Deposition Behavior and Microstructure of Cold-Sprayed Ni-Coated Al Particles
Abstract
:1. Introduction
2. Materials and Methods
2.1. Powder and Coating Preparation
2.2. Particle Velocity
2.3. Adhesion Strength and Microhardness
2.4. Microstructure Characterization
3. Results and Discussion
3.1. Microstructure of Ni-Coated Al Splats
3.2. Microstructure of Ni-Coated Al Coatings
3.3. XRD Patterns of Ni-Coated Al Coatings
3.4. Adhesion Strength and Microhardness of Ni-Coated Al Coatings
4. Conclusions
- The size distribution (D50) of the Ni-coated Al powders with an ellipsoidal or nearly spherical morphology was 84.4 μm. The phase compositions of the Ni-coated Al powder were Ni and Al phases.
- By analyzing the deposition behavior of cold-spraying Ni-coated Al particles, Ni-coated Al splat deposited onto the Al substrate exhibited the same morphology as the original feedstock powder. By increasing the accelerating gas temperature, the embedding depth of the splat deposited onto the Al substrate increased, and the plastic deformation of the Al substrate (e.g., gap, revers, and ripple) was more severe.
- Due to the higher microhardness of the Q235 steel substrate, there was no plastic deformation that occurred on the Q235 steel substrate surface. At an accelerating gas temperature of 200 ℃, the Ni-coated Al particle deposited on Q235 steel substrate exhibited an ellipsoidal or nearly spherical morphology with a peeling off and falling off phenomenon. As the accelerating gas temperature increased to 400 ℃, the morphology of the Ni-coated Al splat changed from an ellipsoidal or nearly spherical shape to a flattened shape, and warping phenomenon appeared at the edge of the splat.
- Due to the lower microhardness of the Al substrate, an intermixing phenomenon appeared between the coating and Al substrate. Compared with the accelerating gas temperature of 400 °C, there was an increased intermixing interface observed between the coating and Al substrate at an accelerating gas temperature of 200 °C owing to the lower deposition efficiency. The soft Al substrate was beneficial to form the first layer coating, and the ratio of splats adhered on the Al substrate surface at an accelerating gas temperature of 200 °C and 400 °C was 3.17% and 38.24%, respectively. The porosity of the coatings deposited onto the Al substrate at an accelerating gas temperature of 200 °C and 400 °C was 1.41% and 0.33%, respectively, and the thickness of the coatings was 64.7 μm and 140.6 μm, respectively.
- Due to the higher microhardness of the Q235 steel substrate, there was no impact of Ni-coated Al particles embedded into the substrate. Meanwhile, no intermixing phenomenon appeared between the coating and Q235 steel substrate, and it was difficult to form the first layer coating. Due to more rebounding particles, plastic deformation occurred on the Q235 steel substrate surface. The morphology of the deposited particles was closed to the original particles at an accelerating gas temperature of 200 °C. The plastic deformation of the deposited particles was more severe at an accelerating gas temperature of 400 °C, and the morphology of the impacted particles changed from an ellipsoidal or nearly spherical shape to a flattened shape. The porosity of the coatings deposited onto the Q235 steel substrate at an accelerating gas temperature of 200 °C and 400 °C was 1.63% and 0.68%, respectively, and the thickness of the coatings was 102.4 μm and 110.9 μm, respectively.
- The phase compositions of all of the coatings were Ni and Al phases, which were the same as for the original powders. According to FWHMs results of the Ni and Al diffraction peaks of Ni-coated Al powders and coatings, a certain plastic deformation occurred on the Ni-coated Al particles during cold spraying. The plastic deformation of the Ni-coated Al particles was more serious with an increase in accelerating gas temperature, especially the particles deposited onto the Al substrate.
- The mean adhesion strength of the Ni-coated Al coatings deposited onto the Al and Q235 steel substrates at an accelerating gas temperature of 200 °C and 400 °C was 41.6 ± 3.1 and 34.8 ± 1.6 MPa and 21.3 ± 1.5 and 31.5 ± 1.3 MPa, respectively.
- The microhardness of the Ni-coated Al coatings increased with the increase in the accelerating gas temperature. The mean microhardness of the Ni-coated Al coatings deposited onto the Al and Q235 steel substrates at an accelerating gas temperature of 200 °C and 400 °C was 151.6 ± 8.1 and 228.2 ± 10.5 HV0.3 and 136.7 ± 7.8 and 191.6 ± 9.3 HV0.3, respectively. Due to the higher Ni content in the coatings deposited onto the Al substrate, the microhardness of the coatings deposited onto the Al substrate was higher than that of the coatings deposited onto the Q235 steel substrate.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter | Particle | Coatings |
---|---|---|
Accelerating gas pressure/MPa | 2.0 | 2.0 |
Powder-feeding gas pressure/MPa | 2.2 | 2.2 |
Gas temperature in gun chamber/°C | 200 ± 10, 400 ± 10 | 200 ± 30, 400 ± 30 |
Spray distance/mm | 20 | 20 |
Transverse speed of gun/mm∙s−1 | 400 | 100 |
Substrate | Q235 steel Al | Q235 steel |
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Chen, X.; Zhou, H.; Pi, Z.; Huang, Z. Deposition Behavior and Microstructure of Cold-Sprayed Ni-Coated Al Particles. Coatings 2022, 12, 544. https://doi.org/10.3390/coatings12040544
Chen X, Zhou H, Pi Z, Huang Z. Deposition Behavior and Microstructure of Cold-Sprayed Ni-Coated Al Particles. Coatings. 2022; 12(4):544. https://doi.org/10.3390/coatings12040544
Chicago/Turabian StyleChen, Xiao, Hongkai Zhou, Zhimin Pi, and Zhiwu Huang. 2022. "Deposition Behavior and Microstructure of Cold-Sprayed Ni-Coated Al Particles" Coatings 12, no. 4: 544. https://doi.org/10.3390/coatings12040544
APA StyleChen, X., Zhou, H., Pi, Z., & Huang, Z. (2022). Deposition Behavior and Microstructure of Cold-Sprayed Ni-Coated Al Particles. Coatings, 12(4), 544. https://doi.org/10.3390/coatings12040544