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The effects of the initial martensite microstructure on the microstructure and tensile properties of intercritically annealed Fe–9Mn–0.05C steel

Authors
Han, Jeong hoLee, Seung-JoonJung, Jae-GilLee, Young-Kook
Issue Date
Oct-2014
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
TRIP-assisted steel; Ultrafine-grained material; Phase transformation; Yield phenomena; Medium-Mn steel
Citation
ACTA MATERIALIA, v.78, pp.369 - 377
Indexed
SCIE
SCOPUS
Journal Title
ACTA MATERIALIA
Volume
78
Start Page
369
End Page
377
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/158892
DOI
10.1016/j.actamat.2014.07.005
ISSN
1359-6454
Abstract
The effects of the initial microstructure of alpha' martensite on the microstructural evolution during intercritical annealing and the tensile properties of annealed specimens were investigated for Fe-9Mn-0.05C (wt.%) steel. The hot-rolled specimen with fully alpha' martensitic microstructure showed a mixed microstructure of lath-shaped ferrite (alpha(L)) and austenite (gamma(L)) after intercritical annealing. The alpha(L), grains had a high density of dislocations due to inactive recovery, and also had a low Mn concentration. The gamma(L) grains had a low density of dislocations and high Mn and C concentrations. The aL and gamma(L) grains were deformed simultaneously during the tensile test because the alpha(L) grains were as hard as the gamma(L), grains due to their high dislocation density, resulting in continuous yielding. The cold-rolled specimen with a deformed a' martensite microstructure exhibited a mixed microstructure of globular-shaped ferrite (alpha(G)) and austenite (gamma(G)) after intercritical annealing. The aG grains had a low dislocation density due to active recovery, and also had a low Mn concentration. The gamma(G) grains had a low dislocation density and high Mn and C concentrations. The soft alpha(G) grains with a low dislocation density were easily deformed at the early stage of the tensile test, resulting in discontinuous yielding and a large yield point elongation.
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