The Study on Corrosion Resistance of Ti-6Al-4V ELI Alloy with Varying Surface Roughness in Hydrofluoric Acid Solution
Abstract
:1. Introduction
2. Materials and Methods
2.1. Corrosion Experiment
2.2. Characterization
3. Results and Discussion
3.1. Weight Loss of Ti-6Al-4V ELI Alloy Subjected to Hydrofluoric Acid Corrosion
3.2. Surface Roughness of Ti-6Al-4V ELI Alloy before and after Corrosion
3.3. Microstructure of Ti-6Al-4V ELI Alloy before and after Corrosion
3.4. Recession Behavior of Mechanical Properties after HF Solution Corrosion
4. Conclusions
- The weight loss and weight loss percentage of the Ti-6Al-4V ELI alloy increased with longer corrosion times, while the weight loss rate decreased. Compared with the weight loss and weight loss percentage, the influence of the surface roughness on the weight loss rate was greater. The weight loss, weight loss percentage, and weight loss rate varied significantly with corrosion progression, while their sensitivity to the influence of surface roughness was limited.
- HF solution corrosion imposed a limitation on the surface roughness at approximately 0.2 μm. Furthermore, it not only affected the surface roughness but also induced alterations in the surface morphology, transitioning from the strip groove pattern to a columnar peak and valley morphology instead.
- The microstructure of the specimen surface exhibited two distinct phases: the black regions and white phases after corrosion. We believed that the HF solution reacted with the Ti-6Al-4V ELI alloy, leading to the formation of TiF3 phases. The accumulation of TiF3 phases and the depletion of the Ti-6Al-4V ELI matrix collaboratively altered the surface roughness. The continuous corrosion occurring in hydrofluoric acid solution was mainly caused by the titanium alloy’s inability to prevent fluoride ions from coming into contact with it.
- As the corrosion time increased, the surface of the Ti-6Al-4V ELI alloy was continuously consumed by hydrofluoric acid, leading to a gradual reduction in the bearing area. Hence, the bearing capacity of the Ti-6Al-4V ELI alloy specimen deteriorated over time.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Element | Ti | Al | V | Fe | C | N | O | Other |
---|---|---|---|---|---|---|---|---|
wt.% | Bal. | 6.15 | 4.28 | 0.20 | 0.009 | 0.010 | 0.112 | <0.30 |
Number | Surface Label | Surface State | Etching Time/min |
---|---|---|---|
1 | R0 | Raw machined surface | 0 |
2 | R0 | Raw machined surface | 5 |
3 | R0 | Raw machined surface | 30 |
4 | R0 | Raw machined surface | 60 |
5 | R0 | Raw machined surface | 90 |
6 | R1 | 400# ground | 0 |
7 | R1 | 400# ground | 5 |
8 | R1 | 400# ground | 30 |
9 | R1 | 400# ground | 60 |
10 | R1 | 400# ground | 90 |
11 | R2 | 240# ground | 0 |
12 | R2 | 240# ground | 5 |
13 | R2 | 240# ground | 30 |
14 | R2 | 240# ground | 60 |
15 | R2 | 240# ground | 90 |
Time | R0 | R1 | R2 | ||||
---|---|---|---|---|---|---|---|
Ave. | Std. | Ave. | Std. | Ave. | Std. | ||
W | 5 | 0.00517 | 0.00010 | 0.00529 | 0.00010 | 0.00532 | 0.00005 |
30 | 0.02722 | 0.00050 | 0.02749 | 0.00055 | 0.02754 | 0.00016 | |
60 | 0.05192 | 0.00145 | 0.05061 | 0.00079 | 0.04990 | 0.00087 | |
90 | 0.07363 | 0.00045 | 0.07198 | 0.00136 | 0.07161 | 0.00106 | |
P | 5 | 3.11366 | 0.06365 | 3.33350 | 0.03117 | 3.25631 | 0.04789 |
30 | 16.42258 | 0.29857 | 16.69526 | 0.35188 | 16.77791 | 0.07577 | |
60 | 31.30024 | 0.83020 | 30.76174 | 0.51683 | 30.47066 | 0.41385 | |
90 | 44.35515 | 0.20741 | 43.59825 | 0.76163 | 43.58085 | 0.67050 | |
C | 5 | 0.001030 | 0.000021 | 0.001060 | 0.000020 | 0.001060 | 0.000010 |
30 | 0.000907 | 0.000017 | 0.000916 | 0.000018 | 0.000918 | 0.000005 | |
60 | 0.000865 | 0.000024 | 0.000844 | 0.000013 | 0.000832 | 0.000015 | |
90 | 0.000818 | 0.000005 | 0.000800 | 0.000015 | 0.000796 | 0.000012 |
Surface Label | Initial State | Final State | Variation | |
---|---|---|---|---|
Sa | R0 | 0.209 | 0.490 | 0.281 |
R1 | 0.582 | 0.307 | −0.275 | |
R2 | 0.728 | 0.262 | −0.466 | |
Sq | R0 | 0.269 | 0.641 | 0.372 |
R1 | 0.764 | 0.409 | −0.355 | |
R2 | 0.933 | 0.338 | −0.595 |
Time | D | S | Fmax | σc |
---|---|---|---|---|
0 | 6.233 | 30.50 | 60.74 | 1993.61 |
5 | 6.207 | 30.24 | 57.80 | 1909.26 |
30 | 6.080 | 29.02 | 56.51 | 1976.48 |
60 | 5.903 | 27.35 | 51.30 | 1930.71 |
90 | 5.753 | 25.98 | 50.21 | 1934.46 |
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Wang, H.; Cheng, Q.; Chang, Z.; Wang, K.; Gao, X.; Fan, X. The Study on Corrosion Resistance of Ti-6Al-4V ELI Alloy with Varying Surface Roughness in Hydrofluoric Acid Solution. Metals 2024, 14, 364. https://doi.org/10.3390/met14030364
Wang H, Cheng Q, Chang Z, Wang K, Gao X, Fan X. The Study on Corrosion Resistance of Ti-6Al-4V ELI Alloy with Varying Surface Roughness in Hydrofluoric Acid Solution. Metals. 2024; 14(3):364. https://doi.org/10.3390/met14030364
Chicago/Turabian StyleWang, Han, Quanshi Cheng, Zhuo Chang, Kedi Wang, Xuemin Gao, and Xueling Fan. 2024. "The Study on Corrosion Resistance of Ti-6Al-4V ELI Alloy with Varying Surface Roughness in Hydrofluoric Acid Solution" Metals 14, no. 3: 364. https://doi.org/10.3390/met14030364