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Improvement of impact toughness of 5Mn-1Al-0.5Ti steel by intercritical annealing SCIE SCOPUS KCI

Title
Improvement of impact toughness of 5Mn-1Al-0.5Ti steel by intercritical annealing
Authors
Yi, I.-C.Ha, Y.Lee, H.Zargaran, A.Kim, N.J.
Date Issued
2017-03
Publisher
KOREAN INST METALS MATERIALS
Abstract
The present study is aimed at improving the impact toughness of 5Mn-1Al-0.5Ti steel by incorporating ferrite-martensite dual phase microstructure by intercritical annealing. Although (8-12)Mn martensitic steels usually show very low impact toughness due to the occurrence of intergranular fracture, the martensitic structure of the present 5Mn-1Al-0.5Ti steel fails by transgranular cleavage fracture due to higher grain boundary strength than matrix strength incurred by reduced Mn content and segregation of Ti along grain boundaries. Nevertheless, it still shows very poor impact toughness at room temperature due to its coarse grain size. The application of intercritical annealing, i.e., formation of dual phase microstructure, is shown to significantly decrease ductile-to-brittle transition temperature (DBTT), with only a small degradation of tensile properties; however, microstructural examinations show that most of ferrite/martensite interfaces have a character of low angle boundaries and therefore such decrease in DBTT is not necessarily due to the formation of ferrite-martensite dual phase structure, but rather to the refinement of grain size by low temperature annealing. ? 2017, The Korean Institute of Metals and Materials and Springer Science+Business Media Dordrecht.
URI
https://oasis.postech.ac.kr/handle/2014.oak/50758
DOI
10.1007/s12540-017-6580-5
ISSN
1598-9623
Article Type
Article
Citation
METALS AND MATERIALS INTERNATIONAL, vol. 23, no. 2, page. 283 - 289, 2017-03
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김낙준KIM, NACK JOON
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