Effect of Deep Cryogenic Treatment on Corrosion Properties of Various High-Speed Steels
Abstract
:1. Introduction
2. Materials and Methods
2.1. Selection of Materials, Preparation of Samples, and Heat Treatment Procedures
2.2. Microscopy and Hardness Measurements
2.3. Electrochemical Methods
2.3.1. Testing of Aqueous Solutions for the Electrochemical Evaluation of High-Speed Steels
2.3.2. Electrochemical Evaluation of High-Speed Steels
3. Results
3.1. Microstructure and Hardness of Samples
3.2. Corrosion Properties
4. Discussion
5. Conclusions
- (1)
- Microstructural investigation showed that deep cryogenic treatment increases the number and dispersion of carbides, especially in the case of steel grade B-AISI M3:2 (EN 1.3395), and when using heat treatment conditions resulting in lower hardness values (high austenitization/low tempering temperatures). However, for grades A-AISI M2 (EN 1.3343) and C-AISI M35 (EN 1.3243), reduced carbide clusters were observed when they were subjected to deep cryogenic treatment.
- (2)
- Hardness remained unchanged if deep cryogenic treatment was used in combination with high austenitization/low tempering heat treatment protocols. There was a considerable increase in hardness, however, when heat treatment protocols utilized lower austenitization and higher tempering temperatures.
- (3)
- Electrochemical measurements were conducted after careful consideration of four different corrosion mediums. It was shown that Na-tetraborate buffer at pH 10 enables differentiation between the corrosion resistance of high-speed steels with a relatively small difference in corrosion resistance caused by microstructural changes due to variations in heat treatment protocols. Such corrosion studies have not been available and used before. The present corrosion evaluation of the effect of deep cryogenic treatment is unique and reported for the first time, according to the authors’ best knowledge.
- (4)
- There was no improvement in the polarization resistances of grade A high-speed steels after deep cryogenic treatment, while grade C even showed some deterioration. Grade B steel, however, showed increased polarization resistances and thus higher corrosion resistivity after deep cryogenic treatment, which can be related to an increased number and more homogeneous distribution of precipitated carbides within the grains. Precipitates in grade A and C steels, on the other hand, are mainly distributed along the primary austenite grain boundaries, especially in grade C steel, which has a more irregular shape.
- (5)
- The classically produced high-speed steel (grades A and C) did not respond favorably to deep cryogenic treatment, whereas the powder metallurgy produced high-speed steel (grade B) with a very fine microstructure showed promising results after deep cryogenic treatment. In the case of PM grade B high-speed steel, the deep cryogenic treatment had the best combined effect on both corrosion resistance and mechanical properties when the steel was hardened to low hardness values (sample B4). In this case, the polarization resistance is 116% higher, while the hardness is improved by 13.6% compared to the equivalent sample conventionally heat-treated counterpart.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
A&Q | Austenitization and quenching |
M2 | AISI label for high speed steel EN 1.3343 |
d | Density |
DCT | Deep cryogenic treatment |
E | Potential |
Ecorr | Corrosion potential |
EIS | Electrochemical impedance spectroscopy |
ESR | Electro-slag remelting |
HRC | Hardness Rockwell C |
HSS | High speed steel |
HV | Vickers Hardness |
ICP-OES | Inductively coupled plasma-optical emission spectrometry |
j | Current density |
jcorr | Corrosion current density |
LPR | Linear polarization |
M3:2 | AISI label for high speed steel EN 1.3243 |
M35 | AISI label for high speed steel EN 1.3395 |
n | Number of exchanged electrons |
OCP | Open circuit potential measurement |
Ra | Surface Roughness (µm) |
Rp | Polarization resistance |
SCE | Saturated calomel electrode |
SEM | Scanning electron microscope |
T | Tempering |
TA | Austenitization temperature |
tA | Austenitization period |
TDCT | Deep cryogenic treatment temperature |
TT | Tempering temperature |
tT | Tempering period |
βA | Tafel anodic coefficient |
βC | Tafel cathodic coefficient |
νcorr | Corrosion rate |
ω | Atomic mass |
Appendix A
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Element\Steel Grade | M2 */1.3343 **/HS6-5-2 *** A | M3:2/1.3395/HS6-5-3 B | M35/1.3243/HS6-5-2-5 C |
---|---|---|---|
C | 0.9 | 1.29 | 0.9 |
Mn | 0.28 | 0.31 | 0.34 |
S | 0.002 | 0.006 | 0.004 |
Cr | 4 | 3.9 | 4.1 |
Mo | 4.7 | 4.8 | 5.2 |
W | 6.0 | 5.9 | 6.2 |
V | 1.7 | 3.00 | 2.0 |
Co | – | 0.69 | 4.5 |
Sample | Ecorr (V) | Rp (kΩ·cm2) | jcorr (µA/cm2) | νcorr (µm/year) |
---|---|---|---|---|
A1 | −0.310 | 193 | 0.135 | 1.56 |
A2 | −0.313 | 181 | 0.144 | 1.67 |
A3 | −0.281 | 289 | 0.0901 | 1.05 |
A4 | −0.293 | 287 | 0.0907 | 1.05 |
B1 | −0.280 | 259 | 0.101 | 1.17 |
B2 | −0.293 | 338 | 0.0772 | 0.894 |
B3 | −0.315 | 188 | 0.139 | 1.61 |
B4 | −0.265 | 407 | 0.0639 | 0.742 |
C1 | −0.302 | 256 | 0.102 | 1.18 |
C2 | −0.317 | 162 | 0.161 | 1.86 |
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Voglar, J.; Novak, Ž.; Jovičević-Klug, P.; Podgornik, B.; Kosec, T. Effect of Deep Cryogenic Treatment on Corrosion Properties of Various High-Speed Steels. Metals 2021, 11, 14. https://doi.org/10.3390/met11010014
Voglar J, Novak Ž, Jovičević-Klug P, Podgornik B, Kosec T. Effect of Deep Cryogenic Treatment on Corrosion Properties of Various High-Speed Steels. Metals. 2021; 11(1):14. https://doi.org/10.3390/met11010014
Chicago/Turabian StyleVoglar, Jure, Živa Novak, Patricia Jovičević-Klug, Bojan Podgornik, and Tadeja Kosec. 2021. "Effect of Deep Cryogenic Treatment on Corrosion Properties of Various High-Speed Steels" Metals 11, no. 1: 14. https://doi.org/10.3390/met11010014
APA StyleVoglar, J., Novak, Ž., Jovičević-Klug, P., Podgornik, B., & Kosec, T. (2021). Effect of Deep Cryogenic Treatment on Corrosion Properties of Various High-Speed Steels. Metals, 11(1), 14. https://doi.org/10.3390/met11010014