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Thermal stability and mechanical properties of ultrafine grained low carbon steel

Authors
Park, KTKim, YSLee, JGShin, DH
Issue Date
30-Nov-2000
Publisher
ELSEVIER SCIENCE SA
Keywords
low carbon steel; equal channel angular pressing; ultrafine grain size; strain hardening; dynamic recovery
Citation
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, v.293, no.1-2, pp.165 - 172
Journal Title
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING
Volume
293
Number
1-2
Start Page
165
End Page
172
URI
https://scholarworks.bwise.kr/hongik/handle/2020.sw.hongik/27327
DOI
10.1016/S0921-5093(00)01220-X
ISSN
0921-5093
Abstract
Ultrafine grained low carbon steel manufactured by equal channel angular pressing was annealed at 753 M, where negligible grain growth occurred, up to 72 h and the microstructural change;md the mechanical properties were examined. This investigation was aimed at providing the guiding information for the effective use of ultrafine grained low carbon steel manufactured by severe plastic deformation processes. Under the present annealing conditions, the microstructural change was dominated by recovery. The tensile behavior of annealed ultrafine grained steel was characterized by much higher strength and the absence of strain hardening compared with that of large grained steel. In addition, the present ultrafine grained steel became mechanically stable by 24 h annealing treatment although recovery was in progress. The microstructure of the deformed sample of annealed ultra:fine grained steel exhibited the elongated grains and dislocations distributed densely in the vicinity of grain boundaries. This finding indicated that dynamic recovery during deformation was associated with the absorption of dislocation by grain boundaries. The mechanical behavior of the present ultrafine grained low carbon steel was discussed in light of the recent development explaining that of nanocrystalline materials, i.e. the dislocation bow-out mechanism for high strength and the spreading kinetics of trapped lattice dislocation into grain boundary for the absence of strain hardening. (C) 2000 Elsevier Science S.A. All rights reserved.
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