Study on the Properties of TiC Coating Deposited by Spark Discharge on the Surface of AlFeCoCrNiCu High-Entropy Alloy
Abstract
:1. Introduction
2. Materials and Experiments
2.1. Preparation of Matrix
2.2. Preparation of Coatings
2.3. Characterization of Coating Microstructure
2.4. Performance Testing of TiC Coating on AlFeCoCrNiCu High-Entropy Alloy Surface
3. Results and Discussion
3.1. Microhardness of TiC Coating on AlFeCoCrNiCu High-Entropy Alloy
3.2. Surface Morphology Analysis of TiC Coating on AlFeCoCrNiCu High-Entropy Alloy Surface
3.3. Cross-Sectional Morphology Analysis of TiC Coating on the Surface of AlFeCoCrNiCu High-Entropy Alloy
3.4. Corrosion Behavior of TiC Coating on the Surface of AlFeCoCrNiCu High-Entropy Alloy
3.4.1. Analysis of Potentiodynamic Polarization Test
3.4.2. Electrochemical Impedance Testing
4. Conclusions
- The microhardness of the TiC coating is higher than that of the substrate. The microhardness of sample 4 is 844.98 HV, which is 81% higher than that of the substrate. This indicates that a TiC coating can improve the microhardness of the substrate surface and enhance its mechanical properties. Moreover, with the increase in capacitance and output voltage, the oxidation of the TiC coating intensifies, and the oxidation product TiO2 increases, which will cause a decrease in the hardness of the TiC coating.
- By comparing the surface morphology of six different coatings, it was found that samples with smaller working capacitance had fewer surface defects on the coating. This is because the working capacitance is too large, which increases the thermal stress of the coating, leading to an increase in the brittleness of the TiC coating. During the deposition process, cracks and molten metal appear in the coating, increasing coating defects. Under the action of thermal stress cycling, cracks may also appear at the interface between the coating and the substrate.
- Energy spectrum line scanning analysis was conducted at the boundary between the coating and the substrate, and it was found that the change in the content of the Al element in the coating plays a crucial role in the bonding between the coating and the substrate. This is because the Al element has a larger atomic size compared with the other elements. During the solid solution process, the significant size effect promotes the various properties of the coating.
- Action potential tests were conducted on TiC coatings and high-entropy alloy substrates prepared under six different process parameters. The corrosion current density of the sample 4 coating was the smallest (9.475 × 10−7 ± 0.06 × 10−6). After conducting electrochemical impedance testing, it was found that the maximum RP value of the coating on sample 4 was 3688 Ω·com2, and the overall trend of the dynamic potential test results was the same.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Element | Al | Fe | Co | Cr | Ni | Cu |
---|---|---|---|---|---|---|
Content | 9.59 | 15.12 | 17.54 | 18.25 | 19.70 | 19.81 |
Sample | Voltage/V | Capacitance/μF |
---|---|---|
1 | 10 | 1000 |
2 | 10 | 2000 |
3 | 10 | 3000 |
4 | 20 | 1000 |
5 | 20 | 2000 |
6 | 20 | 3000 |
Ecorr (VSHE) | Icorr (A·cm−2) | |
---|---|---|
Substrate | −1.567 ± 0.06 | 7.911 × 10−6 ± 0.06 × 10−6 |
10 V, 1000 μF | −0.623 ± 0.06 | 1.087 × 10−6 ± 0.06 × 10−6 |
10 V, 2000 μF | −0.837 ± 0.06 | 4.417 × 10−6 ± 0.06 × 10−6 |
10 V, 3000 μF | −1.126 ± 0.06 | 6.338 × 10−6 ± 0.06 × 10−6 |
20 V, 1000 μF | −0.445 ± 0.06 | 9.475 × 10−7 ± 0.06 × 10−7 |
20 V, 2000 μF | −0.730 ± 0.06 | 1.239 × 10−6 ± 0.06 × 10−6 |
20 V, 3000 μF | −1.465 ± 0.06 | 6.901 × 10−6 ± 0.06 × 10−6 |
Rs/(Ω·com2) | RP/(Ω·com2) | CPE1-T | CPE1-P | |
---|---|---|---|---|
Substrate | 10.77 | 67.13 | 3.8405 × 10−4 | 0.73933 |
10 V, 1000 μF | 10.76 | 2626 | 9.2256 × 10−5 | 0.84314 |
10 V, 2000 μF | 13.05 | 318.7 | 4.4542 × 10−4 | 0.74324 |
10 V, 3000 μF | 9.22 | 253 | 5.7101 × 10−4 | 0.67879 |
20 V, 1000 μF | 13.02 | 3688 | 8.9813 × 10−5 | 0.85955 |
20 V, 2000 μF | 10.57 | 596.3 | 2.8713 × 10−4 | 0.77062 |
20 V, 3000 μF | 12.39 | 217.2 | 4.44667 × 10−4 | 0.73698 |
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Wang, Y.; Nie, C.; Wang, S.; Gong, P.; Zhang, M.; Hu, Z.; Li, B. Study on the Properties of TiC Coating Deposited by Spark Discharge on the Surface of AlFeCoCrNiCu High-Entropy Alloy. Materials 2024, 17, 4110. https://doi.org/10.3390/ma17164110
Wang Y, Nie C, Wang S, Gong P, Zhang M, Hu Z, Li B. Study on the Properties of TiC Coating Deposited by Spark Discharge on the Surface of AlFeCoCrNiCu High-Entropy Alloy. Materials. 2024; 17(16):4110. https://doi.org/10.3390/ma17164110
Chicago/Turabian StyleWang, Ying, Cheng Nie, Shengding Wang, Pan Gong, Mao Zhang, Zhigang Hu, and Bin Li. 2024. "Study on the Properties of TiC Coating Deposited by Spark Discharge on the Surface of AlFeCoCrNiCu High-Entropy Alloy" Materials 17, no. 16: 4110. https://doi.org/10.3390/ma17164110
APA StyleWang, Y., Nie, C., Wang, S., Gong, P., Zhang, M., Hu, Z., & Li, B. (2024). Study on the Properties of TiC Coating Deposited by Spark Discharge on the Surface of AlFeCoCrNiCu High-Entropy Alloy. Materials, 17(16), 4110. https://doi.org/10.3390/ma17164110