Innovative processing of obtaining nanostructured bainite with high strength - high ductility combination in low-carbon-medium-Mn steel: Process-structure-property relationship

Innovative processing of obtaining nanostructured bainite with high strength - high ductility combination in low-carbon-medium-Mn steel: Process-structure-property relationship
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低碳中锰钢获得高强高塑纳米结构贝氏体的创新工艺:工艺-组织-性能关系

DOI:
10.1016/j.msea.2018.01.120
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发表时间:
2018-03
期刊:
Mater. Sci. Eng. A
影响因子:
--
通讯作者:
申勇峰
申勇峰
中科院分区:
其他
文献类型:
--
作者:
申勇峰

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The study focused on the processing how to obtain nanoscale bainite for improving mechanical properties of a low-carbon-medium-manganese steel with nominal chemical composition of Fe–0.07C–7.9Mn–0.14Si–0.05Al–0.002S–0.003P (wt%), using warm rolling, intercritical annealing and bainite transformation. The results indicated that, after bainitic hold at 330 °C for 2 h, the steel had a yield stress (σy) of 770 MPa and tensile stress (σTS) of 1130 MPa, with a high elongation-to-failure (ɛf) of 0.62 at strain rate of 1 × 10−3s−1. The product ofσTSandɛfwas high at 70 GPa %, which is twice that the value (30 GPa %) required for third generation advanced high-strength steels. Furthermore, it is remarkably higher than the reported value of 46 GPa% for steel with identical chemical composition. Microstructural observations indicated that the steel consisted of nanoscale lamellae with characteristics of radial arrangement of bainitic ferrite and retained austenite (RA) of average thickness of ~120 nm. The volume fraction of RA was as high as 32% with carbon concentration of 1.75 wt%. The bainitic isothermal temperature and time not only affected the bainite morphology but also the volume fraction, distribution, microstructure and carbon concentration of RA, which are responsible for superior combination of high strength and good ductility of the steel.
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