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Ultrafine grained ferrite-marten site dual phase steels fabricated via equal channel angular pressing: Microstructure and tensile properties SCIE SCOPUS

Title
Ultrafine grained ferrite-marten site dual phase steels fabricated via equal channel angular pressing: Microstructure and tensile properties
Authors
Son, YILee, YKPark, KTLee, CSShin, DH
Date Issued
2005-06
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Abstract
Ultrafine grained (UFG) ferrite-martensite dual phase steels containing different amounts of vanadium were fabricated by equal channel angular pressing (ECAP) and subsequent intercritical annealing. Their room temperature tensile properties were examined and compared to those of a coarse grained counterpart. The formation of UFG martensite islands of similar to 1 mu m was not confined to the former pearlite colonies but they were uniformly distributed throughout UFG ferrite matrix. A diffusion analysis showed that this specific microstructure may result from dissolution of carbon atoms from pearlitic cementite and their concurrent diffusion into UFG ferrite during ECAP, making the average carbon content reach the equilibrium content to form austenite during subsequent intercritical annealing. The strength of UFG dual phase steels was much higher than that of the coarse grained counterpart, but uniform and total elongations were not degraded. More importantly, the present UFG dual phase steels exhibited extensive rapid strain hardening unlike most UFG materials. The addition of vanadium slightly increased the strength and elongation of the present UFG dual phase steels, but it was found that excessive vanadium addition did not lead to further improvement of their mechanical properties. An excellent combination of strength, elongation and strain hardening of the present UFG dual phase steels was explained in terms of their specific microstructural features. (c) 2005 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
Keywords
dual phase steels; ultrafine grains; equal channel angular pressing; intercritical annealing; microstructure; LOW-CARBON STEEL; STRAIN-HARDENING BEHAVIOR; MECHANICAL-PROPERTIES; PLASTIC-DEFORMATION; SIZE; AUSTENITE; WIRES
URI
https://oasis.postech.ac.kr/handle/2014.oak/24545
DOI
10.1016/j.actamat.2005.02.015
ISSN
1359-6454
Article Type
Article
Citation
ACTA MATERIALIA, vol. 53, no. 11, page. 3125 - 3134, 2005-06
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이종수LEE, CHONG SOO
Ferrous & Energy Materials Technology
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