Ethanolic Media Effect on the Susceptibility to Stress Corrosion Cracking in an X-70 Microalloyed Steel with Different Aging Treatments
Abstract
:1. Introduction
2. Materials and Methods
2.1. Chemical Composition
2.2. Microstructural Characterization
- The steel was sanded progressively with 80, 180, 280, 400, 600, 800 and 1000 grit sandpaper.
- Subsequently, it was polished with 0.5 µm alumina and water, until obtaining a surface with a mirror finish.
- Finally, it ended with an attack on the prepared surface, with 3% Nital, for 15 s.
2.3. Tensile Tests
2.4. SSRT
2.5. Fractographic Analysis
2.6. X-ray Fluorescence Spectrometer Analysis
3. Results
3.1. Microstructural Characterization
3.2. Tensile Tests
3.3. Slow Strain Rate Test
3.4. X-ray Fluorescence Spectrometer Analysis
4. Discussion
5. Conclusions
- The aging treatments increased the UTS in both treatments due to precipitation of microalloying elements.
- The heat treatment increased the ductility in all conditions attributed to the change in the morphology of the ferritic grain and a stress relief in the matrix.
- For this particular steel in these media no presence of SCC was observed.
- The values of %RA were in a range of 79.21–89.2.
- The oxide layer was found to be primarily Fe2O3.
- Fe2O3 retards the anodic dissolution and does not allow pitting.
- The X-70 microalloyed steel studied is an excellent candidate for its use as a pipe manufacturing material for use in the transport and storage of bio-ethanol.
- To increase the understanding the SCC immunity of this microalloyed steel, further research is required, including an in-depth electrochemical analysis, as well as a more exhaustive analysis of the resulting oxide.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Corrosive Media | Composition |
---|---|
Bio-ethanol | Onli Bio-ethanol |
E-50 | 50% Bio-ethanol–50% Gasoline |
Modified bio-ethanol | Bio-ethanol with 1% H2O 10 mg/L NaCl |
Modified bio-ethanol | Bio-ethanol with 3% H2O 10 mg/L NaCl |
Modified bio-ethanol | Bio-ethanol with 5% H2O 10 mg/L NaCl |
Modified bio-ethanol | 5% H2O 32 mg/L NaCl |
C | Si | Mn | Cr | Mo | Ni | Cu | Nb | Ti | Al |
---|---|---|---|---|---|---|---|---|---|
0.039 | 0.011 | 1.47 | 0.024 | 0.035 | 0.143 | 0.276 | 0.086 | 0.011 | 0.083 |
Dimensions | |
---|---|
Width | 6 mm |
Thickness | 6 mm |
Radius of fillet | 1.5 mm |
Overall length | 100 mm |
Length of reduced section | 32 mm |
Length of grip section | 30 mm |
Width of grip section | 10 mm |
Dimensions | |
---|---|
Diameter of reduced section | 3.5 mm |
Radius of fillet | 1.5 mm |
Overall length | 85 mm |
Length of reduced section | 22.5 mm |
Length of grip section | 30 mm |
Diameter of grip section | 5 mm |
Steel Condition | Acicular Ferrite Fraction (%) | Upper Bainite Fraction (%) |
---|---|---|
As-received | 59 | 41 |
30 min aged | 64 | 36 |
1 h aged | 65 | 35 |
σy MPa | UTS MPa | σs MPa | ε (%) | |
---|---|---|---|---|
As received | 541 | 573.3 | 257.6 | 16.1 |
30 min. | 543 | 595.833 | 215.972 | 21.43 |
1 h | 600.1 | 654.52 | 247.034 | 22.16 |
Ai (mm) | Af (mm) | %RA | |
---|---|---|---|
As received in air | 9.62 | 1.25 | 87.01 |
As received bio-ethanol | 9.62 | 1.78 | 81.50 |
As received E-50 | 9.62 | 1.25 | 87.01 |
30 min bio-ethanol | 9.62 | 1.56 | 83.78 |
30 min E-50 | 9.62 | 1.6 | 83.37 |
1 h bio-ethanol | 9.62 | 1.6 | 83.37 |
1 h E-50 | 9.62 | 2 | 79.21 |
As received 1% H2O 10NaCl | 9.62 | 1.25 | 87.01 |
As received 3% H2O 10NaCl | 9.62 | 1.039 | 89.2 |
As received 5% H2O 10NaCl | 9.62 | 1.56 | 83.78 |
As received 5% H2O 32NaCl | 9.62 | 1.31 | 86.38 |
1% H2O 10 mg/L NaCl | 1% H2O 32 mg/L NaCl | 3% H2O 10 mg/L NaCl | 3% H2O 32 mg/L NaCl | 5% H2O 10 mg/L NaCl | 5% H2O 32 mg/L NaCl | |
---|---|---|---|---|---|---|
Formula | Concentration | |||||
Fe2O3 | 86.43% | 89.39% | 93.06% | 79.33% | 80.38% | 85.35% |
Na2O | 4.83% | 3.80% | 1.49% | 9.01% | 7.55% | 3.21% |
Cl | 4.72% | 3.47% | 1.72% | 6.30% | 6.13% | 5.99% |
P2O5 | 1.29% | 0% | 1.25% | 1.87% | 1.79% | 1.96% |
MnO | 1.18% | 1.26% | 1.33% | 1.22% | 1.31% | 1.32% |
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del Pozo, A.; Torres, A.; Villalobos, J.C.; Villanueva, H.; Fragiel, A.; Gonzalez Rodriguez, J.G.; Serna Barquera, S.A. Ethanolic Media Effect on the Susceptibility to Stress Corrosion Cracking in an X-70 Microalloyed Steel with Different Aging Treatments. Energies 2020, 13, 3277. https://doi.org/10.3390/en13123277
del Pozo A, Torres A, Villalobos JC, Villanueva H, Fragiel A, Gonzalez Rodriguez JG, Serna Barquera SA. Ethanolic Media Effect on the Susceptibility to Stress Corrosion Cracking in an X-70 Microalloyed Steel with Different Aging Treatments. Energies. 2020; 13(12):3277. https://doi.org/10.3390/en13123277
Chicago/Turabian Styledel Pozo, Adrian, Alvaro Torres, Julio César Villalobos, Heriberto Villanueva, Amilkar Fragiel, Jose Gonzalo Gonzalez Rodriguez, and Sergio Alonso Serna Barquera. 2020. "Ethanolic Media Effect on the Susceptibility to Stress Corrosion Cracking in an X-70 Microalloyed Steel with Different Aging Treatments" Energies 13, no. 12: 3277. https://doi.org/10.3390/en13123277
APA Styledel Pozo, A., Torres, A., Villalobos, J. C., Villanueva, H., Fragiel, A., Gonzalez Rodriguez, J. G., & Serna Barquera, S. A. (2020). Ethanolic Media Effect on the Susceptibility to Stress Corrosion Cracking in an X-70 Microalloyed Steel with Different Aging Treatments. Energies, 13(12), 3277. https://doi.org/10.3390/en13123277