Transformation plasticity in boron-bearing low carbon steel
The transformation plasticity (TP), which indicates that permanent strain remains after solid-solid phase transformation, even under much smaller stress than the yield stress, has been described by a vacancy diffusion mechanism in the migrating interface during diffusional phase transformation. In t...
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| Published in | Metals and materials international Vol. 21; no. 5; pp. 799 - 804 |
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| Main Authors | , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Seoul
The Korean Institute of Metals and Materials
01.09.2015
Springer Nature B.V 대한금속·재료학회 |
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| Online Access | Get full text |
| ISSN | 1598-9623 2005-4149 |
| DOI | 10.1007/s12540-015-5215-y |
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| Abstract | The transformation plasticity (TP), which indicates that permanent strain remains after solid-solid phase transformation, even under much smaller stress than the yield stress, has been described by a vacancy diffusion mechanism in the migrating interface during diffusional phase transformation. In this study, the influence of boron (B) addition on the TP of low carbon high strength steel was investigated through the observation of the B segregation in the phase interface between primary austenite phase and ferrite phase using secondary ion mass spectroscopy. The B segregation at the austenite-ferrite phase interface was confirmed to cause drastic decrease of the TP strain by comparison of the dilatation behavior of B-bearing and B-free steels under a tensile force during slow cooling, where the diffusional phase transformation occurs in B-bearing steel. Furthermore, it was also confirmed that the velocity of B diffusion is larger than the migration velocity of interface at the given temperature through a calculation based on Fick’s law. |
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| AbstractList | The transformation plasticity (TP), which indicates that permanent strain remains after solid-solid phase transformation, even under much smaller stress than the yield stress, has been described by a vacancy diffusion mechanism in the migrating interface during diffusional phase transformation. In this study, the influence of boron (B) addition on the TP of low carbon high strength steel was investigated through the observation of the B segregation in the phase interface between primary austenite phase and ferrite phase using secondary ion mass spectroscopy. The B segregation at the austenite-ferrite phase interface was confirmed to cause drastic decrease of the TP strain by comparison of the dilatation behavior of B-bearing and B-free steels under a tensile force during slow cooling, where the diffusional phase transformation occurs in B-bearing steel.
Furthermore, it was also confirmed that the velocity of B diffusion is larger than the migration velocity of interface at the given temperature through a calculation based on Fick’s law. KCI Citation Count: 4 The transformation plasticity (TP), which indicates that permanent strain remains after solid-solid phase transformation, even under much smaller stress than the yield stress, has been described by a vacancy diffusion mechanism in the migrating interface during diffusional phase transformation. In this study, the influence of boron (B) addition on the TP of low carbon high strength steel was investigated through the observation of the B segregation in the phase interface between primary austenite phase and ferrite phase using secondary ion mass spectroscopy. The B segregation at the austenite-ferrite phase interface was confirmed to cause drastic decrease of the TP strain by comparison of the dilatation behavior of B-bearing and B-free steels under a tensile force during slow cooling, where the diffusional phase transformation occurs in B-bearing steel. Furthermore, it was also confirmed that the velocity of B diffusion is larger than the migration velocity of interface at the given temperature through a calculation based on Fick's law. |
| Author | Kim, Moon-Jo Kim, Dong-Wan Suh, Dong-Woo Jeong, Hye-Jin Han, Heung Nam Oh, Jin-Keun |
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| CitedBy_id | crossref_primary_10_1016_j_matdes_2016_03_047 crossref_primary_10_1146_annurev_anchem_092019_032524 crossref_primary_10_1007_s11015_019_00817_8 crossref_primary_10_1038_srep40231 |
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| References_xml | – reference: MorralJ. E.CameronT. B.Metall. Trans. A19778181710.1007/BF02646888 – reference: PorterD. A.EasterlingK. E.Phase Transformations in Metals and Alloys 2nd ed1992757910.1007/978-1-4899-3051-4 – reference: MageeC. L.Ph. D. Thesis1966Pittsburgh PACarnegie Institute of Technology – reference: SeolJ. B.LeeB.-H.ChoiP.LeeS.-G.ParkC. G.Ultramicroscopy201313224810.1016/j.ultramic.2013.01.009 – reference: KapadiaB. M.BrownR. M.MurphyW. J.Trans. Met. Soc. AIME19682421689 – reference: YamamotoK.HasegawaT.TakamuraJ. I.ISIJ Int1996368010.2355/isijinternational.36.80 – reference: HanH. N.LeeC. G.OhC. S.LeeT. H.KimS. J.Acta Mater200452520310.1016/j.actamat.2004.07.031 – reference: H. J. Frost and M. F. Ashby, Deformation Mechanism Maps, p. 182, ergamon Press, London (1982). – reference: KarlssonL.NordenH.OdeliusH.Acta Mater198836110.1016/0001-6160(88)90023-5 – reference: HanH. N.KimS. J.KimM. Y.KimG. S.SuhD. W.KimS. J.Philos. 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| SubjectTerms | Austenite Bearing steels Boron Characterization and Evaluation of Materials Chemistry and Materials Science Cooling Diffusion Diffusion rate Engineering Thermodynamics Ferrite Heat and Mass Transfer High strength steels Low carbon steel Low carbon steels Machines Magnetic Materials Magnetism Manufacturing Materials Science Metallic Materials Phase transformations Phase transitions Plastic properties Plasticity Processes Secondary ion mass spectroscopy Segregations Solid Mechanics Solid phases Spectrum analysis Steels Strain Transformations Yield stress 재료공학 |
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| Title | Transformation plasticity in boron-bearing low carbon steel |
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