4. Conclusions
- (1)
- Successful laser cladding between NiCrBSi alloy and Cu was achieved using a high-power diode laser, and a sound clad metal without cracks or pores was obtained, with a hardness of ~450 HV.
- (2)
- In the case of furnace post-cladding heat treatment, the hardness of the clad metal continuously decreased with increasing temperature to 142 HV (at 1223 K; 500 min), i.e., a 70% decrease compared to the as-clad sample. This was attributed to the dilution with the softer Cu substrate and the microstructural evolution during heat treatment. The solidification microstructure was almost homogenized during the heat treatment, and boride secondary phases formed and almost dissolved into the matrix phase.
- (3)
- For the laser surface heat treatment of the clad metal at 1323 K, changes to the top ~1.3 mm of the sample were observed, and the average surface hardness was 359 HV. Compared to the hardness of the as-clad specimen (453 HV), the laser heat treatment also resulted in a much smaller hardness loss than the furnace heat treatment. In contrast, the hardness of the as-sprayed coatings (730–750 HV) increased up to ~1200 HV, which was correlated with the microstructural features of the finely distributed secondary phases (carbides and borides) after laser fusing treatment.
- (4)
- In conclusion, considering the mechanical performance and microstructural features, minimization of Cu dilution is preferentially recommended for the laser cladding of NiCrBSi alloy on Cu substrate. Furthermore, when it is difficult to minimize the Cu dilution during the laser cladding, thermal spraying in conjunction with laser fusing treatment appears to be sufficiently applicable for high-durability continuous casting molds.
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
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Chun, E.-J. Manufactural Investigations on Dissimilar Laser Cladding and Post-Clad Heat Treatment Processes of Heat-Resistant Ni Alloy on Cu Substrate. Processes 2021, 9, 993. https://doi.org/10.3390/pr9060993
Chun E-J. Manufactural Investigations on Dissimilar Laser Cladding and Post-Clad Heat Treatment Processes of Heat-Resistant Ni Alloy on Cu Substrate. Processes. 2021; 9(6):993. https://doi.org/10.3390/pr9060993
Chicago/Turabian StyleChun, Eun-Joon. 2021. "Manufactural Investigations on Dissimilar Laser Cladding and Post-Clad Heat Treatment Processes of Heat-Resistant Ni Alloy on Cu Substrate" Processes 9, no. 6: 993. https://doi.org/10.3390/pr9060993
APA StyleChun, E. -J. (2021). Manufactural Investigations on Dissimilar Laser Cladding and Post-Clad Heat Treatment Processes of Heat-Resistant Ni Alloy on Cu Substrate. Processes, 9(6), 993. https://doi.org/10.3390/pr9060993