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Published in: Metal Science and Heat Treatment 3-4/2017

27-07-2017 | STRUCTURAL STEELS

Refinement of the Structure of Microalloyed Steels Under Plastic Deformation Near the Temperatures of Polymorphic Transformation

Authors: M. A. Matveev, N. G. Kolbasnikov, A. A. Kononov

Published in: Metal Science and Heat Treatment | Issue 3-4/2017

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Abstract

The effects of plastic deformation near the temperatures of the F → A phase transformation and of deformation-induced ferritic transformation (DIFT) on the structure and properties of microalloyed ferritic-pearlitic steels are studied. It is shown that the refinement of the structure of the steels due to the F → Atransformation during heating and due to the DIFT under plastic deformation and subsequent cooling raises the mechanical properties of the metal. Modes of hot rolling are suggested for structural ferritic-pearlitic steel 17G1S-U in order to form an ultrafine-grained structure with elevated mechanical properties.

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Literature
1.
go back to reference A. I. Rudskoy and G. E. Kodzhaspirov, Ultrafine-grained Metallic Materials [in Russian], Izd. Politekhnich. Univ., St. Petersburg (2015), 360 p. A. I. Rudskoy and G. E. Kodzhaspirov, Ultrafine-grained Metallic Materials [in Russian], Izd. Politekhnich. Univ., St. Petersburg (2015), 360 p.
2.
go back to reference A. I. Rudskoy, Nanotechnologies in Metallurgy [in Russian], Nauka, St. Petersburg (2007), 185 p. A. I. Rudskoy, Nanotechnologies in Metallurgy [in Russian], Nauka, St. Petersburg (2007), 185 p.
3.
go back to reference M. L. Bernshtein and A. G. Rakhshtadt (eds.), Metal Science and Heat Treatment of Steel, Vol. 1 [in Russian], Metallurgiya, Moscow (1983), 352 p. M. L. Bernshtein and A. G. Rakhshtadt (eds.), Metal Science and Heat Treatment of Steel, Vol. 1 [in Russian], Metallurgiya, Moscow (1983), 352 p.
4.
go back to reference C. Wegst and M. Wegst, Key to Steel [Russian translation], Professiya, St. Petersburg (2006), 754 p. C. Wegst and M. Wegst, Key to Steel [Russian translation], Professiya, St. Petersburg (2006), 754 p.
5.
go back to reference M. L. Bernshtein, V. A. Zaimovskii, and L. M. Kaputkina, Thermomechanical Treatment of Steel [in Russian], Metallurgiya, Moscow (1983), 480 p. M. L. Bernshtein, V. A. Zaimovskii, and L. M. Kaputkina, Thermomechanical Treatment of Steel [in Russian], Metallurgiya, Moscow (1983), 480 p.
6.
go back to reference Yu. V. Kaletina, Phase and Structural Transformations in Alloy Steels and Alloys under the Action of Magnetic Field and Heat Treatment, Author’s Abstract of Doctoral’s Thesis [in Russian], Inst. Fiz. Metal. Ural Otd. Ross. Akad. Nauk, Ekaterinburg (2000), 319 p. Yu. V. Kaletina, Phase and Structural Transformations in Alloy Steels and Alloys under the Action of Magnetic Field and Heat Treatment, Author’s Abstract of Doctoral’s Thesis [in Russian], Inst. Fiz. Metal. Ural Otd. Ross. Akad. Nauk, Ekaterinburg (2000), 319 p.
7.
go back to reference L. Hao, N. Xiao, Ch. Zheng, and D. Li, “Mechanical properties and temper resistance of deformation induced ferrite in a low carbon steel,” J. Mater. Sci. Technol., 26(12), 1107 – 1113 (2010).CrossRef L. Hao, N. Xiao, Ch. Zheng, and D. Li, “Mechanical properties and temper resistance of deformation induced ferrite in a low carbon steel,” J. Mater. Sci. Technol., 26(12), 1107 – 1113 (2010).CrossRef
8.
go back to reference N. G. Kolbasnikov and S. Yu. Kondrat’ev, Structure. Entropy. Phase Transformations and Properties of Metals [in Russian], Gos. Politekh. Univers., St. Petersburg (2006), 363 p. N. G. Kolbasnikov and S. Yu. Kondrat’ev, Structure. Entropy. Phase Transformations and Properties of Metals [in Russian], Gos. Politekh. Univers., St. Petersburg (2006), 363 p.
9.
go back to reference N. Tsuji and T. Maki, “Enhanced structural refinement by combining phase transformations and plastic deformation in steels,” Scr. Mater., 60(12), 1044 – 1049 (2009).CrossRef N. Tsuji and T. Maki, “Enhanced structural refinement by combining phase transformations and plastic deformation in steels,” Scr. Mater., 60(12), 1044 – 1049 (2009).CrossRef
10.
go back to reference Y. Okitsu, N. Takata, and N. Tsuji, “A new route to fabricate ultrafine-grained structures in carbon steels without severe plastic deformation,” Scr. Mater., 60(2), 76 – 79 (2009).CrossRef Y. Okitsu, N. Takata, and N. Tsuji, “A new route to fabricate ultrafine-grained structures in carbon steels without severe plastic deformation,” Scr. Mater., 60(2), 76 – 79 (2009).CrossRef
11.
go back to reference B.-A. Behrens, M. Matveev, A. Bouguecha, et al., “Physical simulation of precipitation hardened ferrite-pearlite steels during hot deformation processing,” Mater. Phys. Mechan., 25(1), 9 – 15 (2016). B.-A. Behrens, M. Matveev, A. Bouguecha, et al., “Physical simulation of precipitation hardened ferrite-pearlite steels during hot deformation processing,” Mater. Phys. Mechan., 25(1), 9 – 15 (2016).
12.
go back to reference N. Tsuji, “New routes for fabricating ultrafine-grained microstructures in bulky steels without very-high strains,” Adv. Eng. Mater., 12(8), 701 – 707 (2010).CrossRef N. Tsuji, “New routes for fabricating ultrafine-grained microstructures in bulky steels without very-high strains,” Adv. Eng. Mater., 12(8), 701 – 707 (2010).CrossRef
13.
go back to reference H. K. D. H. Bhadeshia, “Phase transformations contributing to the properties of modern steels,” Bull. Polish Acad. Sci., 58(2), 255 – 265 (2010). H. K. D. H. Bhadeshia, “Phase transformations contributing to the properties of modern steels,” Bull. Polish Acad. Sci., 58(2), 255 – 265 (2010).
14.
go back to reference Hiroshi Yada, Chun-Ming Li, and Hiroshi Yamagata, “Dynamic γ→ α transformation during hot deformation in iron-nickelcarbon alloys,” ISIJ Int., 40(2), 200 – 206 (2000). Hiroshi Yada, Chun-Ming Li, and Hiroshi Yamagata, “Dynamic γ→ α transformation during hot deformation in iron-nickelcarbon alloys,” ISIJ Int., 40(2), 200 – 206 (2000).
15.
go back to reference H. Dong, X. Sun, W. Hui, et al., “Grain refinement in steels and the application trials in China,” ISIJ Int., 48(8), 1126 – 1132 (2008).CrossRef H. Dong, X. Sun, W. Hui, et al., “Grain refinement in steels and the application trials in China,” ISIJ Int., 48(8), 1126 – 1132 (2008).CrossRef
16.
go back to reference Jong-Kyo Choi, Dong-Han Seo, Jae-Sang Lee, et al., “Formation of ultrafine ferrite by strain-induced dynamic transformation in plain low carbon steel,” ISIJ Int., 43(5), 746 – 754 (2003).CrossRef Jong-Kyo Choi, Dong-Han Seo, Jae-Sang Lee, et al., “Formation of ultrafine ferrite by strain-induced dynamic transformation in plain low carbon steel,” ISIJ Int., 43(5), 746 – 754 (2003).CrossRef
17.
go back to reference Zhongmin Yang and Ruizhen Wang, “Formation of ultra-fine grain structure of plain low carbon steel through deformation induced ferrite transformation,” ISIJ Int., 43(5), 761 – 766 (2003).CrossRef Zhongmin Yang and Ruizhen Wang, “Formation of ultra-fine grain structure of plain low carbon steel through deformation induced ferrite transformation,” ISIJ Int., 43(5), 761 – 766 (2003).CrossRef
18.
go back to reference K.-E. Hensge, “Processing of advanced structural steels on csp plants,” Metalurgija, 41(3), 183 – 190 (2002). K.-E. Hensge, “Processing of advanced structural steels on csp plants,” Metalurgija, 41(3), 183 – 190 (2002).
20.
go back to reference M. Brovman, Combined Processes of Continuous Casting and Rolling, LAP LAMBERT Acad. Publ., Saarbrucken (Germany) (2014), 626 p. M. Brovman, Combined Processes of Continuous Casting and Rolling, LAP LAMBERT Acad. Publ., Saarbrucken (Germany) (2014), 626 p.
21.
go back to reference S. Yu. Kondrat’ev, Mechanical Properties of Metals [in Russian], Gos. Politekh. Univer., St. Petersburg (2011), 128 p. S. Yu. Kondrat’ev, Mechanical Properties of Metals [in Russian], Gos. Politekh. Univer., St. Petersburg (2011), 128 p.
22.
go back to reference M. A. Matveev, Physicomechanical Analysis of the Causes of Formation of Near-Edge Cracks in Hot-Rolled Sheets from Pipe Steels, Author’s Abstract of Candidate’s Thesis [in Russian], St. Petersburg Gos. Politekh. Univers., St. Petersburg (2015), 202 p. M. A. Matveev, Physicomechanical Analysis of the Causes of Formation of Near-Edge Cracks in Hot-Rolled Sheets from Pipe Steels, Author’s Abstract of Candidate’s Thesis [in Russian], St. Petersburg Gos. Politekh. Univers., St. Petersburg (2015), 202 p.
23.
go back to reference N. G. Kolbasnikov, M. A. Matveev, V. V. Mishin, et al., “Causes of the hot ductility drops of steels,” Russian Metallurgy (Metally), No. 9, 711 – 717 (2014). N. G. Kolbasnikov, M. A. Matveev, V. V. Mishin, et al., “Causes of the hot ductility drops of steels,” Russian Metallurgy (Metally), No. 9, 711 – 717 (2014).
24.
go back to reference N. G. Kolbasnikov, M. A. Matveev, and P. A. Mishnev, “Effect of structure factor on high-temperature ductility of pipe steels,” Metal Sci. Heat Treat., 58(1), 51 – 57 (2016).CrossRef N. G. Kolbasnikov, M. A. Matveev, and P. A. Mishnev, “Effect of structure factor on high-temperature ductility of pipe steels,” Metal Sci. Heat Treat., 58(1), 51 – 57 (2016).CrossRef
25.
go back to reference N. G. Kolbasnikov, M. A. Matveev, O. G. Zotov, et al., “Hot plasticity of microalloyed pipe steel in continuous casting and hot rolling,” Steel Transl., 44(2), 149 – 155 (2014).CrossRef N. G. Kolbasnikov, M. A. Matveev, O. G. Zotov, et al., “Hot plasticity of microalloyed pipe steel in continuous casting and hot rolling,” Steel Transl., 44(2), 149 – 155 (2014).CrossRef
26.
go back to reference M. A. Matveev and N. G. Kolbasnikov, “High-temperature plasticity of microalloyed steel,” Steel Transl., 46(4), 285 – 289 (2016).CrossRef M. A. Matveev and N. G. Kolbasnikov, “High-temperature plasticity of microalloyed steel,” Steel Transl., 46(4), 285 – 289 (2016).CrossRef
27.
go back to reference Suk-Chun Moon, “The influence of austenite grain size on hot ductility of steel,” in: M. Eng. Thesis, Dpt. Mater. Eng., University of Wollongong (2003), 86 p. Suk-Chun Moon, “The influence of austenite grain size on hot ductility of steel,” in: M. Eng. Thesis, Dpt. Mater. Eng., University of Wollongong (2003), 86 p.
Metadata
Title
Refinement of the Structure of Microalloyed Steels Under Plastic Deformation Near the Temperatures of Polymorphic Transformation
Authors
M. A. Matveev
N. G. Kolbasnikov
A. A. Kononov
Publication date
27-07-2017
Publisher
Springer US
Published in
Metal Science and Heat Treatment / Issue 3-4/2017
Print ISSN: 0026-0673
Electronic ISSN: 1573-8973
DOI
https://doi.org/10.1007/s11041-017-0128-7

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