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Literature Review of Phase Transformations and Cavitation Erosion of Duplex Stainless Steels

DOI: 10.4236/msce.2023.1112002, PP. 10-21

Keywords: Duplex Stainless Steel, Phase Transformation, Cavitaion Erosion

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Abstract:

Phase transformation is one of the factors that would significantly influence the ability to resist cavitation erosion of stainless steels. Due to the specific properties of duplex stainless steel, the heat treatment would bring about significant phase transformations. In this paper, we have examined the previous studies on the phase transition of stainless steel, including the literature on the classification of stainless steel, spinodal decomposition, sigma phase transformation, and cavitation erosion of double stainless steel. Through these literature investigations, the destruction of cavitation erosion on duplex stainless steel can be clearly known, and the causes of failure of duplex stainless steel in seawater can be clarified, thus providing a theoretical basis for subsequent scientific research. And the review is about to help assess the possibility of using bulk heat treatment to improve the cavitation erosion (CE) behaviour of the duplex stainless steel 7MoPLUS.

References

[1]  Afzali, N., Jabour, G., Stranghöner, N. and Langenberg, P. (2023) A Comparative Study into the Fracture Toughness Properties of Duplex Stainless Steels. Journal of Constructional Steel Research, 212, Article ID: 108283.
https://doi.org/10.1016/j.jcsr.2023.108283
[2]  Tang, C., Tan, J. L. and Wong, C. H. (2018) A Numerical Investigation on the Physical Mechanisms of Single Track Defects in Selective Laser Melting. International Journal of Heat and Mass Transfer, 126, 957-968.
https://doi.org/10.1016/j.ijheatmasstransfer.2018.06.073
[3]  Difference between Stainless Steel and Mild Steel.
http://pearlitesteel.com/difference-between-stainless-steel-and-mild-steel/
[4]  Kovach, C.W. (1997) High Performance Stainless Steels. The Nickel Institute, Toronto.
[5]  Mameng, S.H., Backhouse, A., McCray, J. and Gedge, G. (2018) Experience of Duplex Stainless Steels as Structural Materials for Bridges. IOP Conference Series: Materials Science and Engineering, 419, Article ID: 012018.
https://doi.org/10.1088/1757-899X/419/1/012018
[6]  Huang, Q., Volkova, O., Bierman, H. and Mola, J. (2017) Tensile Elongation of Lean-Alloy Austenitic Stainless Steels: Transformation-Induced Plasticity versus Planar Glide. Materials Science and Technology, 33, 1224-1230.
https://doi.org/10.1080/02670836.2016.1277091
[7]  Katada, Y. and Taguchi, T. (2015) Nickel-Free High-Nitrogen Stainless Steel. In: Niinomi, M., Narushima, T. and Nakai, M., Eds., Advances in Metallic Biomaterials, Springer, Berlin, 125-156.
https://doi.org/10.1007/978-3-662-46836-4_6
[8]  Sankar Kumar, A., Jeeva, P.A. and Karthikeyan, S. (2023) Evaluation of Wear Resistance and Microstructural Properties of Laser Cladded Martensitic and Austenitic Stainless Steel. Materials Today: Proceedings.
https://doi.org/10.1016/j.matpr.2023.07.124
[9]  Why Doesn’t Stainless Steel Rust?
https://www.scientificamerican.com/article/why-doesnt-stainless-stee/
[10]  Corradi, M., Di Schino, A., Borri, A. and Rufini, R. (2018) A Review of the Use of Stainless Steel for Masonry Repair and Reinforcement. Construction and Building Materials, 181, 335-346.
https://doi.org/10.1016/j.conbuildmat.2018.06.034
[11]  Calderon-Uriszar-Aldaca, I., Briz, E., Larrinaga, P. and Garcia, H. (2018) Bonding Strength of Stainless Steel Rebars in Concretes Exposed to Marine Environments. Construction and Building Materials, 172, 125-133.
https://doi.org/10.1016/j.conbuildmat.2018.03.156
[12]  Kumar, A.S., Jeeva, P.A. and Karthikeyan, S. (2022) Characteristics of Cobalt Powders as Laser Cladded Materials for Austenitic and Martensitic Steels. Journal of Surface Investigation, 16, 775-782.
https://doi.org/10.1134/S1027451022050184
[13]  Yang, L., Zhao, M., Chan, T.M., Shang, F. and Xu, D. (2016) Flexural Buckling of Welded Austenitic and Duplex Stainless Steel I-Section Columns. Journal of Constructional Steel Research, 122, 339-353.
https://doi.org/10.1016/j.jcsr.2016.04.007
[14]  Shu, G., Jin, X., Zhang, Y., Gu, Y., Zheng, B. and Jiang, Q. (2019) Experimental and Numerical Study of Cold-Drawn Duplex Stainless Steel Square Tube Columns. Journal of Constructional Steel Research, 156, 155-166.
https://doi.org/10.1016/j.jcsr.2019.01.011
[15]  Alvarez-Armas, I. and Degallaix-Moreuil, S. (2013) Duplex Stainless Steels. Wiley, Hoboken.
https://doi.org/10.1002/9781118557990
[16]  Corrosion Special Topical Papers.
https://www.corrosionclinic.com/corrosion_resources/stainless_steels_why_how_p2.htm
[17]  Introduction to Stainless Steel.
https://sassda.co.za/about-stainless/introduction-to-stainless-steel/
[18]  Acuna, A., Riffel, K.C. and Ramirez, A. (2023) Sigma Phase Kinetics in DSS Filler Metals: A Comparison of Sigma Phase Formation in the As-Welded Microstructure of Super Duplex Stainless Steel and Hyper Duplex Stainless Steel. Materials Characterization, 207, Article ID: 113433.
https://doi.org/10.1016/j.matchar.2023.113433
[19]  Oh, S., Kim, D., Kim, K., Kim, D., Chung, W. and Shin, B. (2023) The Effect of Surface Roughness on Repassivation and Pitting Corrosion of Super Duplex Stainless Steel UNS S 32760. International Journal of Electrochemical Science, 18, Article ID: 100351.
https://doi.org/10.1016/j.ijoes.2023.100351
[20]  Chen, T.H. and Yang, J.R. (2001) Effects of Solution Treatment and Continuous Cooling on σ-Phase Precipitation in a 2205 Duplex Stainless Steel. Materials Science and Engineering A, 311, 28-41.
https://doi.org/10.1016/S0921-5093(01)00911-X
[21]  Zheng, J., Zhao, Y. and Chen, L. (2023) High-Temperature Precipitation Behavior of W-Containing 444-Type Ferritic Stainless Steel in a Simulated Cyclic Annealing Process. Journal of Materials Research and Technology, 26, 1712-1722.
https://doi.org/10.1016/j.jmrt.2023.07.189
[22]  Yang, Z., Liu, W., Liu, X., Jiang, Y. and Yun, D. (2023) Effects of Grain Boundaries and Temperature on Spinodal Decomposition in a Binary Fe-Cr Alloy: A Phase-Field Simulation. Annals of Nuclear Energy, 193, Article ID: 110030.
https://doi.org/10.1016/j.anucene.2023.110030
[23]  Ishiguro, Y., Tsukada, Y. and Koyama, T. (2020) Phase-Field Study of the Spinodal Decomposition Rate of β Phase in Oxygen-Added Ti-Nb Alloys. Computational Materials Science, 174, Article ID: 109471.
https://doi.org/10.1016/j.commatsci.2019.109471
[24]  Hosseini, V.A., Thuvander, M., Wessman, S. and Karlsson, L. (2018) Spinodal Decomposition in Functionally Graded Super Duplex Stainless Steel and Weld Metal. Metallurgical and Materials Transactions A, 49, 2803-2816.
https://doi.org/10.1007/s11661-018-4600-9
[25]  Ai, W.J., Kuan, H.C., Dong, J.J., Kwok, C.T. and Lo, K.H. (2017) Short-Term Spinodal Decomposition—Its Effects on Corrosion Behaviour of a Duplex Stainless Steel and Feasibility as a Strengthening Treatment. Materials and Corrosion, 68, 395-404.
https://doi.org/10.1002/maco.201609158
[26]  Badyka, R., Monnet, G., Saillet, S., Domain, C. and Pareige, C. (2019) Quantification of Hardening Contribution of G-Phase Precipitation and Spinodal Decomposition in Aged Duplex Stainless Steel: APT Analysis and Micro-Hardness Measurements. Journal of Nuclear Materials, 514, 266-275.
https://doi.org/10.1016/j.jnucmat.2018.12.002
[27]  Liu, G., Li, S.L., Zhang, H.L., Wang, X.T. and Wang, Y.L. (2018) Characterization of Impact Deformation Behavior of a Thermally Aged Duplex Stainless Steel by EBSD. Acta Metallurgica Sinica (English Letters), 31, 798-806.
https://doi.org/10.1007/s40195-018-0708-6
[28]  Liu, X., Lu, W. and Zhang, X. (2020) Reconstructing the Decomposed Ferrite Phase to Achieve Toughness Regeneration in a Duplex Stainless Steel. Acta Materialia, 183, 51-63.
https://doi.org/10.1016/j.actamat.2019.11.008
[29]  Xiao, Y., Tang, J., Wang, Y., Lin, B., Nie, Z., Li, Y., Normand, B. and Wang, H. (2020) Corrosion Behavior of 2205 Duplex Stainless Steel in NaCl Solutions Containing Sulfide Ions. Corrosion Science, 200, Article ID: 110240.
https://doi.org/10.1016/j.corsci.2022.110240
[30]  Hosseini, V.A., Karlsson, L., Engelberg, D. and Wessman, S. (2018) Time-Temperature-Precipitation and Property Diagrams for Super Duplex Stainless Steel Weld Metals. Welding in the World, 62, 517-533.
https://doi.org/10.1007/s40194-018-0548-z
[31]  Park, C.J., Ahn, M.K. and Kwon, H.S. (2006) Influences of Mo Substitution by W on the Precipitation Kinetics of Secondary Phases and the Associated Localized Corrosion and Embrittlement in 29% Cr Ferritic Stainless Steels. Materials Science and Engineering A, 418, 211-217.
https://doi.org/10.1016/j.msea.2005.11.053
[32]  Sonntag, R.E., Borgnakke, C. and Van Wylen, G.J. (2003) Fundamentals of Thermodynamics. Wiley, Hoboken.
[33]  Lappa, M. (2022) On the Propagation of Hydrothermal Waves in a Fluid Layer with Two-Way Coupled Dispersed Solid Particles. Fluids, 7, Article 215.
https://doi.org/10.3390/fluids7070215
[34]  
https://en.wikipedia.org/wiki/Cavitation#/media/File:Cavitating-prop.jpg
[35]  Ai, W.J., Lo, K.H. and Kwok, C.T. (2019) Cavitation Erosion of a Spinodally Decomposed Wrought Duplex Stainless Steel in a Benign Environment. Wear, 424-425, 111-121.
https://doi.org/10.1016/j.wear.2019.01.097
[36]  Cruz, J.R., Henke, S.L., Pukasiewicz, A.G.M. and d’Oliveira, A.S.C.M. (2019) The Effect of Boron on Cavitation Resistance of FeCrMnSiB Austenitic Stainless Steels. Wear, 436-437, Article ID: 203041.
https://doi.org/10.1016/j.wear.2019.203041
[37]  Cao, B.S., Wu, C.L., Wang, L., Zhang, S., Zhang, C.H. and Sun, X.Y. (2023) Effect of Residual Stress and Phase Constituents on Corrosion-Cavitation Erosion Behavior of 304 Stainless Steel by Iso-Material Manufacturing of Laser Surface Melting. Journal of Materials Research and Technology, 26, 6532-6551.
https://doi.org/10.1016/j.jmrt.2023.09.027
[38]  Fahim, J., Hadavi, S.M.M., Ghayour, H. and Hassanzadeh Tabrizi, S.A. (2019) Cavitation Erosion Behavior of Super-Hydrophobic Coatings on Al5083 Marine Aluminum Alloy. Wear, 424-425, 122-132.
https://doi.org/10.1016/j.wear.2019.02.017
[39]  Gottardi, G., Tocci, M., Montesano, L. and Pola, A. (2018) Cavitation Erosion Behaviour of an Innovative Aluminium Alloy for Hybrid Aluminium Forging. Wear, 394-395, 1-10.
https://doi.org/10.1016/j.wear.2017.10.009
[40]  Agarwal, R.K. and Tan, Y. (2019) Cavitation Erosion Behavior of Duplex Stainless Steel under High-Pressure Jet. Materials Science Forums, 950, 3-9.
https://doi.org/10.4028/www.scientific.net/MSF.950.3

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