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Research Article

Dry sliding wear behaviour of hot-rolled air-cooled medium manganese martensitic steel

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Pages 1137-1145 | Received 04 Jul 2022, Accepted 25 Dec 2022, Published online: 09 Jan 2023

References

  • Zhang P, Zhang FC, Yan ZG, et al. Wear property of low-temperature bainite in the surface layer of a carburized low carbon steel. Wear. 2011;271:697–704.
  • Li S, Yu H, Lu Y, et al. Effects of titanium content on the impact wear properties of high-strength low-alloy steels. Wear. 2021;474-475:203647.
  • Gramlich A, Schmiedl T, Schönborn S, et al. Development of air-hardening martensitic forging steels. Mater Sci Eng A. 2020;784:139321.
  • Schmiedl T, Gramlich ARM, Schönborn S, et al. Behavior of forging steels under cyclic loading – the benefit of air-hardening martensites. Steel Res Int. 2020;91:2000172.
  • Gramlich A, Emmrich R, Bleck W. Austenite reversion tempering-annealing of 4 wt.% manganese steels for automotive forging application. Metals. 2019;9:575.
  • Gramlich A, Middleton A, Schmidt R, et al. On the influence of vanadium on air-hardening medium manganese steels for sustainable forging products. Steel Res Int. 2021;92:2000592.
  • Mârtensson H. The effect of the transformation substructure on the mechanical properties of a low-carbon manganese martensitic steel. Metall Trans. 1971;2:3490–3492.
  • Mârtensson H. The properties and manufacture of a high-strength low carbon steel with high manganese content. Scand J Metall. 1972;1:319–326.
  • Mcpherson NA, Barker TN. The microstructure and properties of some low-carbon 4% manganese steels containing niobium and vanadium. Met Sci. 1976;10:140–147.
  • Morrison WB. Microalloy steels – the beginning. Mater Sci Tech. 2009;25:1068–1073.
  • Mackenzie IM. Metallurgical developments in carbon steel. Sp. Report 81. London: ISI; 1963. p. 30.
  • Yu S, Du LX, Hu J, et al. Effect of hot rolling temperature on the microstructure and mechanical properties of ultra-low carbon medium manganese steel. Mater Sci Eng A. 2018;731:149–155.
  • Saastamoinen A, Kaijalainen A, Porter D, et al. The effect of finish rolling temperature and tempering on the microstructure, mechanical properties and dislocation density of direct-quenched steel. Mater Charact. 2018;139:1–10.
  • Vanderschueren D, Kestens L, Van Houtte P, et al. Influence of transformation induced recrystallisation on hot rolling textures of low carbon steel sheet. Mater Sci Technol. 2013;6:1247–1250.
  • Hardox 450 product specification. Swedish Steel AB, https://www.ssab.cn.
  • Han R, Yang G, Xu D, et al. Effect of V on the precipitation behavior of Ti-Mo microalloyed high-strength steel. Materials. 2022;15:5965.
  • Zhou Y, Liu Y, Zhou X, et al. Precipitation and hot deformation behavior of austenitic heat-resistant steels: a review. J Mater Sci Technol. 2017;33:1448–1456.
  • Zhou Y, Liu Y, Zhou X, et al. Processing maps and microstructural evolution of the type 347H austenitic heat-resistant stainless steel. J Mater Res. 2015;30:2090–2100.
  • Wang Z, Wu X, Liu D, et al. Correlation between microstructure and fracture behavior in thick HARDOX 450 wear-resistant steel with TiN inclusions. Front Mater. 2021;8:691551.
  • Li C, Chen J, Tu X, et al. Effect of finish rolling temperature on microstructures and mechanical properties of 1000 MPa grade tempered steel plate for hydropower station. J Manuf Process. 2021;67:1–11.
  • Chen J, Li C, Ren J, et al. Strength and toughness of Fe-1.2Mn-0.3Cr-1.4Ni-0.4Mo-C tempered steel plate in three cooling processes. Mater Sci Eng A. 2019;754:178–189.
  • Bailey DJ, Flanagan WF. The relationship between dislocation density and flow stress in materials deforming by a peierls-nabarro mechanism. Philos Mag. 2006;15:43–49.
  • Ken AS, Weissman S. Electron microscopy and strength of crystals. Interscience Publishers:231.
  • Zhou JH, Shen YF, Hong YY, et al. Strengthening a fine-grained low activation martensitic steel by nanosized carbides. Mater Sci Eng A. 2020;769:138471.
  • Watanabe K, Kawasaki T, Tanaka H. Structural origin of enhanced slow dynamics near a wall in glass-forming systems. Nat Mater. 2011;10:512–520.
  • Kubota T. Recent progress on non-oriented silicon steel. Steel Res Int. 2005;76:464–470.
  • Kumar S, Bhattacharyya A, Mondal DK, et al. Dry sliding wear behaviour of medium carbon steel against an alumina disk. Wear. 2011;270:413–421.
  • Lai J, Zhang L, Gong W, et al. Two-body abrasion resistance of high carbon steel treated by quenching-partitioning-tempering process. Wear. 2019;440-441:203096.
  • Guo H, Zhao A, Zhi C, et al. Two-body abrasion wear mechanism of super bainitic steel. Mater Sci Technol. 2017;33:893–898.
  • Fildes JM, Meyers SJ, Kilaparti R, et al. Improved ball crater micro-abrasion test based on a ball on three disk configuration. Wear. 2012;274-275:414–422.
  • Huang L, Deng X, Wang Q, et al. Solidification and sliding wear behavior of low-alloy abrasion-resistant steel reinforced with TiC particles. Wear. 2020;458–459:203444.
  • Parthasarathi NL, Borah U, Albert SK. Correlation between coefficient of friction and surface roughness in dry sliding wear of AISI 316 L (N) stainless steel at elevated temperatures. Comput Model New Technol. 2013;17:51–63.
  • Zeng D, Lu L, Zhang N, et al. Effect of different strengthening methods on rolling/sliding wear of ferrite–pearlite steel. Wear. 2016;358-359:62–71.
  • Yan X, Hu J, Yu H, et al. Unraveling the significant role of retained austenite on the dry sliding wear behavior of medium manganese steel. Wear. 2021;476:203745.
  • Efremenko VG, Hesse O, Friedrich T, et al. Two-body abrasion resistance of high-carbon high-silicon steel: metastable austenite vs nanostructured bainite. Wear. 2019;418-419:24–35.
  • Achard J F. Contact and rubbing of flat surface. J Appl Phys. 1953;24:981–988.
  • Haiko O, Miettunen I, Porter D, et al. Effect of finish rolling and quench stop temperatures on impact-abrasive wear resistance of 0.35% carbon direct-quenched steel. Tribol: Finnish J Tribol. 2017;35:5–21.

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