Study on Wear Resistance and Corrosion Resistance of HVOF Surface Coating Refabricate for Hydraulic Support Column
Abstract
:1. Introduction
2. Experimental
2.1. Experimental Materials and Preparation
2.2. Characterization Methods
3. Results and Discussion
3.1. Microstructure and Hardness
3.2. Neutral Salt Spray Test
3.3. Wear Test
4. Conclusions
- There is a microcrack in the plating. The thickness of the plating is 26–28 μm, and the microhardness is 778.6 ± 25.4 Hv300. The thickness of the HVOF coating is 420–450 μm, and the coating structure is uniformly compact without an obvious crack or pore in the internal part. The bonding interface between the coating and basal body is closely combined and embedded with each other, and the binding method is mechanical occlusion. The microhardness of HVOF coatings ranked from high to low is WC10Co4Cr coating, Ni60 coating, and 316L coating; the values are 1163.6 ± 12.4 Hv300, 817.5 ± 18.3 Hv300, and 476.4 ± 29.7 Hv300, respectively.
- In the neutral salt spray test, the hard chrome plating would rust at 144 h, while the WC10Co4Cr coating would show rustiness at 120 h. The Ni60 coating and 316L coating have better corrosion resistance since they exhibit rustiness at 720 h during the test. The corrosion resistance of Ni60 coating and 316L coating is nearly five times that of hard chrome plating.
- The hard chrome plating has a better wear resistance performance, comparable to that of the Ni60 coating. The wear resistance of the 316L coating is much weaker, while the wear resistance of WC10Co4Cr coating is more than four times that of hard chrome plating.
- Under the harsh corrosive wear environment, the refabricating HVOF Ni60 coating is a more suitable replacement for the hydraulic support column coating than the hard chrome plating.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Powder Name | Element | Powder Specification | ||||
---|---|---|---|---|---|---|
Fe | Cr | Co | W | Ni | ||
Ni60 | 18.96 | 15.19 | – | – | 58.86 | −53 + 25 μm |
WC10Co4Cr | – | 3.81 | 9.88 | 82.25 | – | −45 + 15 μm |
316L | 64.99 | 20.53 | – | – | 10.06 | −53 + 25 μm |
Parameter | Value |
---|---|
Kerosene flow rate/(L·h−1) | 32 |
Oxygen flow rate/(L·min−1) | 800 |
Spray distance/mm | 350 |
Nozzle length/mm | 150 |
Feeding speed/(g·min−1) | 70 |
Spray gun moving speed/(mm·s−1) | 500 |
Scan the steps/mm | 5 |
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Wu, M.; Pan, L.; Duan, H.; Wan, C.; Yang, T.; Gao, M.; Yu, S. Study on Wear Resistance and Corrosion Resistance of HVOF Surface Coating Refabricate for Hydraulic Support Column. Coatings 2021, 11, 1457. https://doi.org/10.3390/coatings11121457
Wu M, Pan L, Duan H, Wan C, Yang T, Gao M, Yu S. Study on Wear Resistance and Corrosion Resistance of HVOF Surface Coating Refabricate for Hydraulic Support Column. Coatings. 2021; 11(12):1457. https://doi.org/10.3390/coatings11121457
Chicago/Turabian StyleWu, Mian, Lin Pan, Haitao Duan, Changxin Wan, Tian Yang, Mingchuan Gao, and Siliang Yu. 2021. "Study on Wear Resistance and Corrosion Resistance of HVOF Surface Coating Refabricate for Hydraulic Support Column" Coatings 11, no. 12: 1457. https://doi.org/10.3390/coatings11121457
APA StyleWu, M., Pan, L., Duan, H., Wan, C., Yang, T., Gao, M., & Yu, S. (2021). Study on Wear Resistance and Corrosion Resistance of HVOF Surface Coating Refabricate for Hydraulic Support Column. Coatings, 11(12), 1457. https://doi.org/10.3390/coatings11121457